US20050152849A1 - Powders comprising anti-adherent materials for use in dry powder inhalers - Google Patents

Powders comprising anti-adherent materials for use in dry powder inhalers Download PDF

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US20050152849A1
US20050152849A1 US11/054,074 US5407405A US2005152849A1 US 20050152849 A1 US20050152849 A1 US 20050152849A1 US 5407405 A US5407405 A US 5407405A US 2005152849 A1 US2005152849 A1 US 2005152849A1
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powder
particles
weight
additive material
active material
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John Staniforth
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Vectura Ltd
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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/0012Galenical forms characterised by the site of application
    • A61K9/007Pulmonary tract; Aromatherapy
    • A61K9/0073Sprays or powders for inhalation; Aerolised or nebulised preparations generated by other means than thermal energy
    • A61K9/0075Sprays or powders for inhalation; Aerolised or nebulised preparations generated by other means than thermal energy for inhalation via a dry powder inhaler [DPI], e.g. comprising micronized drug mixed with lactose carrier particles
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/14Particulate form, e.g. powders, Processes for size reducing of pure drugs or the resulting products, Pure drug nanoparticles
    • A61K9/141Intimate drug-carrier mixtures characterised by the carrier, e.g. ordered mixtures, adsorbates, solid solutions, eutectica, co-dried, co-solubilised, co-kneaded, co-milled, co-ground products, co-precipitates, co-evaporates, co-extrudates, co-melts; Drug nanoparticles with adsorbed surface modifiers
    • A61K9/145Intimate drug-carrier mixtures characterised by the carrier, e.g. ordered mixtures, adsorbates, solid solutions, eutectica, co-dried, co-solubilised, co-kneaded, co-milled, co-ground products, co-precipitates, co-evaporates, co-extrudates, co-melts; Drug nanoparticles with adsorbed surface modifiers with organic compounds

Definitions

  • This invention relates to powders for use in dry powder inhalers.
  • Inhalers are well known devices for administering pharmaceutical products to the respiratory tract by inhalation. Inhalers are widely used particularly in the treatment of diseases of the respiratory tract.
  • MDI pressurised metered dose inhaler
  • Those devices are disadvantageous on environmental grounds as they often use CFC propellants, and on clinical grounds related to the inhalation characteristics of the devices.
  • the delivery of dry powder particles of pharmaceutical products to the respiratory tract presents certain problems.
  • the inhaler should deliver the maximum possible proportion of the active particles expelled to the lungs, including a significant proportion to the lower lung, preferably at the low inhalation capabilities to which some patients, especially asthmatics, are limited. It has been found, however, that, when currently available dry powder inhaler devices are used, in many cases only about 10% of the active particles that leave the device on inhalation are deposited in the lower lung. More efficient dry powder inhalers would give clinical benefits.
  • the type of dry powder inhaler used is of significant importance to the efficiency of delivery over a range of airflow conditions of the active particles to the respiratory tract. Also, the physical properties of the powder used affect both the efficiency and reproducibility of delivery of the active particles and the site of deposition in the respiratory tract.
  • the active particles On exit from the inhaler device, the active particles should form a physically and chemically stable aerocolloid which remains in suspension until it reaches a conducting bronchiole or smaller branching of the pulmonary tree or other absorption site preferably in the lower lung. Once at the absorption site, the active particle should be capable of efficient collection by the pulmonary mucosa with no active particles being exhaled from the absorption site.
  • the size of the active particles is particularly important.
  • the active particles should be small, with an equivalent aerodynamic diameter substantially in the range of 0.1 to 5 ⁇ m, approximately spherical and monodispersed in the respiratory tract.
  • Small particles are, however, thermodynamically unstable due to their high surface area to volume ratio, which provides significant excess surface free energy and encourages particles to agglomerate.
  • agglomeration of small particles and adherence of particles to the walls of the inhaler are problems that result in the active particles leaving the inhaler as large stable agglomerates or being unable to leave the inhaler and remaining adhered to the interior of the inhaler.
  • dry powder for use in dry powder inhalers often include coarse carrier particles mixed with fine particles of active material.
  • the active particles adhere to the surfaces of the carrier particles whilst in the inhaler device, and are dispersed on inhalation into the respiratory tract to give a fine suspension.
  • the carrier particles are often large particles greater than 90 ⁇ m in diameter to give good flow properties because small particles with a diameter of less than 10 ⁇ m may become coated on the wall of the delivery device and have poor flow and entrainment properties leading to poor dose uniformity.
  • doses of powder containing only active particles are dispensed.
  • the powder contains no carrier particles or other additives and the amount of powder in each dose is small, usually less than 1 mg.
  • the volume of the dose may be, for example, approximately 6.5 ⁇ l.
  • An object of the present invention is to provide a dry powder for use in dry powder inhalers which overcomes or mitigates at least one of the above disadvantages.
  • a powder for use in a dry powder inhaler comprising active material and additive material, the additive material comprising an anti-adherent material and the powder including at least 60% by weight of active material based on the weight of the powder.
  • a purpose of the additive material is to hinder the formation of stable agglomerates of the active material in the powder.
  • stable agglomeration of the active particles with the known powders may lead to decreased deposition of the active material in the lower lung, together with poor dose uniformity. That is because, when the small active particles agglomerate, the agglomerates which are formed may have a diameter of 100 ⁇ m or more. If those agglomerates do not break up when the powder is inhaled, they are unlikely to reach the lower lung due to their size.
  • the addition of the anti-adherent material decreases the cohesion between the particles of the powder containing the active material. It is thought that the additive material interferes with the weak bonding forces, such as Van der Waal's and Coulomb forces, between the small particles, helping to keep the particles separated and may be thought of as weak links or “chain breakers” between the particles. Adhesion of the particles to the walls of the device is also reduced. Where agglomerates of particles are formed, the addition of the additive material decreases the stability of those agglomerates so that they are more likely to break up in the turbulent airstream created on inhalation to form small individual particles which are likely to reach the lower lung.
  • the weak bonding forces such as Van der Waal's and Coulomb forces
  • the reduced tendency of the particles to bond strongly either to each other or to the device itself reduces powder cohesion and adhesion and promotes better flow characteristics which leads to improvements in the dose reproducibility by reducing the variation in the amount of powder metered out for each dose and improving the release of the powder from the device as well as increasing the likelihood that the active material which does leave the device will reach the lower lung of the patient.
  • the particles of such a powder should be large, preferably larger than 45 ⁇ m.
  • Such a powder may be in the form of either individual particles having a size of 45 ⁇ m or larger and/or agglomerates of finer particles, the agglomerates having a size of 45 ⁇ m or larger.
  • the agglomerates formed can have a size of as much as 100 ⁇ m and, with the addition of the additive material, those agglomerates are more likely to be broken down efficiently in the turbulent airstream created on inhalation. Therefore the formation of unstable agglomerates of particles in the powder may be favoured compared with a powder in which there is substantially no agglomeration.
  • anti-adherent materials include those materials which will decrease the cohesion between the particles of the powder. Those materials will include those usually thought of as anti-adherent materials, for example leucine, as well as others, for example, lecithin, which are not generally thought of as being anti-adherent but may nonetheless have the effect of decreasing the cohesion between the particles of the powder.
  • Other materials commonly added to powders for use in inhalers, for example lactose and various other carrier particle materials are not anti-adherent materials per se but might be added to a powder in addition to a suitable anti-adherent material, for example leucine as indicated below.
  • fatty acids increase stickiness in powders and are thought to be unsuitable as the additive material.
  • other materials such as sorbitan esters (for example SPAN 85) and cyclo dextrins are not suitable anti-adherent materials.
  • the Aeroflow apparatus is used to measure the flow properties of powders.
  • a sample of powder is placed in a perspex cylinder which is rotated at a speed of about 5 rpm about a horizontal axis.
  • the powder will tend to form a pile of powder which extends around the inner surface of the cylinder as powder material is carried round by the rotating cylinder.
  • the height of the pile reaches a certain level, powder material from the top of the pile avalanches down towards the bottom of the pile.
  • the powder will avalanche at a frequency dependent on the properties of the powder.
  • the time between avalanches will be low whereas for a cohesive material, the time between avalanches will be great.
  • the mean time between avalanches will be lower for the material containing the additive material, indicating improved flow properties and less cohesion.
  • the time between avalanches is greater when the fatty acid has been added to the material.
  • fatty acids are unsuitable for use as the anti-adherent material.
  • a material is not anti-adherent
  • that material might be added to the active material, for example as a diluent, provided that a suitable anti-adherent additive material is also added such that the resulting effect of the additive material and the diluent is anti-adherent.
  • a suitable anti-adherent additive material is also added such that the resulting effect of the additive material and the diluent is anti-adherent.
  • the complete powder advantageously the complete powder also “passes” the above test in that the combined effect of all of the components added to the active material is that of an anti-adherent material.
  • the powder comprises at least 70%, more preferably at least 80% by weight of active material based on the weight of the powder. Most advantageously, the powder comprises at least 90%, more preferably at least 95%, more preferably at least 97%, by weight of active material based on the weight of the powder. It is believed that there are physiological benefits in introducing as little powder as possible to the lungs, in particular material other than the active ingredient to be administered to the patient. Therefore, the quantities in which the additive material is added are preferably as small as possible. The most preferred powder, therefore, would comprise more than 99% by weight of active material.
  • At least 90% by weight of the particles of the powder have a particle size less than 63 ⁇ m, preferably less than 30 ⁇ m and more preferably less than 10 ⁇ m.
  • the size of the particles of the powder should be within the range of about from 0.1 ⁇ m to 5 ⁇ m for effective delivery to the lower lung.
  • the additive material is in the form of particles of material, as is described below, it may be advantageous for particles of the additive material to have a size outside the preferred range for delivery to the lower lung.
  • the particles in some cases it will be preferred for the particles to be in the form of agglomerates in the powder. In such cases, the particle sizes indicated above are those of the individual particles making up the agglomerates.
  • the additive material comprises physiologically acceptable material.
  • the additive material it is highly preferable for the additive material to be a material which may be safely inhaled into the lower lung, where it would usually be absorbed into the blood stream.
  • the additive material should therefore be one which is safe to administer by inhalation.
  • the additive material may include a combination of one or more materials.
  • the additive material includes one or more compounds selected from amino acids and derivatives thereof, and peptides and polypeptides having a molecular weight of between about 0.25 to 1000 kDa, and derivatives thereof.
  • Amino acids, peptides and polypeptides and their derivatives are physiologically acceptable and act as anti-adherent materials when added to the active material. It is particularly advantageous for the additive material to comprise an amino acid. Amino acids have been found to give, when present as additive material, high respirable fraction of the active material and also good flow properties of the powder.
  • a preferred amino acid is leucine, in particular L-leucine. Whilst the L-form of the amino acids is preferred in the Examples, the D- and DL-forms may also be used.
  • the additive material may comprise one or more of any of the following amino acids: leucine, isoleucine, lysine, valine, methionine, cysteine, phenylalanine.
  • the additive material may include derivatives of amino acids or peptides.
  • the additive material may be a salt or an ester, for example aspartame, or may be N acetyl-L cysteine.
  • the additive material may comprise salts such as acesulfame K or other sweeteners, for example saccharin sodium or a cyclamate.
  • the additive material may include one or more water soluble compounds. Those compounds, if they penetrate into the deep lung may therefore be absorbed into the blood stream, which is advantageous.
  • the additive material may include one or more surface active materials which may be water soluble, for example, lecithin, in particular soya lecithin.
  • lecithin is not an especially preferred additive material because it is thought that at least in some cases it could give increased cohesion in the powder material.
  • the additive material may include dipolar ions which may be zwitterions.
  • the additive material includes a glidant material.
  • a glidant material is one that will decrease the resistance to sliding of the particles. The addition of a glidant material, therefore, will lead to improved release of the powder from the inhaler device and therefore better dose uniformity.
  • the glidant materials which have this effect will include those usually thought of as glidants as well as those not usually thought of as glidants but which have a glidant effect when added to the active material. Many of the anti-adherent materials described-above are also glidants.
  • the glidant material may, therefore, be the same compound as that of the anti-adherent material, or may be a different compound or a mixture of compounds.
  • the active material referred to throughout the specification will be material comprising one or a mixture of pharmaceutical products. It will be understood that the term “active material” includes material which is biologically active, in the sense that it is able to decrease or increase the rate of a process in a biological environment.
  • the pharmaceutical products include those products which are usually administered orally by inhalation for the treatment of disease such as respiratory disease e.g. ⁇ -agonists, salbutamol and its salts or salmeterol and its salts.
  • Other pharmaceutical products which could be administered using a dry powder inhaler include peptides and polypeptides, such as DNase, leucotrienes and insulin.
  • the active material may include a ⁇ 2 -agonist, which may include salbutamol, a salt of salbutamol or a combination thereof.
  • Salbutamol and its salts are widely used in the treatment of respiratory disease.
  • the active material may be salbutamol sulphate.
  • the active material may be terbutaline, a salt of terbutaline, for example terbutaline sulphate, or a combination thereof. Terbutaline sulphate is of particular importance.
  • the active material may be ipatropium bromide.
  • the active material may include a steroid, which may be beclomethasone dipropionate or may-be fluticasone.
  • the active material may include a cromone which may be sodium cromoglycate or nedocromil or its salts.
  • the active material may include a leukotriene receptor antagonist.
  • the active material may include a carbohydrate, for example heparin.
  • the powder comprises particles of active material and particles of additive material.
  • particles of additive material are used, by choosing a particular size of the additive particles, as described below, the amount of additive material entering the lower lung may be minimised.
  • the additive it may be preferable for the additive to be present in the powder as particles rather than, for example, a coating around the particles of active material which may hinder the absorption of the active material into the blood stream.
  • At least 90% by weight of the additive particles have a particle size less than 63 ⁇ m, preferably, less than 30 ⁇ m, and more preferably less than 10 ⁇ m.
  • the additive particles will usually have a particle size slightly larger than the particle size of the active particles to encourage deposition of the additive particles in the upper airways.
  • the size of the particles may be calculated by laser diffraction or other method by which the aerodynamic diameter of the particles can be determined.
  • the additive particles may be non-spherical in shape.
  • the additive particles may be plate-like particles, for example leucine particles.
  • the additive particles may be angular, for example prisms, or dendritic in shape, for example aspartame particles. Plate-like particles may give improved surface interaction and glidant action between the surfaces of the active particles thereby decreasing bonding between the active particles and reducing stable agglomeration.
  • the additive material may form at least a partial coating on the surfaces of particles of the active material. It is found that even when a large amount of the additive material is added to the active material, there is no “coating” of the active particles in the sense in which that word would normally be used in the art, namely to refer to a continuous envelope around the active particle. Instead, a discontinuous covering is formed on the active particle. It is believed that the presence of such a discontinuous covering, as opposed to a “coating” is an important and advantageous feature of the present invention.
  • Additive material may be present in the powder both in the form of small particles and in the form of a coating on the surfaces of the particles of active material.
  • the additive material may be added to the active material from a suspension or from solution.
  • the additive material may be added to the active material by co-crystallisation, co-spray drying, co-granulation or other similar method.
  • the powder may be produced by, for example, blending together micronised active material and micronised additive material.
  • the components of the powder may be micronised together to form the powder material.
  • the ratio in which the additive material and the active material are present in the powder will depend on the type of inhaler device used, the type of active material used and the required dose.
  • the powder comprises at least 0.1% by weight of additive material based on the weight of the powder.
  • the powder preferably comprises between about 0.1% and 40%, more preferably between about 0.25% and 5% by weight of additive material based on the weight of the active material.
  • additive material will in many cases be inhaled into the lung, it is preferable for only a small amount of additive material to be added.
  • the powder comprises not more than 8% by weight, preferably not more than 5% by weight, of additive material. In some cases it will be advantageous for the powder to contain about 1% by weight of additive material.
  • At least 95% by weight of the active particles have a particle size less than 10 ⁇ m.
  • at least 95% by weight of the active particles have a particle size between about 0.1 ⁇ m and 10 ⁇ m, more preferably between about 0.1 ⁇ m and 5 ⁇ m.
  • the particles will therefore give a good suspension on release from the inhaler device and delivery of the active particles deep into the respiratory tract.
  • the size of the particles may be calculated as described above in respect of the additive particles.
  • the powder may also contain, for example, flavourings and colourant materials and may also contain diluents.
  • the powder includes less than 20% preferably less than 10%, more preferably less than 1%, by weight of constituents other than the active material and the anti-adherent material.
  • a powder for use in a dry powder inhaler comprising active particles and additive material, at least 90% by weight of the powder particles having a particle size of less than 63 ⁇ m, the powder including at least 60% by weight of active particles based on the weight of the powder.
  • the powder particles have a particle size of less than 30 ⁇ m, preferably less than about 10 ⁇ m.
  • the powder includes at least 80%, preferably at least 90% by weight of active particles based on the weight of the powder.
  • the powder includes not more than 8%, more advantageously not more than 5% by weight of additive material based on the weight of the powder. As indicated above, in some cases it will be advantageous for the powder to contain about 1% by weight of additive material.
  • the additive material may be in the form of particles.
  • the invention also provides, a powder for use in a dry powder inhaler, the powder comprising active particles and additive material, the additive material forming at least a partial coating on the surfaces of the particles of active material, the powder including at least 60% by weight of active material based on the weight of the powder, at least 90% by weight of the particles of the powder having a particle size less than 63 ⁇ m.
  • the powder includes at least 80%, preferably at least 90% by weight of active material based on the weight of the powder.
  • a dry powder inhaler including a powder as described above.
  • the inhaler may be activated to dispense a dose of less than 10 mg of the powder, preferably not more than 5 mg, more preferably not more than 1 mg.
  • the size of the dose will depend on the active material to be delivered and the inhaler device used.
  • the invention also provides a dose of powder, the dose containing not more than 5 mg of powder described above, more preferably not more than 1 mg of the powder.
  • the invention also provides the use of an anti-adherent additive material in a powder for use in a dry powder inhaler, for improving the flow characteristics of the powder, the powder comprising at least 60% by weight of active material based on the weight of the powder.
  • the test to assess whether a material is an anti-adherent material is indicated above.
  • the size of particles may, where appropriate be selected and/or-measured using a sieving method. Otherwise, the size of the particles may be determined using laser light diffraction, or other method in which the aerodynamic diameter of the particles may be determined, for example microscopic image analysis.
  • One of the objects of the invention is to hinder the formation of stable agglomerates of particles, especially active particles, in the powder.
  • it may be desirable for unstable agglomerates to be formed in the powder and the size of those agglomerates may be as large as 10 ⁇ m or more.
  • the size of particles in the powder when considering the agglomerates, is to be taken as the size of the individual particles making up the agglomerate.
  • the sizes of the individual particles may be determined using microscopic image analysis.
  • FIG. 1 shows a sectional view of a dry powder inhaler
  • FIG. 2 is a sectional diagram of a twin stage impinger.
  • FIG. 1 shows a view of a dry powder inhaler device known as a Turbohaler (Trade Mark).
  • the Turbohaler is a breath actuated inhaler which may be used to meter out and deliver small quantities of dry powder.
  • the mass of powder delivered for each inhalation is often less than 1 mg.
  • the Turbohaler comprises an outer cylindrical body 2 which has a mouthpiece 3 around one end and a rotatable base 4 at the other end.
  • the body 2 houses a storage chamber 5 for storing the dry powder to be dispensed, and a dosing disc 6 under the storage chamber.
  • the dosing disc 6 includes a number of identical cavities around its edge.
  • Rotation of the base 4 causes rotation of the disc 6 and the cavities pass under the storage chamber 5 and are filled with a volume of the dry powder material.
  • Forcible filling of the cavities in an attempt to reduce variability in the amount of powder filled into the cavities, is achieved by the provision of scrapers above the cavities and a pressure plate below the dosing disc urging the disc 6 towards the storage chamber 5 .
  • the base 4 is rotated backwards and forwards to dispense the powder into the cavities.
  • Rotation of the disc 6 also brings successive cavities in and out of communication with a channel 8 which leads from the disc 6 to the mouthpiece 3 .
  • a filled cavity is brought into alignment with the channel 8 and a patient inhales through the mouthpiece 3 .
  • Air is drawn into the body via an inlet 7 (and other inlets) and the air passes through a hole in the pressure plate and through holes in the bottom of the cavity thereby discharging the contents of the cavity into the channel 8 .
  • the powder is inhaled via the mouthpiece 3 .
  • the device To increase the turbulent airflow in the device, to help break up any agglomerates of powder, the device includes other inlets in the body 2 .
  • the mouthpiece includes channels 9 to increase turbulence.
  • the storage chamber usually has the capacity to hold approximately 200 doses of the powder and, when empty, may be refilled or disposed of.
  • suitable powders according to the invention which may be used in a Turbohaler are as follows. Whilst the Examples refer to use of the powders in a Turbohaler, powders according to the invention may instead be used in other suitable devices, for example, a MIAT-Haler.
  • the resulting powder was agglomerated using a milling procedure. 50 g samples of the powder were milled in a porcelain ball mill (manufactured by Pascall Engineering Company) having a diameter of approximately 150 mm, using steel grinding balls. The milling was continued for about 6 hours. The agglomerated powder was filled into a Turbohaler in a known way.
  • Each metered dose for inhalation from the Turbohaler contained approximately: 500 ⁇ g terbutaline sulphate 5 ⁇ g leucine.
  • An approximate value for the volume of the metered dose might be 6.5 ⁇ l.
  • Each metered does for inhalation from the Turbohaler contained approximately 500 ⁇ g terbutaline sulphate 5 ⁇ g leucine
  • An approximate value for the volume of the metered dose might be 6.5 ⁇ l.
  • Each metered dose for inhalation from the Turbohaler contained approximately 500 ⁇ g terbutaline sulphate 10 ⁇ g leucine
  • Each metered dose for inhalation from the Turbohaler contained approximately 500 ⁇ g terbutaline sulphate 2.5 ⁇ g soy lecithin
  • Agglomerated powder was prepared as for Example 3 above except that 4 g soy lecithin (95% by weight of particles less than 710 ⁇ m) was dissolved in log water and log IMS and added to 196 g terbutaline sulphate powder (MMAD 2.1 ⁇ m). The agglomerated powder was filled into a Turbohaler.
  • Each metered dose for inhalation from the Turbohaler contained approximately 500 ⁇ g terbutaline sulphate 10 ⁇ g soy lecithin
  • Each metered dose for inhalation from the Turbohaler contained approximately 500 ⁇ g terbutaline sulphate 2.5 ⁇ g soy lecithin
  • a powder for inhalation using a Turbohaler was prepared by mixing 199 g budesonide and 1 g L-leucine as described above for Example 1. The powder was agglomerated as described for Example 1 and filled into the Turbohaler in a known way.
  • Each metered dose for inhalation from the Turbohaler contained approximately: 100 ⁇ g budesonide 0.5 ⁇ g L-leucine
  • Turbohaler device described above is only an example of a dry powder inhaler device which may be used to dispense powder according to the invention, and that different dry powder inhaler devices may be used.
  • the efficiency of the delivery of the active particles to the lungs of a patient by the inhaler device, and the dose reproducibility achieved, may be assessed using a twin stage impinger (TSI) as described below.
  • TTI twin stage impinger
  • FIG. 2 shows a diagrammatic arrangement of a TSI.
  • the TSI is a two stage separation device used in the assessment of oral inhalation devices. Stage one of the apparatus is shown to the right of the line AB in FIG. 2 and is a simulation of the upper respiratory tract. To the left of that line is stage two which is a simulation of the lower respiratory tract.
  • the TSI comprises a mouth 21 which comprises a polydimethylsiloxane adaptor, moulded to accept the mouthpiece of the inhaler device, upper tubing 22 and upper impinger 23 to simulate the upper respiratory tract, the upper impinger containing liquid 24 , and lower tubing 25 and lower impinger 26 to simulate the lower respiratory tract, the lower impinger containing liquid 27 .
  • the lower impinger 26 is connected via an outlet pipe 28 to a pump 29 which draws air through the TSI apparatus at a predetermined rate.
  • the base of the lower tubing 25 is at the level of the liquid 27 such that all the air drawn through the TSI bubbles through the lower liquid 27 .
  • the liquid used in both the upper and lower impinger is distilled water.
  • the inhaler is placed in a mouth 21 of the TSI. Air is caused to flow through the apparatus by means of a pump 29 which is connected to stage two of the TSI. Air is sucked through the apparatus from the mouth 21 , flows through upper tubing 22 via the upper impinger 23 and the lower tubing 25 to the lower impinger 26 where it bubbles through liquid 27 and exits the apparatus via outlet pipe 28 .
  • the liquid 24 in the upper impinger 23 traps any particle with a size such that it is unable to reach stage two of the TSI. Fine particles, which are the particles able to penetrate to the lungs in the respiratory tract, are able to pass into stage two of the TSI where they flow into the lower impinger liquid 27 .
  • the Turbohaler inhaler device is weighed.
  • the mouthpiece 3 of the inhaler is connected to the mouth 21 of the TSI, the base 4 is rotated to dispense a dose of powder and the pump is switched on and timed for a period of ten seconds.
  • the pump is then switched off and the Turbohaler is removed from the TSI, reweighed and the amount of powder lost from the inhaler calculated.
  • the sections of the apparatus making up stage one of the TSI are washed into a second flask and made up to 250 ml with distilled water.
  • the sections making up the second stage of the TSI are washed into a third flask and made up to 100 ml with distilled water.
  • the test is repeated several times to assess the dose reproducibility.
  • the amount of active substance in each section of the TSI is measured for each test.
  • the active substance is budesonide as for the Examples below, the following method may be used.
  • the contents of the flasks containing the washing from the stages of the TSI are assayed using High Performance Liquid Chromatography (HPLC) analysis for the content of budesonide and compared against standard solutions containing 0.5 ⁇ g/ml and 1 ⁇ g/ml of budesonide.
  • HPLC High Performance Liquid Chromatography
  • the percentage of budesonide in each stage of TSI is calculated from the standard response for each test and the mean for the tests may be calculated to give an indication of the proportion of the active particles reaching the second stage of the TSI apparatus and therefore an indication of the proportion of active substance which would reach the lower lung of a patient.
  • Micronised budesonide was blended with micronised L-leucine to produce a powder by the following method.
  • Budesonide and L-leucine were mixed to give a concentration of 1% by weight of leucine and the mixture was blended in a Turbula mixer for up to 30 minutes. The blend was passed through a 355 ⁇ m aperture diameter sieve to improve mixing and to break up stable agglomerates to produce a powder having loose agglomerates of particles.
  • the resulting powder was weighed and filled into a Turbohaler inhaler device such that each actuation of the device dispensed about 200 ⁇ g of powder.
  • Table 1 shows the results of the TSI testing for each of the different percent by weight of leucine.
  • the respirable fraction is calculated as the percentage of the total amount of drug emitted from the device that reaches stage two of the TSI and gives an indication of the proportion of active particles which would reach the deep lung in a patient.
  • the standard deviation and the coefficient of variation are also given.
  • TABLE 1 1% 5% 10% leucine leucine leucine Respirable fraction (%) 67.3 59.1 54.9 Standard deviation (%) 2.2 6.8 4.8 Coefficient of 3.3 11.6 8.7 variation (%)
  • the respirable fraction is about 55%.
  • the coefficient of variation is low, especially for the powder containing 1% by weight of leucine indicating good reproducibility of the results (corresponding to improved dose uniformity of the administered drug). This indicates that the dose uniformity is also significantly better than for the currently commercially available Turbohaler product in which the powder composition does not contain the leucine additive material.
  • a powder was made by the method of Example 8, by blending micronised budesonide and 5% by weight of micronised L-leucine and 15% by weight of Sorbolac (a lactose powder having a particle size less than 634 ⁇ m of Meggle Museumindustrie, Reitriding Germany).
  • the resulting powder was assessed using the TSI.
  • Table 2 shows the results of the TSI testing including the respirable fraction, the standard deviation and the coefficient of variation. TABLE 2 5% leucine and 15% lactose Respirable fraction (%) 74.0 Standard deviation (%) 3.1 Coefficient of 4.2 variation (%)

Abstract

A powder for use in a dry powder inhaler comprises active material and additive material. The additive material comprises an anti-adherent material and the powder includes at least 60% by weight of active material. The inclusion of the additive material in the powder has been found to give an increased respirable fraction of the active material.

Description

  • This invention relates to powders for use in dry powder inhalers.
  • Inhalers are well known devices for administering pharmaceutical products to the respiratory tract by inhalation. Inhalers are widely used particularly in the treatment of diseases of the respiratory tract.
  • There are a number of types of inhaler currently available. The most widely used type is a pressurised metered dose inhaler (MDI) which uses a propellant to expel droplets containing the pharmaceutical product to the respiratory tract. Those devices are disadvantageous on environmental grounds as they often use CFC propellants, and on clinical grounds related to the inhalation characteristics of the devices.
  • An alternative device to the MDI is the dry powder inhaler. The delivery of dry powder particles of pharmaceutical products to the respiratory tract presents certain problems. The inhaler should deliver the maximum possible proportion of the active particles expelled to the lungs, including a significant proportion to the lower lung, preferably at the low inhalation capabilities to which some patients, especially asthmatics, are limited. It has been found, however, that, when currently available dry powder inhaler devices are used, in many cases only about 10% of the active particles that leave the device on inhalation are deposited in the lower lung. More efficient dry powder inhalers would give clinical benefits.
  • The type of dry powder inhaler used is of significant importance to the efficiency of delivery over a range of airflow conditions of the active particles to the respiratory tract. Also, the physical properties of the powder used affect both the efficiency and reproducibility of delivery of the active particles and the site of deposition in the respiratory tract.
  • On exit from the inhaler device, the active particles should form a physically and chemically stable aerocolloid which remains in suspension until it reaches a conducting bronchiole or smaller branching of the pulmonary tree or other absorption site preferably in the lower lung. Once at the absorption site, the active particle should be capable of efficient collection by the pulmonary mucosa with no active particles being exhaled from the absorption site.
  • The size of the active particles is particularly important. For effective delivery of active particles deep into the lungs, the active particles should be small, with an equivalent aerodynamic diameter substantially in the range of 0.1 to 5 μm, approximately spherical and monodispersed in the respiratory tract. Small particles are, however, thermodynamically unstable due to their high surface area to volume ratio, which provides significant excess surface free energy and encourages particles to agglomerate. In the inhaler, agglomeration of small particles and adherence of particles to the walls of the inhaler are problems that result in the active particles leaving the inhaler as large stable agglomerates or being unable to leave the inhaler and remaining adhered to the interior of the inhaler.
  • The uncertainty as to the extent of formation of stable agglomerates of the particles between each actuation of the inhaler and also between different inhalers and different batches of particles, leads to poor dose reproducibility.
  • In an attempt to improve that situation, dry powder for use in dry powder inhalers often include coarse carrier particles mixed with fine particles of active material. The active particles adhere to the surfaces of the carrier particles whilst in the inhaler device, and are dispersed on inhalation into the respiratory tract to give a fine suspension. The carrier particles are often large particles greater than 90 μm in diameter to give good flow properties because small particles with a diameter of less than 10 μm may become coated on the wall of the delivery device and have poor flow and entrainment properties leading to poor dose uniformity.
  • There are, however, problems associated with the addition of carrier particles to the active particles in the dry powder, for example problems related to the efficient release of the active particles from the surfaces of the carrier particles on inhalation. Furthermore, in some cases it is preferred for no carrier particles to be present in the powder administered.
  • In known dry powder inhaler devices, doses of powder containing only active particles are dispensed. The powder contains no carrier particles or other additives and the amount of powder in each dose is small, usually less than 1 mg. The volume of the dose may be, for example, approximately 6.5 μl.
  • Problems involved in dispensing a powder containing only particles of active material include
      • (i) formation of stable agglomerates of the small particles which often are not broken down into individual particles in the airstream when the particles are inhaled and are, therefore, less likely to reach the lower lung on inhalation of the powder than the fine individual active particles;
      • (ii) variations in the amount of powder metered from a reservoir of the inhalation device due to poor flow properties of the powder and inconsistent agglomeration, leading to inconsistency in the size of dose, which may vary as much as ±50% compared with the nominal dose for the device;
      • (iii) incomplete removal of the dose from the device due to adherence of the particles to the walls of the device, leading to poor dose reproducibility.
  • An object of the present invention is to provide a dry powder for use in dry powder inhalers which overcomes or mitigates at least one of the above disadvantages.
  • According to the invention, there is provided a powder for use in a dry powder inhaler, the powder comprising active material and additive material, the additive material comprising an anti-adherent material and the powder including at least 60% by weight of active material based on the weight of the powder.
  • A purpose of the additive material is to hinder the formation of stable agglomerates of the active material in the powder. As indicated above, stable agglomeration of the active particles with the known powders may lead to decreased deposition of the active material in the lower lung, together with poor dose uniformity. That is because, when the small active particles agglomerate, the agglomerates which are formed may have a diameter of 100 μm or more. If those agglomerates do not break up when the powder is inhaled, they are unlikely to reach the lower lung due to their size.
  • The addition of the anti-adherent material decreases the cohesion between the particles of the powder containing the active material. It is thought that the additive material interferes with the weak bonding forces, such as Van der Waal's and Coulomb forces, between the small particles, helping to keep the particles separated and may be thought of as weak links or “chain breakers” between the particles. Adhesion of the particles to the walls of the device is also reduced. Where agglomerates of particles are formed, the addition of the additive material decreases the stability of those agglomerates so that they are more likely to break up in the turbulent airstream created on inhalation to form small individual particles which are likely to reach the lower lung.
  • The reduced tendency of the particles to bond strongly either to each other or to the device itself, reduces powder cohesion and adhesion and promotes better flow characteristics which leads to improvements in the dose reproducibility by reducing the variation in the amount of powder metered out for each dose and improving the release of the powder from the device as well as increasing the likelihood that the active material which does leave the device will reach the lower lung of the patient.
  • It is thought that it is favourable for unstable agglomerates of particles to be present in the powder when it is in the inhaler device. As indicated above, for a powder to leave an inhaler device efficiently and reproducibly, the particles of such a powder should be large, preferably larger than 45 μm. Such a powder may be in the form of either individual particles having a size of 45 μm or larger and/or agglomerates of finer particles, the agglomerates having a size of 45 μm or larger. The agglomerates formed can have a size of as much as 100 μm and, with the addition of the additive material, those agglomerates are more likely to be broken down efficiently in the turbulent airstream created on inhalation. Therefore the formation of unstable agglomerates of particles in the powder may be favoured compared with a powder in which there is substantially no agglomeration.
  • The reduction in the cohesion and adhesion between the active particles could lead to equivalent performance with reduced agglomerate size, or even with individual particles.
  • Where reference is made to anti-adherent materials, the reference is to include those materials which will decrease the cohesion between the particles of the powder. Those materials will include those usually thought of as anti-adherent materials, for example leucine, as well as others, for example, lecithin, which are not generally thought of as being anti-adherent but may nonetheless have the effect of decreasing the cohesion between the particles of the powder. Other materials commonly added to powders for use in inhalers, for example lactose and various other carrier particle materials, are not anti-adherent materials per se but might be added to a powder in addition to a suitable anti-adherent material, for example leucine as indicated below.
  • Furthermore, many materials are not suitable anti-adherent materials because they are “sticky” and tend to increase cohesion between particles. For example, fatty acids, increase stickiness in powders and are thought to be unsuitable as the additive material. Also, other materials such as sorbitan esters (for example SPAN 85) and cyclo dextrins are not suitable anti-adherent materials.
  • It is possible that materials which are anti-adherent for one type of active material, will not be anti-adherent for a different type. A suitable test to determine whether or not an additive material is anti-adherent is as follows.
  • The “Aeroflow” apparatus of Amherst Process Instruments Incorporated of Mountain Farms Technology Park, Hadley, Mass. 01035-9547 U.S.A., is used to assess whether a material is anti-adherent.
  • The Aeroflow apparatus is used to measure the flow properties of powders. A sample of powder is placed in a perspex cylinder which is rotated at a speed of about 5 rpm about a horizontal axis. As the cylinder rotates, the powder will tend to form a pile of powder which extends around the inner surface of the cylinder as powder material is carried round by the rotating cylinder. When the height of the pile reaches a certain level, powder material from the top of the pile avalanches down towards the bottom of the pile. Thus as the cylinder rotates, the powder will avalanche at a frequency dependent on the properties of the powder. For a freely flowing powder material, the time between avalanches will be low whereas for a cohesive material, the time between avalanches will be great.
  • The general procedure for the test is as follows:
      • (a) A powder for testing is made by mixing together active material and additive material as described in (i) or (ii) below to form a powder containing the concentration by weight of additive material of the powder to be tested. The particles of the powder are agglomerated by mixing the particles for 10 minutes at a relative humidity of 55% in a tumbling blender, preferably a Turbula mixer.
      • (i) Where the additive material is in the form of particles, blend the active and additive materials together,
      • (ii) where the additive material is to form a coating on the surfaces of the active particles as described below, the additive material is added to the active particles from suspension or from solution and the resulting powder is dried and divided.
      • (b) A 200 g sample of the powder obtained in (a) above is put into the Aeroflow apparatus and the mean time between avalanches is measured as the cylinder is rotated.
      • (c) (b) above is repeated for a sample of active material which has been prepared as in (a) above except that no additive material is added.
  • For a material which is to be taken as an anti-adherent material for the purposes of this invention, the mean time between avalanches will be lower for the material containing the additive material, indicating improved flow properties and less cohesion.
  • For additive materials comprising a fatty acid, the time between avalanches is greater when the fatty acid has been added to the material. Thus fatty acids are unsuitable for use as the anti-adherent material.
  • Where it is indicated that a material is not anti-adherent, that material might be added to the active material, for example as a diluent, provided that a suitable anti-adherent additive material is also added such that the resulting effect of the additive material and the diluent is anti-adherent. Where further components other than the active material and the anti-adherent material are included in the powder, advantageously the complete powder also “passes” the above test in that the combined effect of all of the components added to the active material is that of an anti-adherent material.
  • Advantageously, the powder comprises at least 70%, more preferably at least 80% by weight of active material based on the weight of the powder. Most advantageously, the powder comprises at least 90%, more preferably at least 95%, more preferably at least 97%, by weight of active material based on the weight of the powder. It is believed that there are physiological benefits in introducing as little powder as possible to the lungs, in particular material other than the active ingredient to be administered to the patient. Therefore, the quantities in which the additive material is added are preferably as small as possible. The most preferred powder, therefore, would comprise more than 99% by weight of active material.
  • Advantageously, at least 90% by weight of the particles of the powder have a particle size less than 63 μm, preferably less than 30 μm and more preferably less than 10 μm. As indicated above, the size of the particles of the powder should be within the range of about from 0.1 μm to 5 μm for effective delivery to the lower lung. Where the additive material is in the form of particles of material, as is described below, it may be advantageous for particles of the additive material to have a size outside the preferred range for delivery to the lower lung.
  • As indicated above, in some cases it will be preferred for the particles to be in the form of agglomerates in the powder. In such cases, the particle sizes indicated above are those of the individual particles making up the agglomerates.
  • It will be appreciated that the chemical composition of the additive material is of particular importance.
  • Advantageously, the additive material comprises physiologically acceptable material. Clearly, it is highly preferable for the additive material to be a material which may be safely inhaled into the lower lung, where it would usually be absorbed into the blood stream. The additive material should therefore be one which is safe to administer by inhalation. The additive material may include a combination of one or more materials.
  • Advantageously, the additive material includes one or more compounds selected from amino acids and derivatives thereof, and peptides and polypeptides having a molecular weight of between about 0.25 to 1000 kDa, and derivatives thereof. Amino acids, peptides and polypeptides and their derivatives are physiologically acceptable and act as anti-adherent materials when added to the active material. It is particularly advantageous for the additive material to comprise an amino acid. Amino acids have been found to give, when present as additive material, high respirable fraction of the active material and also good flow properties of the powder. A preferred amino acid is leucine, in particular L-leucine. Whilst the L-form of the amino acids is preferred in the Examples, the D- and DL-forms may also be used. The additive material may comprise one or more of any of the following amino acids: leucine, isoleucine, lysine, valine, methionine, cysteine, phenylalanine.
  • As indicated above, the additive material may include derivatives of amino acids or peptides. For example the additive material may be a salt or an ester, for example aspartame, or may be N acetyl-L cysteine. The additive material may comprise salts such as acesulfame K or other sweeteners, for example saccharin sodium or a cyclamate.
  • The additive material may include one or more water soluble compounds. Those compounds, if they penetrate into the deep lung may therefore be absorbed into the blood stream, which is advantageous.
  • The additive material may include one or more surface active materials which may be water soluble, for example, lecithin, in particular soya lecithin. Lecithin is not an especially preferred additive material because it is thought that at least in some cases it could give increased cohesion in the powder material.
  • The additive material may include dipolar ions which may be zwitterions.
  • Advantageously, the additive material includes a glidant material. A glidant material is one that will decrease the resistance to sliding of the particles. The addition of a glidant material, therefore, will lead to improved release of the powder from the inhaler device and therefore better dose uniformity. The glidant materials which have this effect will include those usually thought of as glidants as well as those not usually thought of as glidants but which have a glidant effect when added to the active material. Many of the anti-adherent materials described-above are also glidants. The glidant material may, therefore, be the same compound as that of the anti-adherent material, or may be a different compound or a mixture of compounds.
  • The active material referred to throughout the specification will be material comprising one or a mixture of pharmaceutical products. It will be understood that the term “active material” includes material which is biologically active, in the sense that it is able to decrease or increase the rate of a process in a biological environment. The pharmaceutical products include those products which are usually administered orally by inhalation for the treatment of disease such as respiratory disease e.g. β-agonists, salbutamol and its salts or salmeterol and its salts. Other pharmaceutical products which could be administered using a dry powder inhaler include peptides and polypeptides, such as DNase, leucotrienes and insulin.
  • The active material may include a β2-agonist, which may include salbutamol, a salt of salbutamol or a combination thereof. Salbutamol and its salts are widely used in the treatment of respiratory disease. The active material may be salbutamol sulphate. The active material may be terbutaline, a salt of terbutaline, for example terbutaline sulphate, or a combination thereof. Terbutaline sulphate is of particular importance. The active material may be ipatropium bromide.
  • The active material may include a steroid, which may be beclomethasone dipropionate or may-be fluticasone. The active material may include a cromone which may be sodium cromoglycate or nedocromil or its salts. The active material may include a leukotriene receptor antagonist.
  • The active material may include a carbohydrate, for example heparin.
  • Advantageously, the powder comprises particles of active material and particles of additive material. Where particles of additive material are used, by choosing a particular size of the additive particles, as described below, the amount of additive material entering the lower lung may be minimised. Also, it may be preferable for the additive to be present in the powder as particles rather than, for example, a coating around the particles of active material which may hinder the absorption of the active material into the blood stream.
  • Advantageously, at least 90% by weight of the additive particles have a particle size less than 63 μm, preferably, less than 30 μm, and more preferably less than 10 μm. The additive particles will usually have a particle size slightly larger than the particle size of the active particles to encourage deposition of the additive particles in the upper airways. To restrict the amount of the additive material penetrating to the deep lung on inhalation, it is advantageous to include additive particles having a size greater than 5 μm. The size of the particles may be calculated by laser diffraction or other method by which the aerodynamic diameter of the particles can be determined.
  • The additive particles may be non-spherical in shape. The additive particles may be plate-like particles, for example leucine particles. Alternatively the additive particles may be angular, for example prisms, or dendritic in shape, for example aspartame particles. Plate-like particles may give improved surface interaction and glidant action between the surfaces of the active particles thereby decreasing bonding between the active particles and reducing stable agglomeration.
  • Alternatively, for example where the nature of the additive material is such that small particles are not easily formed, or for clinical reasons, the additive material may form at least a partial coating on the surfaces of particles of the active material. It is found that even when a large amount of the additive material is added to the active material, there is no “coating” of the active particles in the sense in which that word would normally be used in the art, namely to refer to a continuous envelope around the active particle. Instead, a discontinuous covering is formed on the active particle. It is believed that the presence of such a discontinuous covering, as opposed to a “coating” is an important and advantageous feature of the present invention.
  • Additive material may be present in the powder both in the form of small particles and in the form of a coating on the surfaces of the particles of active material.
  • Where the additive material is to form a coating on the surfaces of the particles of active material, the additive material may be added to the active material from a suspension or from solution. The additive material may be added to the active material by co-crystallisation, co-spray drying, co-granulation or other similar method.
  • Where the additive is in the form of particles, the powder may be produced by, for example, blending together micronised active material and micronised additive material. Alternatively, the components of the powder may be micronised together to form the powder material.
  • The ratio in which the additive material and the active material are present in the powder will depend on the type of inhaler device used, the type of active material used and the required dose. Usually, the powder comprises at least 0.1% by weight of additive material based on the weight of the powder. The powder preferably comprises between about 0.1% and 40%, more preferably between about 0.25% and 5% by weight of additive material based on the weight of the active material.
  • It has been found that the addition of more additive material does not necessarily give a greater improvement in the properties of the resulting powder. For example, in the case where the additive material is leucine as in Example 8 below, the addition of 1% by weight of leucine gives good results, but the addition of 5% or 10% by weight of leucine does not give better results, indeed the respirable fraction is seen to decrease with increased addition of leucine.
  • Furthermore, because the additive material will in many cases be inhaled into the lung, it is preferable for only a small amount of additive material to be added.
  • The optimum amount of additive material in the powder will depend on the active material and additive material used. Advantageously, the powder comprises not more than 8% by weight, preferably not more than 5% by weight, of additive material. In some cases it will be advantageous for the powder to contain about 1% by weight of additive material.
  • Advantageously, at least 95% by weight of the active particles have a particle size less than 10 μm. Preferably, at least 95% by weight of the active particles have a particle size between about 0.1 μm and 10 μm, more preferably between about 0.1 μm and 5 μm. The particles will therefore give a good suspension on release from the inhaler device and delivery of the active particles deep into the respiratory tract. The size of the particles may be calculated as described above in respect of the additive particles.
  • The powder may also contain, for example, flavourings and colourant materials and may also contain diluents. Advantageously the powder includes less than 20% preferably less than 10%, more preferably less than 1%, by weight of constituents other than the active material and the anti-adherent material.
  • According to the invention, there is also provided a powder for use in a dry powder inhaler the powder comprising active particles and additive material, at least 90% by weight of the powder particles having a particle size of less than 63 μm, the powder including at least 60% by weight of active particles based on the weight of the powder.
  • Advantageously, at least 90% by weight of the powder particles have a particle size of less than 30 μm, preferably less than about 10 μm. Advantageously, the powder includes at least 80%, preferably at least 90% by weight of active particles based on the weight of the powder.
  • Advantageously, the powder includes not more than 8%, more advantageously not more than 5% by weight of additive material based on the weight of the powder. As indicated above, in some cases it will be advantageous for the powder to contain about 1% by weight of additive material.
  • As indicated above, the additive material may be in the form of particles.
  • The invention also provides, a powder for use in a dry powder inhaler, the powder comprising active particles and additive material, the additive material forming at least a partial coating on the surfaces of the particles of active material, the powder including at least 60% by weight of active material based on the weight of the powder, at least 90% by weight of the particles of the powder having a particle size less than 63 μm.
  • Advantageously, the powder includes at least 80%, preferably at least 90% by weight of active material based on the weight of the powder.
  • According to the invention, there is also provided a dry powder inhaler including a powder as described above.
  • Advantageously, the inhaler may be activated to dispense a dose of less than 10 mg of the powder, preferably not more than 5 mg, more preferably not more than 1 mg. Obviously, the size of the dose will depend on the active material to be delivered and the inhaler device used.
  • The invention also provides a dose of powder, the dose containing not more than 5 mg of powder described above, more preferably not more than 1 mg of the powder.
  • The invention also provides the use of an anti-adherent additive material in a powder for use in a dry powder inhaler, for improving the flow characteristics of the powder, the powder comprising at least 60% by weight of active material based on the weight of the powder. The test to assess whether a material is an anti-adherent material is indicated above.
  • Unless it is clear from the context otherwise, where reference is made to a range of sizes of particles, and to the size of particles, it is to mean that the majority of the relevant particles are within that range or are of that size. Preferably at least about 90% by weight of the relevant particles will be in that range or be of that size, more preferably at least 95% by weight.
  • The size of particles may, where appropriate be selected and/or-measured using a sieving method. Otherwise, the size of the particles may be determined using laser light diffraction, or other method in which the aerodynamic diameter of the particles may be determined, for example microscopic image analysis.
  • One of the objects of the invention is to hinder the formation of stable agglomerates of particles, especially active particles, in the powder. However, as described above, it may be desirable for unstable agglomerates to be formed in the powder, and the size of those agglomerates may be as large as 10 μm or more. The size of particles in the powder, when considering the agglomerates, is to be taken as the size of the individual particles making up the agglomerate. The sizes of the individual particles may be determined using microscopic image analysis.
  • Embodiments of the invention will now be described by way of example with reference to the accompanying drawings of which:
  • FIG. 1 shows a sectional view of a dry powder inhaler
  • FIG. 2 is a sectional diagram of a twin stage impinger.
  • FIG. 1 shows a view of a dry powder inhaler device known as a Turbohaler (Trade Mark). The Turbohaler is a breath actuated inhaler which may be used to meter out and deliver small quantities of dry powder. The mass of powder delivered for each inhalation is often less than 1 mg.
  • As shown in FIG. 1, the Turbohaler comprises an outer cylindrical body 2 which has a mouthpiece 3 around one end and a rotatable base 4 at the other end. The body 2 houses a storage chamber 5 for storing the dry powder to be dispensed, and a dosing disc 6 under the storage chamber. The dosing disc 6 includes a number of identical cavities around its edge.
  • Rotation of the base 4 causes rotation of the disc 6 and the cavities pass under the storage chamber 5 and are filled with a volume of the dry powder material. Forcible filling of the cavities, in an attempt to reduce variability in the amount of powder filled into the cavities, is achieved by the provision of scrapers above the cavities and a pressure plate below the dosing disc urging the disc 6 towards the storage chamber 5. The base 4 is rotated backwards and forwards to dispense the powder into the cavities.
  • Rotation of the disc 6 also brings successive cavities in and out of communication with a channel 8 which leads from the disc 6 to the mouthpiece 3.
  • To administer the powder, a filled cavity is brought into alignment with the channel 8 and a patient inhales through the mouthpiece 3. Air is drawn into the body via an inlet 7 (and other inlets) and the air passes through a hole in the pressure plate and through holes in the bottom of the cavity thereby discharging the contents of the cavity into the channel 8. The powder is inhaled via the mouthpiece 3.
  • To increase the turbulent airflow in the device, to help break up any agglomerates of powder, the device includes other inlets in the body 2. The mouthpiece includes channels 9 to increase turbulence.
  • The storage chamber usually has the capacity to hold approximately 200 doses of the powder and, when empty, may be refilled or disposed of.
  • Examples of suitable powders according to the invention, which may be used in a Turbohaler are as follows. Whilst the Examples refer to use of the powders in a Turbohaler, powders according to the invention may instead be used in other suitable devices, for example, a MIAT-Haler.
  • EXAMPLE 1
  • 2 g leucine powder was mixed with 198 g terbutaline sulphate powder in a Turbula mixer for approximately 15 minutes. Before mixing, the particles of the terbutaline sulphate had a mass median aerodynamic diameter (MMAD) of 2.1 μm, and 95% by weight of the leucine powder had a particle size less than 150 μm (at least 95% by weight passes through a 150 μm mesh sieve).
  • The resulting powder was agglomerated using a milling procedure. 50 g samples of the powder were milled in a porcelain ball mill (manufactured by Pascall Engineering Company) having a diameter of approximately 150 mm, using steel grinding balls. The milling was continued for about 6 hours. The agglomerated powder was filled into a Turbohaler in a known way.
  • Each metered dose for inhalation from the Turbohaler contained approximately:
    500 μg terbutaline sulphate
     5 μg leucine.
  • An approximate value for the volume of the metered dose might be 6.5 μl.
  • EXAMPLE 2
  • 2 g leucine powder was mixed with 198 g terbutaline sulphate powder as described in Example 1. The powder mixture was filled into a Turbo-haler.
  • Each metered does for inhalation from the Turbohaler contained approximately
    500 μg terbutaline sulphate
     5 μg leucine
  • An approximate value for the volume of the metered dose might be 6.5 μl.
  • EXAMPLE 3
  • 4 g of leucine powder was mixed with 196 g terbutaline sulphate powder as described above for Example 1. The resulting powder was agglomerated using a milling procedure as described for Example 1 and filled into a Turbohaler.
  • Each metered dose for inhalation from the Turbohaler contained approximately
    500 μg terbutaline sulphate
     10 μg leucine
  • EXAMPLE 4
  • 1 g soy lecithin (95% by weight of particles less than 710 μm) was dissolved in log water and 10 g IMS (or in 20 g 95% ethanol) and added to 199 g terbutaline sulphate powder (MMAD 2.1 μm) in a high shear mixer. The mixture was blended for four minutes and then dried on trays at 40° C. for 6 hours. The powder was screened through a 500 μm sieve then milled in a ball mill using steel balls, as described for Example 1, for six hours to cause agglomeration. The agglomerated powder was filled into a Turbohaler.
  • Each metered dose for inhalation from the Turbohaler contained approximately
    500 μg terbutaline sulphate
     2.5 μg soy lecithin
  • EXAMPLE 5
  • Agglomerated powder was prepared as for Example 3 above except that 4 g soy lecithin (95% by weight of particles less than 710 μm) was dissolved in log water and log IMS and added to 196 g terbutaline sulphate powder (MMAD 2.1 μm). The agglomerated powder was filled into a Turbohaler.
  • Each metered dose for inhalation from the Turbohaler contained approximately
    500 μg terbutaline sulphate
     10 μg soy lecithin
  • EXAMPLE 6
  • 1 g solid state soy lecithin having 95% by weight of particles having a size less than 100 μm were added to 199 g terbutaline sulphate (MMAD 2.1 μm) and mixed in a Turbula mixer for approximately 15 minutes. The resulting powder was agglomerated by ball milling as described in Example 1. The agglomerated powder was filled into a Turbohaler.
  • Each metered dose for inhalation from the Turbohaler contained approximately
    500 μg terbutaline sulphate
     2.5 μg soy lecithin
  • EXAMPLE 7
  • A powder for inhalation using a Turbohaler was prepared by mixing 199 g budesonide and 1 g L-leucine as described above for Example 1. The powder was agglomerated as described for Example 1 and filled into the Turbohaler in a known way.
  • Each metered dose for inhalation from the Turbohaler contained approximately:
    100 μg budesonide
     0.5 μg L-leucine
  • It will be understood that the Turbohaler device described above is only an example of a dry powder inhaler device which may be used to dispense powder according to the invention, and that different dry powder inhaler devices may be used.
  • The efficiency of the delivery of the active particles to the lungs of a patient by the inhaler device, and the dose reproducibility achieved, may be assessed using a twin stage impinger (TSI) as described below.
  • FIG. 2 shows a diagrammatic arrangement of a TSI. The TSI is a two stage separation device used in the assessment of oral inhalation devices. Stage one of the apparatus is shown to the right of the line AB in FIG. 2 and is a simulation of the upper respiratory tract. To the left of that line is stage two which is a simulation of the lower respiratory tract.
  • The TSI comprises a mouth 21 which comprises a polydimethylsiloxane adaptor, moulded to accept the mouthpiece of the inhaler device, upper tubing 22 and upper impinger 23 to simulate the upper respiratory tract, the upper impinger containing liquid 24, and lower tubing 25 and lower impinger 26 to simulate the lower respiratory tract, the lower impinger containing liquid 27. The lower impinger 26 is connected via an outlet pipe 28 to a pump 29 which draws air through the TSI apparatus at a predetermined rate. The base of the lower tubing 25 is at the level of the liquid 27 such that all the air drawn through the TSI bubbles through the lower liquid 27. The liquid used in both the upper and lower impinger is distilled water.
  • In use, the inhaler is placed in a mouth 21 of the TSI. Air is caused to flow through the apparatus by means of a pump 29 which is connected to stage two of the TSI. Air is sucked through the apparatus from the mouth 21, flows through upper tubing 22 via the upper impinger 23 and the lower tubing 25 to the lower impinger 26 where it bubbles through liquid 27 and exits the apparatus via outlet pipe 28. The liquid 24 in the upper impinger 23 traps any particle with a size such that it is unable to reach stage two of the TSI. Fine particles, which are the particles able to penetrate to the lungs in the respiratory tract, are able to pass into stage two of the TSI where they flow into the lower impinger liquid 27.
  • 30 ml of distilled water is put into the lower impinger 26 and 7 ml of distilled water is put into the upper impinger 23. The lower tubing 25 is arranged such that its lower end is at the level of the water in the lower impinger 26. The pump 29 is adjusted to give an air flow rate of 60 litres per minute in the apparatus.
  • The Turbohaler inhaler device is weighed. The mouthpiece 3 of the inhaler is connected to the mouth 21 of the TSI, the base 4 is rotated to dispense a dose of powder and the pump is switched on and timed for a period of ten seconds. The pump is then switched off and the Turbohaler is removed from the TSI, reweighed and the amount of powder lost from the inhaler calculated.
  • The sections of the apparatus making up stage one of the TSI are washed into a second flask and made up to 250 ml with distilled water. The sections making up the second stage of the TSI are washed into a third flask and made up to 100 ml with distilled water.
  • The test is repeated several times to assess the dose reproducibility.
  • The amount of active substance in each section of the TSI is measured for each test. For example, when the active substance is budesonide as for the Examples below, the following method may be used.
  • The contents of the flasks containing the washing from the stages of the TSI are assayed using High Performance Liquid Chromatography (HPLC) analysis for the content of budesonide and compared against standard solutions containing 0.5 μg/ml and 1 μg/ml of budesonide.
  • The percentage of budesonide in each stage of TSI is calculated from the standard response for each test and the mean for the tests may be calculated to give an indication of the proportion of the active particles reaching the second stage of the TSI apparatus and therefore an indication of the proportion of active substance which would reach the lower lung of a patient.
  • The variation in the measured values for the tests gives an indication of the dose reproducibility for the inhaler and the dry powder used.
  • EXAMPLE 8
  • Micronised budesonide was blended with micronised L-leucine to produce a powder by the following method.
  • Budesonide and L-leucine were mixed to give a concentration of 1% by weight of leucine and the mixture was blended in a Turbula mixer for up to 30 minutes. The blend was passed through a 355 μm aperture diameter sieve to improve mixing and to break up stable agglomerates to produce a powder having loose agglomerates of particles.
  • The resulting powder was weighed and filled into a Turbohaler inhaler device such that each actuation of the device dispensed about 200 μg of powder.
  • The above method was repeated to produce powders having 5% by weight of leucine and 10% by weight of leucine.
  • The efficiency of the delivery of the active material for the powders by the inhaler was then assessed using the TSI as described above.
  • Table 1 below shows the results of the TSI testing for each of the different percent by weight of leucine. The respirable fraction is calculated as the percentage of the total amount of drug emitted from the device that reaches stage two of the TSI and gives an indication of the proportion of active particles which would reach the deep lung in a patient. The standard deviation and the coefficient of variation are also given.
    TABLE 1
    1% 5% 10%
    leucine leucine leucine
    Respirable fraction (%) 67.3 59.1 54.9
    Standard deviation (%) 2.2 6.8 4.8
    Coefficient of 3.3 11.6 8.7
    variation (%)
  • Where no leucine is added to the active powder, the respirable fraction is about 55%.
  • In addition, it will be seen that the coefficient of variation is low, especially for the powder containing 1% by weight of leucine indicating good reproducibility of the results (corresponding to improved dose uniformity of the administered drug). This indicates that the dose uniformity is also significantly better than for the currently commercially available Turbohaler product in which the powder composition does not contain the leucine additive material.
  • EXAMPLE 9
  • A powder was made by the method of Example 8, by blending micronised budesonide and 5% by weight of micronised L-leucine and 15% by weight of Sorbolac (a lactose powder having a particle size less than 634 μm of Meggle Milchindustrie, Reitmehring Germany).
  • The resulting powder was assessed using the TSI.
  • Table 2 below shows the results of the TSI testing including the respirable fraction, the standard deviation and the coefficient of variation.
    TABLE 2
    5% leucine and 15% lactose
    Respirable fraction (%) 74.0
    Standard deviation (%) 3.1
    Coefficient of 4.2
    variation (%)
  • It can be seen that the addition of the lactose diluent significantly increased the respirable fraction and improved the dose uniformity.

Claims (28)

1. A powder for use in a dry powder inhaler, the powder comprising additive material and particles comprising active material, the additive material comprising an anti-adherent material and forming at least a partial covering on the surfaces of particles comprising active material so that cohesion and adhesion of the powder is reduced; wherein the powder includes at least 60% by weight of active material based on the weight of the powder.
2. A powder according to claim 1, wherein the reduction in powder cohesion and adhesion improves the respirable fraction of the powder.
3. A powder according to claim 1, wherein the powder comprises agglomerates of particles, the agglomerates having a size of at least 45 μm, and wherein the agglomerates break up upon actuation of the inhaler so that particles comprising active material are of a size suitable for delivery to the lower lung.
4. A powder according to claim 1, wherein the powder comprises at least 0.1% by weight of additive material based on the weight of the powder.
5. A powder according to claim 1, wherein the the powder comprises not more than 10% by weight of additive material based on the weight of the powder.
6. A powder according to claim 5, wherein the powder comprises not more than 8% by weight of additive material based on the weight of the powder.
7. A powder according to claim 1, wherein the powder comprises at least 80% by weight of active material based on the weight of the powder.
8. A powder according to claim 1, wherein at least 95% by weight of the particles comprising active material have a particle size less than 10 μm.
9. A powder according to claim 7, wherein at least 95% by weight of the particles comprising active material have a particle size between about 0.1 μm and 5 μm.
10. A powder according to claim 1 wherein at least 90% by weight of the particles of the powder have a particle size of less than 63 μm.
11. A powder according to claim 1, wherein the powder includes less than 20% by weight of constituents other than the active material and the anti-adherent material.
12. A powder according to claim 1, wherein the additive material includes one or more compounds selected from the group consisting of amino acids and derivatives thereof, peptides and polypeptides having a molecular weight of between about 0.25 to 1000 kDa, and derivatives thereof.
13. A powder according to claim 12, wherein the additive material is selected from the group consisting of leucine, isoleucine, lysine, valine, methionine, cysteine, pheylalanine and derivatives thereof.
14. A powder according to claim 1, wherein the additive material includes one or more water soluble compounds.
15. A powder according claim 14, wherein the additive material is lecithin.
16. A powder according to claim 1, wherein the additive material includes dipolar ions.
17. A powder according to claim 16, wherein the additive material includes zwitterions.
18. A powder according claim 1, wherein the additive material includes a glidant material.
19. A powder according to claim 1, wherein the active material includes one or more materials selected from the group consisting of peptides and polypeptides β2-agonists, steroids, cromones, leukotriene receptor antagonists, and carbohydrates.
20. A powder according to claim 1, wherein the additive material is in the form of particles.
21. A dry powder inhaler including a powder according to claim 1.
22. A method of forming a powder according to claim 1, wherein the active material and additive material are co-spray dried.
23. A method according to claim 22, wherein the additive material is selected from the group consisting of leucine, a derivative of leucine and lecithin.
24. A method according to claim 23, wherein the active material is heparin.
25. A method according to claim 1, wherein the active material and additive material are co-micronised.
26. A method according to claim 25, wherein the additive material is selected from the group consisting of leucine, a derivative of leucine and lecithin.
27. A method according to claim 26, wherein the active material is heparin.
28-36. (canceled)
US11/054,074 1995-07-24 2005-02-09 Powders comprising anti-adherent materials for use in dry powder inhalers Abandoned US20050152849A1 (en)

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Cited By (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20030162835A1 (en) * 2000-06-27 2003-08-28 Staniforth John Nicholas Method of making particles for use in a pharmaceutical composition
US20030185764A1 (en) * 2000-04-17 2003-10-02 Staniforth John Nicholas Pharmaceutical formulations for dry powder inhalers
US20040047810A1 (en) * 2000-11-30 2004-03-11 Staniforth John Nicholas Pharmaceutical compositions for inhalation
US20040071635A1 (en) * 2000-11-30 2004-04-15 Staniforth John Nicholas Particles for use in a pharmaceutical composition
US20060147389A1 (en) * 2004-04-14 2006-07-06 Vectura Ltd. Devices and pharmaceutical compositions for enhancing dosing efficiency
US20060257491A1 (en) * 2003-09-15 2006-11-16 Vectura Limited Dry powder composition comprising co-jet milled particles for pulmonary inhalation
US20070065373A1 (en) * 2003-09-15 2007-03-22 Vectura Ltd. Mucoactive agents for treating a pulmonary disease
US20080127972A1 (en) * 2004-11-23 2008-06-05 Vectura Limited Dry Powder Inhaler Formulations Comprising Surface-Modified Particles With Anti-Adherent Additives
US20080220078A1 (en) * 2004-11-30 2008-09-11 Vectura Limited Pharmaceutical Formulations
EP2036562A1 (en) 2007-08-15 2009-03-18 Endacea, Inc. A1 adenosine receptor antagonist for preventing and treating tissue injury and sepsis associated with yersinia pestis infection
WO2009086077A2 (en) 2007-12-21 2009-07-09 Endacea, Inc. A1 adenosine receptor antagonists
US9572774B2 (en) 2011-05-19 2017-02-21 Savara Inc. Dry powder vancomycin compositions and associated methods
WO2017035408A1 (en) 2015-08-26 2017-03-02 Achillion Pharmaceuticals, Inc. Compounds for treatment of immune and inflammatory disorders
WO2018005552A1 (en) 2016-06-27 2018-01-04 Achillion Pharmaceuticals, Inc. Quinazoline and indole compounds to treat medical disorders
US9877967B2 (en) 2010-01-26 2018-01-30 Endacea, Inc. Methods and pharmaceutical compositions for preventing and treating renal impairment
WO2019191112A1 (en) 2018-03-26 2019-10-03 C4 Therapeutics, Inc. Cereblon binders for the degradation of ikaros
WO2020041301A1 (en) 2018-08-20 2020-02-27 Achillion Pharmaceuticals, Inc. Pharmaceutical compounds for the treatment of complement factor d medical disorders
WO2020081723A1 (en) 2018-10-16 2020-04-23 Georgia State University Research Foundation, Inc. Carbon monoxide prodrugs for the treatment of medical disorders
EP4053117A1 (en) 2015-08-26 2022-09-07 Achillion Pharmaceuticals, Inc. Aryl, heteroaryl, and heterocyclic compounds for treatment of medical disorders

Families Citing this family (66)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6743777B1 (en) * 1992-03-19 2004-06-01 Eli Lilly And Company Cyclic peptide antifungal agents and process for preparation thereof
US6582728B1 (en) 1992-07-08 2003-06-24 Inhale Therapeutic Systems, Inc. Spray drying of macromolecules to produce inhaleable dry powders
GB9501841D0 (en) * 1995-01-31 1995-03-22 Co Ordinated Drug Dev Improvements in and relating to carrier particles for use in dry powder inhalers
GB9515182D0 (en) * 1995-07-24 1995-09-20 Co Ordinated Drug Dev Improvements in and relating to powders for use in dry powder inhalers
US5871010A (en) * 1996-06-10 1999-02-16 Sarnoff Corporation Inhaler apparatus with modified surfaces for enhanced release of dry powders
US20060165606A1 (en) 1997-09-29 2006-07-27 Nektar Therapeutics Pulmonary delivery particles comprising water insoluble or crystalline active agents
GB9827145D0 (en) * 1998-12-09 1999-02-03 Co Ordinated Drug Dev Improvements in or relating to powders
ES2433678T3 (en) * 1999-03-03 2013-12-12 Eli Lilly & Company Pharmaceutical formulations of echinocandin containing micelle-forming surfactants
PT1157030E (en) * 1999-03-03 2004-01-30 Lilly Co Eli EQUINOCANDINE / CARBON HYDRATE COMPLEXES
US7252840B1 (en) 1999-08-25 2007-08-07 Advanced Inhalation Research, Inc. Use of simple amino acids to form porous particles
US6586008B1 (en) 1999-08-25 2003-07-01 Advanced Inhalation Research, Inc. Use of simple amino acids to form porous particles during spray drying
PT1666028E (en) 1999-10-29 2010-06-15 Novartis Ag Dry powder compositions having improved dispersivity
EP1129705A1 (en) * 2000-02-17 2001-09-05 Rijksuniversiteit te Groningen Powder formulation for inhalation
PE20011227A1 (en) 2000-04-17 2002-01-07 Chiesi Farma Spa PHARMACEUTICAL FORMULATIONS FOR DRY POWDER INHALERS IN THE FORM OF HARD AGGLOMERATES
US7871598B1 (en) 2000-05-10 2011-01-18 Novartis Ag Stable metal ion-lipid powdered pharmaceutical compositions for drug delivery and methods of use
AU6926101A (en) * 2000-06-27 2002-01-08 Vectura Ltd Method of making particles for use in a pharmaceutical composition
US20040052733A1 (en) * 2000-11-30 2004-03-18 Staniforth John Nicholas Pharmaceutical compositions for inhalation
AU2211502A (en) * 2000-11-30 2002-06-11 Vectura Ltd Method of making particles for use in a pharmaceutical composition
AU2002245181B2 (en) 2000-12-21 2006-06-29 Nektar Therapeutics Pulmonary delivery of polyene antifungal agents
WO2002056948A1 (en) 2001-01-17 2002-07-25 Vectura Limited An inhaler device
US6681768B2 (en) 2001-06-22 2004-01-27 Sofotec Gmbh & Co. Kg Powder formulation disintegrating system and method for dry powder inhalers
CN1607941A (en) * 2001-11-19 2005-04-20 贝克顿迪肯森公司 Pharmaceutical compositions in particulate form
JP2005514393A (en) 2001-12-19 2005-05-19 ネクター セラピューティクス Supplying aminoglycosides to the lung
US9339459B2 (en) 2003-04-24 2016-05-17 Nektar Therapeutics Particulate materials
US6991800B2 (en) 2002-06-13 2006-01-31 Vicuron Pharmaceuticals Inc. Antifungal parenteral products
US20040204439A1 (en) * 2003-04-14 2004-10-14 Staniforth John Nicholas Composition, device, and method for treating sexual dysfunction via inhalation
CN102688224A (en) * 2003-04-14 2012-09-26 维克特拉有限公司 Device and pharmaceutical composition enhancing administration efficiency
WO2004093848A2 (en) * 2003-04-14 2004-11-04 Vectura Ltd Dry power inhaler devices and dry power formulations for enhancing dosing efficiency
US7862834B2 (en) * 2003-05-28 2011-01-04 Novartis Pharma Ag Pharmaceutical formulation comprising a water-insoluble active agent
EP1663164A2 (en) * 2003-09-15 2006-06-07 Vectura Limited Methods for preparing pharmaceutical compositions
GB0326632D0 (en) 2003-11-14 2003-12-17 Jagotec Ag Dry powder formulations
US8546423B2 (en) 2005-05-18 2013-10-01 Mpex Pharmaceuticals, Inc. Aerosolized fluoroquinolones and uses thereof
SI2594272T1 (en) 2005-05-18 2018-10-30 Horizon Orphan Llc Aerosolized fluoroquinolones and uses thereof
GB0525254D0 (en) * 2005-12-12 2006-01-18 Jagotec Ag Powder compositions for inhalation
US8153604B2 (en) * 2006-04-24 2012-04-10 Geron Corporation CNS-tumor treatment method and composition
DE102006030164A1 (en) * 2006-06-29 2008-01-03 Boehringer Ingelheim Pharma Gmbh & Co. Kg Inhalative powders
PT2346509T (en) 2008-10-07 2020-08-05 Horizon Orphan Llc Inhalation of levofloxacin for reducing lung inflammation
PL2344129T3 (en) 2008-10-07 2018-07-31 Horizon Orphan Llc Aerosol fluoroquinolone formulations for improved pharmacokinetics
PT2400950T (en) 2009-02-26 2019-08-29 Glaxo Group Ltd Pharmaceutical formulations comprising 4-{(1 r)-2-[(6-{2-[(2,6-dichlorobenzyl)oxy]ethoxy}hexyl)amino]-1-hydroxyethyl}-2-(hydroxymethyl)phenol
EP2410981B2 (en) 2009-03-26 2020-02-26 Pulmatrix Operating Company, Inc. Dry powder formulations and methods for treating pulmonary diseases
AU2010289326B2 (en) 2009-09-04 2015-09-24 Horizon Therapeutics U.S. Holding Llc Use of aerosolized levofloxacin for treating cystic fibrosis
GB0921075D0 (en) 2009-12-01 2010-01-13 Glaxo Group Ltd Novel combination of the therapeutic agents
GB0921481D0 (en) 2009-12-08 2010-01-20 Vectura Ltd Process and product
US8758824B2 (en) 2010-08-30 2014-06-24 Pulmatrix, Inc. Respirably dry powder comprising calcium lactate, sodium chloride and leucine
US9061352B2 (en) 2010-08-30 2015-06-23 Pulmatrix, Inc. Dry powder formulations and methods for treating pulmonary diseases
RU2017144619A (en) 2010-09-29 2019-02-20 Пулмэтрикс, Инк. CASES OF SINGLE-VALVE METALS OF DRY POWDERS FOR INHALATIONS
PT3470057T (en) 2010-09-29 2021-12-03 Pulmatrix Operating Co Inc Cationic dry powders comprising magnesium salt
TW201304822A (en) 2010-11-15 2013-02-01 Vectura Ltd Compositions and uses
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EP4059499A1 (en) 2011-01-31 2022-09-21 Avalyn Pharma Inc. Aerosol pirfenidone and pyridone analog compounds and uses thereof
US20150136130A1 (en) 2012-02-29 2015-05-21 Pulmatrix, Inc. Inhalable dry powders
US8993041B2 (en) 2012-10-15 2015-03-31 New Jersey Institute Of Technology Taste masked active pharmaceutical powder compositions and processes for making them
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GB201305825D0 (en) 2013-03-28 2013-05-15 Vectura Ltd New use
CA2907566C (en) 2013-04-01 2023-08-22 Pulmatrix, Inc. Tiotropium dry powders
EP3027026A4 (en) 2013-07-31 2017-05-03 Windward Pharma, Inc. Aerosol tyrosine kinase inhibitor compounds and uses thereof
CA2936330C (en) 2014-01-10 2023-01-03 Genoa Pharmaceuticals Inc. Aerosol pirfenidone and pyridone analog compounds and uses thereof
CN113620958A (en) 2014-03-19 2021-11-09 无限药品股份有限公司 Heterocyclic compounds for the treatment of PI 3K-gamma mediated disorders
WO2015179369A1 (en) 2014-05-20 2015-11-26 Infinity Pharmaceuticals, Inc. Treatment of pulmonary or respiratory diseases by inhalation administration of pi3 kinase inhibitors
EP3203985A1 (en) * 2014-10-08 2017-08-16 Pulmatrix Operating Company, Inc. Improved stability of dry powders containing tiotropium and amino acid
CN107106641B (en) 2014-10-31 2021-12-21 葛兰素史密斯克莱知识产权发展有限公司 Powder formulation
KR102559152B1 (en) 2016-06-30 2023-07-26 필립모리스 프로덕츠 에스.에이. nicotine particles
US10139321B2 (en) * 2016-07-29 2018-11-27 Alpha-Tec Systems, Inc. Mucolytic tablet for a sample collection device
KR20220019027A (en) * 2019-06-10 2022-02-15 레스피라 테라퓨틱스 인크. Carrier-Based Formulations and Related Methods
WO2022240897A1 (en) 2021-05-10 2022-11-17 Sepelo Therapeutics, Llc Pharmaceutical composition comprising delafloxacin for administration into the lung
WO2023028364A1 (en) 2021-08-27 2023-03-02 Sepelo Therapeutics, Llc Targeted compositions and uses therof

Citations (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3294544A (en) * 1964-11-06 1966-12-27 Richardson Merrell Inc Artificial sweetener-arabinogalactan composition and edible foodstuff utilizing same
US5506203A (en) * 1993-06-24 1996-04-09 Ab Astra Systemic administration of a therapeutic preparation
US6153224A (en) * 1995-01-31 2000-11-28 Co-Ordinated Drug Development Limited Carrier particles for use in dry powder inhalers
US6475523B1 (en) * 1995-07-24 2002-11-05 Vectura Limited Powders comprising anti-adherant materials for use in dry powder inhalers
US6582728B1 (en) * 1992-07-08 2003-06-24 Inhale Therapeutic Systems, Inc. Spray drying of macromolecules to produce inhaleable dry powders
US20030162835A1 (en) * 2000-06-27 2003-08-28 Staniforth John Nicholas Method of making particles for use in a pharmaceutical composition
US20030165436A1 (en) * 2000-04-17 2003-09-04 Staniforth John Nicholas Formulations for use in inhaler devices
US20030175214A1 (en) * 2000-04-17 2003-09-18 Staniforth John Nicholas Formulations for use in inhaler devices
US20030185764A1 (en) * 2000-04-17 2003-10-02 Staniforth John Nicholas Pharmaceutical formulations for dry powder inhalers
US20040037785A1 (en) * 2000-11-30 2004-02-26 Staniforth John Nicholas Method of making particles for use in a pharmaceutical composition
US20040071635A1 (en) * 2000-11-30 2004-04-15 Staniforth John Nicholas Particles for use in a pharmaceutical composition
US20060147389A1 (en) * 2004-04-14 2006-07-06 Vectura Ltd. Devices and pharmaceutical compositions for enhancing dosing efficiency

Family Cites Families (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB905723A (en) 1959-12-10 1962-09-12 Alfred Ernest Tragham Pharmaceutical compositions comprising phenacitin
GB1230087A (en) 1967-08-17 1971-04-28
GB1381872A (en) 1971-06-22 1975-01-29 Fisons Ltd Pharmaceutical compositions for inhalation
IT1204826B (en) * 1986-03-04 1989-03-10 Chiesi Farma Spa INHALATION PHARMACEUTICAL COMPOSITIONS
IL97065A (en) * 1990-02-02 1994-01-25 Fisons Plc Aerosol propellant compositions
CA2077354A1 (en) * 1990-03-23 1991-09-24 Minnesota Mining And Manufacturing Company Use of soluble fluorosurfactants for the preparation of metered-dose aerosol formulations
GB9024366D0 (en) * 1990-11-09 1991-01-02 Glaxo Group Ltd Medicaments
GB2269992A (en) 1992-08-14 1994-03-02 Rh Ne Poulenc Rorer Limited Powder inhalation formulations
ZA94155B (en) * 1992-11-06 1995-07-11 Adcock Ingram Pharma Pharmaceutical composition
SE9203743D0 (en) 1992-12-11 1992-12-11 Astra Ab EFFICIENT USE
IS1796B (en) 1993-06-24 2001-12-31 Ab Astra Inhaled polypeptide formulation composition which also contains an enhancer compound
TW402506B (en) * 1993-06-24 2000-08-21 Astra Ab Therapeutic preparation for inhalation
GB9322014D0 (en) * 1993-10-26 1993-12-15 Co Ordinated Drug Dev Improvements in and relating to carrier particles for use in dry powder inhalers
US6051256A (en) 1994-03-07 2000-04-18 Inhale Therapeutic Systems Dispersible macromolecule compositions and methods for their preparation and use
AU689217B2 (en) 1994-03-07 1998-03-26 Novartis Ag Methods and compositions for pulmonary delivery of insulin
US6019968A (en) 1995-04-14 2000-02-01 Inhale Therapeutic Systems, Inc. Dispersible antibody compositions and methods for their preparation and use
US6309671B1 (en) 1995-04-14 2001-10-30 Inhale Therapeutic Systems Stable glassy state powder formulations
US6136346A (en) 1995-04-14 2000-10-24 Inhale Therapeutic Systems Powdered pharmaceutical formulations having improved dispersibility

Patent Citations (16)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3294544A (en) * 1964-11-06 1966-12-27 Richardson Merrell Inc Artificial sweetener-arabinogalactan composition and edible foodstuff utilizing same
US6582728B1 (en) * 1992-07-08 2003-06-24 Inhale Therapeutic Systems, Inc. Spray drying of macromolecules to produce inhaleable dry powders
US5506203A (en) * 1993-06-24 1996-04-09 Ab Astra Systemic administration of a therapeutic preparation
US5506203C1 (en) * 1993-06-24 2001-02-06 Astra Ab Systemic administration of a therapeutic preparation
US6153224A (en) * 1995-01-31 2000-11-28 Co-Ordinated Drug Development Limited Carrier particles for use in dry powder inhalers
US6475523B1 (en) * 1995-07-24 2002-11-05 Vectura Limited Powders comprising anti-adherant materials for use in dry powder inhalers
US20030175214A1 (en) * 2000-04-17 2003-09-18 Staniforth John Nicholas Formulations for use in inhaler devices
US20030165436A1 (en) * 2000-04-17 2003-09-04 Staniforth John Nicholas Formulations for use in inhaler devices
US20030185764A1 (en) * 2000-04-17 2003-10-02 Staniforth John Nicholas Pharmaceutical formulations for dry powder inhalers
US6884794B2 (en) * 2000-04-17 2005-04-26 Chiesi Farmaceutici S.P.A. Pharmaceutical formulations for dry powder inhalers in the form of hard-pellets
US7541022B2 (en) * 2000-04-17 2009-06-02 Vectura Limited Pharmaceutical formulations for dry powder inhalers
US20030162835A1 (en) * 2000-06-27 2003-08-28 Staniforth John Nicholas Method of making particles for use in a pharmaceutical composition
US20040037785A1 (en) * 2000-11-30 2004-02-26 Staniforth John Nicholas Method of making particles for use in a pharmaceutical composition
US20040047810A1 (en) * 2000-11-30 2004-03-11 Staniforth John Nicholas Pharmaceutical compositions for inhalation
US20040071635A1 (en) * 2000-11-30 2004-04-15 Staniforth John Nicholas Particles for use in a pharmaceutical composition
US20060147389A1 (en) * 2004-04-14 2006-07-06 Vectura Ltd. Devices and pharmaceutical compositions for enhancing dosing efficiency

Cited By (49)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7541022B2 (en) 2000-04-17 2009-06-02 Vectura Limited Pharmaceutical formulations for dry powder inhalers
US20030185764A1 (en) * 2000-04-17 2003-10-02 Staniforth John Nicholas Pharmaceutical formulations for dry powder inhalers
US9566239B2 (en) 2000-04-17 2017-02-14 Vectura Limited Pharmaceutical formulations for dry powder inhalers
US8871274B2 (en) 2000-04-17 2014-10-28 Vectura Limited Pharmaceutical formulations for dry powder inhalers
US20090269412A1 (en) * 2000-04-17 2009-10-29 Vectura Limited Pharmaceutical formulations for dry powder inhalers
US10561613B2 (en) 2000-06-27 2020-02-18 Vectura Limited Method of making particles for use in a pharmaceutical composition
US20030162835A1 (en) * 2000-06-27 2003-08-28 Staniforth John Nicholas Method of making particles for use in a pharmaceutical composition
US9351928B2 (en) 2000-06-27 2016-05-31 Vectura Limited Method of making particles for use in a pharmaceutical composition
US7744855B2 (en) 2000-06-27 2010-06-29 Vectura Limited Method of making particles for use in a pharmaceutical composition
US9962338B2 (en) 2000-11-30 2018-05-08 Vectura Limited Method of making particles for use in a pharmaceutical composition
US10188612B2 (en) 2000-11-30 2019-01-29 Vectura Limited Pharmaceutical compositions for inhalation
US10973771B2 (en) 2000-11-30 2021-04-13 Vectura Limited Method of making particles for use in a pharmaceutical composition
US20040047810A1 (en) * 2000-11-30 2004-03-11 Staniforth John Nicholas Pharmaceutical compositions for inhalation
US10449161B2 (en) 2000-11-30 2019-10-22 Vectura Limited Pharmaceutical compositions for inhalation
US7736670B2 (en) 2000-11-30 2010-06-15 Vectura Limited Method of making particles for use in a pharmaceutical composition
US10238601B2 (en) 2000-11-30 2019-03-26 Vectura Limited Particles for use in a pharmaceutical composition
US20040071635A1 (en) * 2000-11-30 2004-04-15 Staniforth John Nicholas Particles for use in a pharmaceutical composition
US9931304B2 (en) 2000-11-30 2018-04-03 Vectura Limited Method of making particles for use in a pharmaceutical composition
US8956661B2 (en) 2000-11-30 2015-02-17 Vectura Limited Method of making composite particles for use in pharmaceutical compositions and composite particles and compositions thereof
US8048451B2 (en) 2000-11-30 2011-11-01 Vectura Limited Pharmaceutical compositions for inhalation
US8932635B2 (en) 2000-11-30 2015-01-13 Vectura Limited Pharmaceutical compositions of hydrophobic surface-modified active substance microparticles for inhalation
US8303991B2 (en) 2000-11-30 2012-11-06 Vectura Limited Method of making particles for use in a pharmaceutical composition
US8580306B2 (en) 2000-11-30 2013-11-12 Vectura Limited Particles for use in a pharmaceutical composition
US20070081948A1 (en) * 2003-09-15 2007-04-12 Vectura Limited Dry powder composition comprising a benzodiazepine for pulmonary inhalation
US8182838B2 (en) 2003-09-15 2012-05-22 Vectura Limited Dry powder composition comprising co-jet milled particles for pulmonary inhalation
US7928089B2 (en) 2003-09-15 2011-04-19 Vectura Limited Mucoactive agents for treating a pulmonary disease
US20060257491A1 (en) * 2003-09-15 2006-11-16 Vectura Limited Dry powder composition comprising co-jet milled particles for pulmonary inhalation
US11103448B2 (en) 2003-09-15 2021-08-31 Vectura Limited Manufacture of pharmaceutical compositions
US20110217339A1 (en) * 2003-09-15 2011-09-08 Vectura Limited Mucoactive agents for treating a pulmonary disease
US20070065373A1 (en) * 2003-09-15 2007-03-22 Vectura Ltd. Mucoactive agents for treating a pulmonary disease
US20060147389A1 (en) * 2004-04-14 2006-07-06 Vectura Ltd. Devices and pharmaceutical compositions for enhancing dosing efficiency
US9642800B2 (en) 2004-11-23 2017-05-09 Vectura Limited Dry powder inhaler formulations comprising surface-modified particles with anti-adherent additives
US20080127972A1 (en) * 2004-11-23 2008-06-05 Vectura Limited Dry Powder Inhaler Formulations Comprising Surface-Modified Particles With Anti-Adherent Additives
US9585834B2 (en) 2004-11-23 2017-03-07 Vectura Limited Dry powder inhaler formulations comprising surface-modified particles with anti-adherent additives
US20110236492A1 (en) * 2004-11-23 2011-09-29 Vectura Limited Dry powder inhaler formulations comprising surface-modified particles with anti-adherent additives
US20080220078A1 (en) * 2004-11-30 2008-09-11 Vectura Limited Pharmaceutical Formulations
EP2036562A1 (en) 2007-08-15 2009-03-18 Endacea, Inc. A1 adenosine receptor antagonist for preventing and treating tissue injury and sepsis associated with yersinia pestis infection
WO2009086077A2 (en) 2007-12-21 2009-07-09 Endacea, Inc. A1 adenosine receptor antagonists
US9522916B2 (en) 2007-12-21 2016-12-20 Constance Neely Wilson A1 adenosine receptor antagonists
US9877967B2 (en) 2010-01-26 2018-01-30 Endacea, Inc. Methods and pharmaceutical compositions for preventing and treating renal impairment
US10561608B2 (en) 2011-05-19 2020-02-18 Savara Inc. Dry powder Vancomycin compositions and associated methods
US9572774B2 (en) 2011-05-19 2017-02-21 Savara Inc. Dry powder vancomycin compositions and associated methods
WO2017035408A1 (en) 2015-08-26 2017-03-02 Achillion Pharmaceuticals, Inc. Compounds for treatment of immune and inflammatory disorders
EP4053117A1 (en) 2015-08-26 2022-09-07 Achillion Pharmaceuticals, Inc. Aryl, heteroaryl, and heterocyclic compounds for treatment of medical disorders
WO2018005552A1 (en) 2016-06-27 2018-01-04 Achillion Pharmaceuticals, Inc. Quinazoline and indole compounds to treat medical disorders
EP3939591A1 (en) 2016-06-27 2022-01-19 Achillion Pharmaceuticals, Inc. Quinazoline and indole compounds to treat medical disorders
WO2019191112A1 (en) 2018-03-26 2019-10-03 C4 Therapeutics, Inc. Cereblon binders for the degradation of ikaros
WO2020041301A1 (en) 2018-08-20 2020-02-27 Achillion Pharmaceuticals, Inc. Pharmaceutical compounds for the treatment of complement factor d medical disorders
WO2020081723A1 (en) 2018-10-16 2020-04-23 Georgia State University Research Foundation, Inc. Carbon monoxide prodrugs for the treatment of medical disorders

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