Method of treating epilepsy

Alprazolam condensation aerosol for inhalation addresses the limitations of existing seizure treatments by providing rapid and effective seizure prevention and reduction through optimized particle size and delivery, suitable for self-administration during prodromal or aura phases.

JP2025116139APending Publication Date: 2025-08-07ALEXZA PHARMACEUTICALS INC
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Patent Information

Application Number
JP2025089875
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2017-04-13
Filing Date
2025-05-29
Publication Date
2025-08-07

AI Technical Summary

Technical Problem

Current treatments for epilepsy and seizures, such as rectal diazepam gel and intranasal benzodiazepines, are cumbersome, have delayed onset, and limited bioavailability, and are not suitable for self-administration during the prodromal or aura phase to prevent or reduce seizure severity.

Method used

Administering a therapeutically effective dose of alprazolam via oral inhalation as a condensation aerosol, with particle sizes optimized for deep lung delivery, allowing rapid absorption and bioavailability comparable to intravenous administration.

Benefits of technology

Provides rapid seizure suppression within minutes, with up to 15 minutes of efficacy, and can be self-administered during the prodromal or aura phase to prevent or reduce seizure intensity and frequency, offering a convenient and effective rescue medication.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide methods for treating epilepsy and / or seizures in a mammal subject.SOLUTION: The present invention provides methods for treating epilepsy and / or seizure in a mammal subject, comprising administering a therapeutically effective dose of alprazolam via oral inhalation. The alprazolam is delivered in the form of an aerosol, e.g., condensation aerosol, through an oral inhalation route.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] Copyright Notice A portion of the disclosure of this patent document contains material that is subject to patent protection. The copyright owner has no objection to the facsimile reproduction by anyone of the patent document or patent disclosure as it appears in a patent application or record in the Patent and Trademark Office, but otherwise reserves all and any copyright rights whatsoever.

[0002] The present invention relates generally to methods of treating epilepsy and / or seizures in a subject, comprising administering a therapeutic dose of alprazolam via inhalation to said subject in need thereof. More specifically, the present invention relates to methods of treating epilepsy and / or seizures by administering a condensed alprazolam aerosol. [Background technology]

[0003] Approximately 3 million people in the United States suffer from epilepsy. There are two types of epileptic seizures: partial-onset seizures and generalized seizures. Once diagnosed, patients are prescribed antiepileptic drugs (AEDs). If two AEDs are ineffective, the disease is deemed refractory or uncontrolled. One million patients live with uncontrolled seizures due to the lack of effective available treatments. Of those with uncontrolled seizures, approximately 200,000, or 20%, have a premonitory system or predictive pattern that alerts patients to the onset of seizure activity. Premonitory signals can occur minutes or days in advance and can include muscle jerks, déjà vu, behavioral changes such as "mean streak," hallucinations or hallucinations, foul odors, anxiety, or flashing lights.

[0004] A seizure can be defined as abnormal, uncontrolled electrical activity in brain cells. Seizures can progress through four stages: prodromal symptoms, aura, seizure, and postictal symptoms. Auras are small, partial seizures often followed by larger events. Predictive patterns can occur during the prodromal and aura phases, and patients with such predictive patterns can be given medications that ameliorate or stop seizure activity. To date, no out-of-office treatments are available to treat seizures during these periods. The seizure or ictal phase is the primary generalized seizure stage. What happens to a person during a seizure depends on the location in the brain where the disruption of neural activity occurs. Certain brain areas may be more involved in seizure activity than others. The motor cortex, responsible for body movement, and the temporal lobe, including the hippocampus, involved in memory, are particularly sensitive to biochemical fluctuations (e.g., decreased oxygen levels, metabolic imbalances, infections) that stimulate abnormal brain cell activity. Following a seizure, the person enters a postictal state. Drowsiness and confusion are common during this period. The post-ictal state is the period during which the brain recovers from the damage it has sustained.

[0005] Episodes of recurrent seizures differ from the usual seizure pattern. Recurrent seizures involve multiple seizures, such as three or more, within a 24-hour period in adults (or within a 12-hour period in children). Episodes may last from minutes to hours. These seizures carry a significantly increased risk of convulsive status epilepticus.

[0006] Benzodiazepines are recognized as a treatment of choice for seizures. This family of drugs has been observed to have sedative, tranquilizing, and muscle relaxant properties. Benzodiazepines are often classified as anxiolytics and skeletal muscle relaxants. They may be useful in preventing, treating, or ameliorating anxiety, insomnia, agitation, seizures (such as those induced by epilepsy), muscle spasms and rigidity, withdrawal symptoms associated with continued abuse of central depressants, and symptoms of exposure to neurological agents. Benzodiazepines inhibit the GABA receptors in nerve cells. AIt appears to act by binding to receptors, possibly causing a change in the receptor's shape, making it more accessible to gamma-aminobutyric acid (GABA).

[0007] Rectal diazepam (DZ) gel (Diastat®) is approved for the treatment of acute recurrent seizures (ARS). The gel should only be administered by a trained caregiver or healthcare professional, and administration involves multiple steps. It is likely to be used only in pediatric patients. Onset of therapeutic action occurs 30-40 minutes after administration, with a bioavailability of 70-90% of the administered dose. Peak plasma concentrations occur 1.5 hours after administration. Diazepam has a long half-life of 46 hours, and the active metabolite, desmethyl-DZ, has a half-life of 71 hours. Sedation and somnolence are known side effects.

[0008] Pharmaceutical compositions containing one or more benzodiazepine drugs for nasal administration are disclosed in U.S. Patent No. 8,895,546. Intranasal and intramuscular administration of benzodiazepines, such as midazolam or diazepam, have not yet been approved for the treatment of ARS. Intranasal administration of benzodiazepines can take up to four steps. Onset of action can take 15 to 40 minutes, and the bioavailability of the administered dose is only 40 to 80%. Side effects can include nasal irritation, memory loss, and black box respiratory depression.

[0009] Once the initial seizure has ended, rectal, intranasal and intramuscular administration of benzodiazepine drugs are administered in the post-seizure phase to address prevention of subsequent seizures. It would be desirable to identify and develop treatments that could be administered during the prodromal or aura phase of seizure activity to reduce the severity of or stop an existing seizure. The present invention is directed to overcoming or ameliorating one or more of the problems discussed above. Summary of the Invention

[0010] The present invention provides a method for treating epilepsy and / or seizures in a mammalian subject, comprising administering a therapeutically effective dose of alprazolam via oral inhalation. The alprazolam is delivered via the oral inhalation route in the form of an aerosol, e.g., a condensation aerosol. In some embodiments, the patient is human.

[0011] The alprazolam aerosol comprises particles of alprazolam having a particle size distribution. In one embodiment, at least 80% of the alprazolam particles by weight have a size of less than 5 microns. In another embodiment, at least 90% of the alprazolam particles by weight have a size of less than 5 microns. In another embodiment, at least 50% of the alprazolam particles by weight have a size of less than 2 microns. In another embodiment, at least 50% of the alprazolam aerosol particles by weight have a size of less than 1 micron. In some embodiments, the alprazolam may be substantially excipient-free or excipient-free.

[0012] The dose of alprazolam administered to the subject is determined by the specific C max and T max For example, alprazolam exhibits plasma T max In some embodiments, the T max is less than 15 minutes after administration, preferably less than 5 minutes after administration, or more preferably less than 2 minutes after administration. max is at least 5 ng / mL after oral administration. max is at least 12 ng / mL after oral administration, or at least 30 ng / mL after oral administration.

[0013] Orally administered alprazolam exhibits similar bioavailability to intravenously administered alprazolam. For example, administered alprazolam aerosol exhibits a bioavailability that is approximately 80-125% of the bioavailability achieved with intravenously administered alprazolam.

[0014] The alprazolam may be self-administered at the onset of one or more symptoms of an epileptic seizure, or the alprazolam is self-administered before the onset of one or more symptoms of an epileptic seizure, or the alprazolam is self-administered after the onset of one or more symptoms of an epileptic seizure. The one or more symptoms of epilepsy include seizures; and / or the treatment prevents seizures, reduces or ameliorates the intensity of seizures, reduces or ameliorates the frequency of seizures, interrupts seizure cycles, and / or prevents the occurrence or recurrence of seizures.

[0015] Other embodiments include those in which the seizures include epileptic, breakthrough, or other seizures; those in which the seizures include partial (focal) or generalized seizures; those in which the partial seizures include complex partial seizures, simple partial seizures, or seizures originating in a neural network limited to one hemisphere; or those in which the generalized seizures originate at several points in a bilaterally distributed neural network or develop from partial seizures.

[0016] If the subject is in the prodromal or aura phase of a seizure, for example, if the patient is subjectively experiencing a sensory or experiential aura, where the sensory aura includes somatosensory, visual, auditory, olfactory, gustatory, gastric, or cephalic aura, or if the experiential aura includes emotional, memory, hallucinatory, or illusionary aura, the method also includes administering alprazolam condensation aerosol. Another embodiment of the method is one in which the subject is a patient with cluster or acute repetitive seizures, prolonged focal partial seizures, or juvenile myoclonic epilepsy.

[0017] The present invention may be a rescue medication for the treatment of epilepsy and / or seizures. Upon activation of the device described herein, the patient receives a dose of alprazolam that provides immediate symptomatic relief.

[0018] The effect of the administered alprazolam may be maximal within 2 to 15 minutes of inhaling the alprazolam. For example, the maximal effect may occur within 5 minutes of inhaling the alprazolam, or within 2 minutes of inhaling the alprazolam.

[0019] Embodiments include those in which epileptiform activity is absent within 15 minutes of inhaling alprazolam; and / or those in which epileptiform activity is absent for at least 6 hours after inhaling alprazolam.

[0020] Various modifications and additions can be made to the embodiments discussed without departing from the scope of the invention. For example, while the embodiments described above refer to particular features, the scope of this invention also includes embodiments having different combinations of features and embodiments that do not include all of the features described above.

[0021] A further understanding of the nature and advantages of particular embodiments may be realized by reference to the remaining portions of the specification and drawings, wherein like reference numerals are used to refer to like components. [Brief explanation of the drawings]

[0022] [Figure 1] 1 shows a photograph of a device for oral inhalation administration of alprazolam. [Figure 2] A cross-sectional view of the device is shown before and after initiation of aerosol formation by inhalation. [Figure 3] 1 shows photographs of aerosol generation at various time points after heating begins, according to one embodiment of the present invention. [Figure 4] 1 shows a graph of the particle size distribution of alprazolam condensation aerosol emitted from a device according to one embodiment of the present invention. [Figure 5A] 1 shows a graph of mean plasma concentrations in a Phase 1 clinical trial, according to one embodiment of the present invention. [Figure 5B] 1 shows a graph of mean plasma concentrations in an early Phase 2 clinical trial, according to one embodiment of the present invention. [Figure 6] 1 shows a graph of mean standardized photosensitivity rage (SPR) over time, according to one embodiment of the present invention. [Figures 7A-7B] 1 shows EEG tracings of a representative patient before and after administration of alprazolam condensation aerosol, according to one embodiment of the present invention. [Figure 8] 1 shows a graph of patients' mean visual analog scale (VAS) scores following administration of alprazolam condensation aerosol, according to one embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0023] While various aspects and features of particular embodiments have been summarized above, the following detailed description further illustrates certain embodiments and enables those skilled in the art to practice such embodiments. The described examples are provided for illustrative purposes and are not intended to limit the scope of the invention.

[0024] In the following description, for purposes of explanation, numerous specific details are presented to provide a thorough understanding of the described embodiments. However, it will be apparent to those skilled in the art that embodiments of the present invention may be practiced without some of these specific details. Several embodiments are described and claimed herein, and although various features may be attributed to different embodiments, it should be appreciated that features described with respect to one embodiment may be incorporated with other embodiments. However, because another embodiment of the present invention may omit one or more features of any described or claimed embodiment, by the same token, none of such features should be considered essential to each embodiment of the present invention.

[0025] Unless otherwise noted, all numbers used herein to express the quantities, dimensions, etc. employed should be understood to be modified in all instances by the term "about." The modifier "about" is intended to have its normally recognized meaning of approximation. In some embodiments, the term may be interpreted more precisely as meaning within a particular percentage of the modified value; for example, "about" may mean ±20%, ±10%, ±5%, ±2%, ±1%, or less in some embodiments.

[0026] In this application, the use of the singular includes the plural unless specifically stated otherwise, and the use of the terms "and" and "or" means "and / or" unless specifically stated otherwise. Furthermore, the use of the term "comprising" and other forms, such as "comprises" and "included," shall be considered non-exclusive. Similarly, terms such as "element" or "component" include both elements and components that comprise one unit and elements and components that comprise more than one unit, unless specifically stated otherwise.

[0027] The "aerodynamic diameter" of a given particle refers to the diameter of a spherical droplet of 1 g / mL specific gravity (the specific gravity of water) that has a similar settling velocity as the given particle.

[0028] "Aerosol" refers to a collection of solid or liquid particles suspended in a gas.

[0029] "Aerosol mass concentration" refers to the mass of particulate matter per unit volume of aerosol.

[0030] "Condensation aerosol" refers to an aerosol formed by evaporation of a composition and subsequent cooling of the vapor, such that the vapor condenses to form particles.

[0031] "Typical patient tidal volume" refers to 1 L for adult patients and 15 mL / kg for pediatric patients.

[0032] As used herein, the phrase "therapeutically effective amount" (or more simply, "effective amount") encompasses an amount sufficient to provide a specific therapeutic response when the drug is administered to a patient in need of a particular treatment. The therapeutic effect can be any therapeutic effect ranging from prevention, symptom amelioration, treatment of symptoms to arrest or cure of the disease. A skilled clinician will recognize that the therapeutically effective amount of a drug will depend on the patient, the indication, and the particular drug administered.

[0033] As used herein, the term "seizures" encompasses commonly recognized types of seizures, including absence seizures, myoclonic seizures, clonic seizures, tonic seizures, tonic-clonic seizures, and atonic seizures.

[0034] As used herein, the term "prevention" refers to forestalling (including temporarily forestalling) the onset of a disorder. In the case of stroke, prevention can occur with or without the benefit of a warning aura.

[0035] The term "anticonvulsant" includes treating seizures, protecting against seizures, reducing or ameliorating the intensity of seizures, reducing or ameliorating the frequency of seizures, and / or preventing the occurrence or recurrence of seizures. In this context, treating seizures includes halting an ongoing seizure, reducing the severity of an ongoing seizure, or reducing the duration of an ongoing seizure. Protecting against seizures includes forestalling future seizures.

[0036] As used herein, the term "pharmacokinetics" (PK) refers to the chemical metabolism of a drug, i.e., the fate of a drug from the moment it is administered to the time it is completely released from the body. Pharmacokinetics describes how the body affects a particular drug after administration through mechanisms of absorption and distribution of substances in the body, metabolic variability, and the effects and excretion routes of the drug's metabolites. The pharmacokinetic properties of a chemical agent are influenced by the route of administration and the dose of the drug administered. Pharmacokinetic properties may affect the rate of absorption. "Pharmacodynamics" (PD) is the study of how a drug affects an organism, including the onset and duration of response to the drug. As recognized in PK / PD models, the two mutually influence dosing, benefits, and adverse effects.

[0037] Alprazolam (API) is the compound 8-chloro-1-methyl-6-phenyl-4H-[1,2,4]triazolo[4,3-α][1,4]benzodiazepine or 8-chloro-1-methyl-6-phenyl-4H-s-triazolo[4,3-α][1,4]benzodiazepine (CAS number 28981-97-7), with the molecular formula C 17 H13 It is the international nonproprietary name for ClN4. Alprazolam is an odorless, white, crystalline powder that is practically insoluble in water, soluble in ethanol and methanol, and freely soluble in chloroform. The structure of alprazolam is shown as Formula I. [ka]

[0038] The trade name for alprazolam is Xanax®. Alprazolam may be manufactured using the process disclosed in U.S. Patent No. 3,987,052. As used herein, the term "inhaled alprazolam" refers to a dose of alprazolam delivered by oral inhalation of a condensation aerosol from a device as described herein.

[0039] In one aspect, the present invention provides a method for treating epilepsy and / or seizures in a mammalian subject, comprising administering a therapeutically effective dose of alprazolam. The alprazolam is delivered in the form of a condensation aerosol via oral inhalation. In some embodiments, the therapeutically effective amount of alprazolam is from about 0.1 mg to about 2 mg. In some embodiments, the mammal is a human.

[0040] Treatment of epilepsy and / or seizures includes protecting against seizures, reducing or ameliorating the intensity of seizures, reducing or ameliorating the frequency of seizures, interrupting seizure cycles, and / or preventing the occurrence or recurrence of seizures. Certain embodiments are methods for the acute treatment of seizures.

[0041] Patients with epilepsy can experience partial (focal) or generalized seizures. The current International League Against Epilepsy (ILAE) classification describes focal seizures as including seizures with specific autonomic, motor, mental, sensory, or other phenomena, with or without impaired consciousness. Focal seizures originate within neural networks restricted to one hemisphere. Focal seizures may be accompanied by impaired consciousness (complex partial seizures) or unaffected (simple partial seizures). Focal seizures can also progress to generalized seizures (focal to bilateral tonic-clonic). Generalized seizures originate at some points within a bilaterally distributed neural network and rapidly involve that network.

[0042] The onset of both types of seizures may be preceded by an "aura" or "warning." Many seizures, especially severe tonic or tonic-clonic seizures, will be heralded by one or more aura events familiar to the patient or familiar to those familiar with the patient. An aura is defined as the subjective experience of a focal seizure that usually or typically precedes the seizure experienced by the patient. These auras are unique in nature to each patient. Each patient will generally experience a different type of aura that is unique to that patient. Auras can be classified as sensory (somatosensory, tactile, visual, auditory, olfactory, gustatory, stomach or head sensations) or experiential (emotional, memory, hallucinatory, or illusory). While not all patients who have a seizure experience an aura, auras are not uncommon among patients with the worst types of seizures, especially tonic-clonic seizures.

[0043] In addition to subjects experiencing aura and / or secondarily generalized seizures, additional seizure events include cluster (acute repetitive) seizures, prolonged focal (partial) seizures, and juvenile myoclonic epilepsy.

[0044] The "acute treatment of seizures" application is for patient types for whom rescue treatment with a fast-acting benzodiazepine such as alprazolam is warranted, and it provides physicians with the opportunity to identify patients who can be used and who would most benefit from rapid antiepileptic activity.

[0045] Patients who may be treated with the present invention include those with seizures or clusters of seizure events that include predictable prodromes, auras, or seizure evolution, such that variations in the evolution pattern can be detected. Examples of the latter are patients with auras, secondarily generalized focal seizures, or juvenile myoclonic epilepsy, whose seizures typically develop over several minutes.

[0046] Patients who are able to recognize aura as a precursor to a seizure will be candidates for self-administration. Patients with focal seizures who do not have impaired consciousness / cognition have the mental and motor abilities to be candidates for self-administration of the present invention. Patients with any cognitive impairment may be assisted by a caregiver to administer the medication.

[0047] In addition to patients with aura and patients with secondarily generalized seizures, additional seizure events that may be considered include patients with cluster (acute repetitive) seizures, prolonged focal (partial) seizures, or juvenile myoclonic epilepsy. These patient types share the important characteristic of needing acute treatment but having the ability to self-administer. Conversely, treatment of patients with status epilepticus may not be appropriate if inhalation is required.

[0048] In some embodiments, the alprazolam condensation aerosol is administered by inhalation either before or after the onset of epilepsy and / or seizure symptoms. In some embodiments of the invention, the method comprises prompt administration of an alprazolam preparation according to the invention upon aura. In some embodiments, such inhaled administration of alprazolam will prevent, or at least ameliorate, the effects (intensity, duration, or both) of an impending seizure. Thus, in the context of the present invention, seizure prevention refers to the temporary obviation of the onset of a seizure, with or without the benefit of aura symptoms.

[0049] Administration may occur when the subject is in the prodromal or aura phase of an attack. For example, alprazolam may be administered when the subject experiences a sensory aura, such as somatosensory, visual, auditory, olfactory, gustatory, gastric, or cephalic aura, or an experiential aura, such as an emotional, memory, hallucinatory, or illusionary aura.

[0050] The methods of the present invention provide a rapid onset of therapeutic benefit. In some instances, the therapeutic effect is maximized within 15 minutes, 5 minutes, or 2 minutes of inhaling alprazolam, so the methods of the present invention may provide a rapidly effective rescue medication. For example, epileptiform activity may be absent within 15 minutes, 5 minutes, or 2 minutes of inhaling alprazolam according to the present invention. Furthermore, epileptiform activity may be absent for at least 6 hours after inhaling alprazolam.

[0051] The alprazolam formulations of the present invention also provide convenient administration of a therapeutically beneficial drug to patients who do not require intravenous or rectal drug administration.

[0052] The methods described herein can provide improved bioavailability of alprazolam, delivery of higher concentrations of alprazolam via the oral inhalation route, more rapid achievement of therapeutic levels of alprazolam in plasma, avoidance of the hepatic portal vein and concomitant first-pass effect, and / or more rapid presentation of alprazolam to the brain. The methods described and embodied herein achieve a bioavailability of about 80-125% (e.g., about 90-110%, or more specifically, about 92.5-107.5%) of the bioavailability achieved with intravenously administered alprazolam. In some embodiments, the alprazolam, and treatments with alprazolam, are substantially non-irritating and well tolerated.

[0053] In one embodiment, the loaded alprazolam is an inhalation powder provided in a single-use disposable inhaler for oral inhalation. The dose may be in the range of 0.125 mg to 4 mg of alprazolam. In some embodiments, the therapeutic dose is within the range of about 0.5 to about 4 mg per dose, preferably about 1 to about 2 mg per dose, required to treat a seizure. As an aerosol, 0.5 mg to 4 mg, preferably 0.5 to 2 mg, of alprazolam is generally provided by inspiration for the treatment of a seizure. The administered dose may depend on factors such as the weight, age, and susceptibility to side effects of the patient receiving alprazolam. Consideration of such factors may be used by a healthcare professional in determining the desired dosage for an individual.

[0054] In some instances, administration of alprazolam condensation aerosol may be up to 8 times per day, e.g., 1 to 8 times per day, or 2 to 8 times per day, or 1 to 4 times per day, or about 2 to about 6 times per day, when the patient is experiencing seizure activity.

[0055] Alprazolam formulated as an inhalation preparation as described herein is a rapidly effective rescue medication for epilepsy patients. Time to effect was assessed in patients with photosensitive epilepsy, in which epileptiform activity can be induced at will. Inhaled alprazolam was found to strongly suppress epileptic activity within 2 minutes. As with sedative effects, the duration of effect was dose-related. Inhaled alprazolam is useful for terminating seizures within 2 minutes of use.

[0056] Condensation aerosols of various embodiments may be formed by preparing a coating containing the drug composition of a desired thickness on a thermally conductive and impermeable substrate, heating the substrate to evaporate the coating, and cooling the vapor, thereby generating aerosol particles containing the drug composition. Rapid heating combined with airflow helps reduce the amount of decomposition. Thus, a heat source is typically utilized that heats the substrate to a temperature greater than 200°C, preferably at least 250°C, more preferably at least 300°C or 350°C, or 390±50°C, resulting in substantially complete volatilization (evaporation) of the drug composition from the substrate within 2 seconds, preferably within 1 second, and more preferably within 0.5 seconds. Typically, the airflow rate of the evaporated compound is between about 4 and 50 L / min. Heating of the alprazolam composition can be carried out using any suitable method. Examples of ways in which heat can be generated include: passing an electric current through an electrical resistance element; absorption of electromagnetic radiation such as microwave or laser light; and exothermic chemical reactions such as exothermic solvation, hydration of pyrophoric materials, and oxidation of combustible materials. Heat sources or heating devices containing chemically reactive materials that undergo an exothermic reaction upon actuation, e.g., by a spark or heating element such as a flashbulb heater, are also suitable. Heat sources that generate heat by an exothermic reaction such that the chemical "load" of the heat source is consumed in a period of 50-500 msec or less are generally suitable, assuming good thermal coupling between the heat source and the substrate.

[0057] The film thickness is such that the aerosol formed by heating the substrate to vaporize the compound and condensing the vaporized compound contains 10% by weight or less of drug degradation product(s). The use of a thin film allows for more rapid evaporation, and therefore generally less drug thermal decomposition. Typically, the film has a thickness between 0.05 and 20 microns, e.g., between 0.1 and 10 microns. In some variations, the film has a thickness between 0.5 and 5 microns. A selected area of the substrate surface expanse is adapted to produce an effective human therapeutic dose of drug aerosol.

[0058] The alprazolam aerosol of the present invention is delivered to a mammal using an inhalation device. A photograph of one embodiment of an inhalation device is shown in Figure 1. The delivery device includes an element that heats the composition to form a vapor and an element that allows the vapor to cool, thereby forming a condensation aerosol. Referring to Figure 2, cross-sectional views of the device are depicted before and after vaporization has begun. The aerosol resulting from vaporization is delivered from the device to the subject's lungs, generally via inhalation, for local or systemic treatment.

[0059] In one embodiment, the aerosol is a condensation aerosol, in which the delivery device depicted in Figures 1 and 2 includes a first element for heating the alprazolam composition to form a vapor, a second element for allowing the vapor to cool, thereby providing a condensation aerosol, and a third element for enabling the aerosol to be inhaled.

[0060] A variety of suitable first heating elements are described above and include a heatable substrate coated with a coating of alprazolam. Typically, the substrate or support is heated to a temperature sufficient to vaporize all or a portion of the alprazolam coating, causing the composition to form a vapor that becomes entrained in the airstream upon inhalation.

[0061] The second element, which provides cooling, is in its simplest form an internal passageway connecting the heating element to the inhalation element. The third element, which allows inhalation, is an aerosol port, e.g., a mouthpiece, that defines the connection between the cooling element and the mammal's respiratory system.

[0062] Figure 3 shows high-speed photographs illustrating the generation of aerosol particles from a device similar to that shown in Figure 1. The device has a thermally conductive substrate approximately 2 cm long coated with a drug coating. The drug-coated substrate was placed in a chamber through which airflow was passed from upstream to downstream (left to right in Figure 3) at a rate of approximately 15 L / min. The substrate was electrically heated, and the progress of drug evaporation was monitored by real-time photography. The photographs show a sequence of drug evaporation and aerosol generation at time intervals of 30 milliseconds (msec), 50 msec, and 200 msec after the start of heating (time = 0). A white cloud of drug aerosol particles formed from drug vapor entrained in the flowing air is visualized in the photographs. Complete evaporation of the drug coating was achieved in 500 msec, and vapor can be seen exiting the device on the right.

[0063] Inhalation through the device is detected by a breath sensor, generating an electrical signal that activates a starter, initiating the redox reaction. This rapidly heats the exterior of the sealed thermal package to approximately 390°C ± 50°C, accompanied by a clicking sound associated with the thermal expansion of the stainless steel. The heat is then transferred to the alprazolam, which is coated as a thin film on the exterior of the thermal package. Because the thin film of alprazolam has a high surface area, evaporation of alprazolam is very rapid, occurring in less than one second and before substantial thermal decomposition can occur.

[0064] The alprazolam aerosol of the present invention has a mass median aerodynamic diameter (MMAD) of approximately 0.5 μm to 3.0 μm. The aerosol particle size of 0.5 to 3 microns is optimal for deep lung delivery. The pharmacokinetics of an administered alprazolam dose are similar to that of an IV injection. Peak plasma levels are achieved within minutes via a simple, user-friendly delivery system, making the present invention ideal for the acute treatment of seizures.

[0065] As shown in Figure 4, the particle size distribution of the alprazolam aerosol in one embodiment has alprazolam particles with an MMAD of 1.2 to 1.8 microns. At least 80% of the alprazolam aerosol particles by weight have a size less than 5 microns, preferably at least 90% by weight have a size less than 5 microns. At least 50% of the alprazolam aerosol particles by weight have a size less than 2 microns, preferably at least 50% by weight have a size less than 1 micron. The particle size distribution was measured using the Next Generation Pharmaceutical Impactor (NGI).

[0066] In some embodiments, the alprazolam is administered from a portable, single-dose, single-use inhalation device. A single normal breath delivers enough drug to provide a complete dose of alprazolam vapor for a typical patient's tidal volume. The single-dose device may include a pull tab that, when pulled from the device, primes the device for use, indicated by the illumination of a colored light located on the device's housing. The device may remain active for a minimum of 15 minutes to facilitate delivery. To use, the patient simply exhales, then seals their lips around the product's mouthpiece and takes a deep inhale to generate and deliver the drug aerosol. When the thermal package is activated, the green light turns off, indicating the drug has been expelled. The device is discarded after use. Because the thermal package's redox reaction occurs in an all-or-none manner, the device contains no active reactants after use, or the product cannot be reused.

[0067] The present invention noninvasively delivers drugs to the deep lung, resulting in reliable IV-like pharmacokinetics. The patient simply takes a single breath through the mouthpiece, and the breath-actuated device delivers the drug, without the need for any other co-actions. The drug delivery device and methods for using it enable self-administration and reliable delivery, resulting in rapid drug delivery and a more rapid onset of action. Delivery of alprazolam according to the present invention may offer distinct advantages over currently available or developing routes of administration, namely, rectal and nasal administration.

[0068] Studies conducted included safety pharmacology studies in dogs and rats, as well as acute and repeated-dose toxicity studies. Aerosolized alprazolam was used in these studies because this was the planned route of administration in the clinical trials. The only exception (as noted below) was the use of intravenous (IV) bolus administration in the safety pharmacology studies. The safety studies are briefly summarized below.

[0069] In a pharmacokinetic (PK) study in dogs, alprazolam PK was profiled following intravenous or inhaled administration. Mean bioavailability was estimated to be 85-96%, with a mean bioavailability of 85-96% following inhaled T max was less than a minute.

[0070] In a 5-day exploratory inhalation toxicity study in dogs, the no-observed-adverse-effect level was 1.5 mg / kg / day with treatment-related histopathological findings.

[0071] In a 28-day GLP inhalation toxicity study in dogs with a 14-day recovery period, the no observed adverse effect levels based on histopathological findings were 2.8 and 4.4 mg / kg / day in males and females, respectively. No deaths occurred during the study. The immunogenicity of alprazolam was assessed, and no immunoglobulin or hypersensitivity responses were observed.

[0072] Cardiovascular and respiratory safety studies in dogs administered alprazolam intravenously over 5 seconds found a transient decrease in respiratory rate and a transient increase in heart rate. However, these changes were within the normal range and were not considered biologically significant. Plasma concentrations of alprazolam greater than 900 ng / mL were associated with mild cardiovascular or respiratory effects and were not expected to induce any significant changes at the dose range (0.5 to 2.0 mg) planned for clinical trials.

[0073] In an inhalation MTD study in rats, single doses of inhaled alprazolam up to 10.8 mg / kg were well tolerated and did not produce any adverse signs of toxicity. In a 14-day inhalation toxicity study in rats, the no-observed-adverse-effect level (NOAEL) was determined to be 10.3 mg / kg / day.

[0074] In vitro drug transporter and cytochrome P450 inhibitory potency was also tested. No inhibition was observed at the highest alprazolam concentration tested.

[0075] A Phase 2a proof-of-concept study investigating the efficacy of inhaled alprazolam in patients with photosensitive epilepsy was recently completed (see Example 1).

[0076] Oral inhalation treatment with inhaled alprazolam will focus on subtypes of patients diagnosed with partial-onset (focal) or generalized seizure disorders who may benefit from acute treatment with a benzodiazepine for rapid antiseizure activity. Inhaled alprazolam has been shown to produce a rapid increase (in less than 2 minutes) in alprazolam plasma levels and EEG effects in patients with photosensitive epilepsy within 2 minutes. Patient subtypes considered include patients with cluster seizures; patients with seizure events that include predictable prodromes, auras, or seizure evolution, with detectable variations in their evolution patterns; and patients with juvenile myoclonic epilepsy.

[0077] Because epilepsy is commonly found in individuals under the age of 18, adolescent patients represent a significant subpopulation that may benefit from inhaled alprazolam. Efficacy and tolerability data from adults aged 18 to 60 years or older may inform dose selection in younger populations. Studies in adolescent subjects (13 to 17 years) assessing PK, safety, and tolerability prior to Phase 3 trials can be used to inform doses in this age range. Modeling and simulation of clinical trial data in adults and adolescents may be used to support dose selection in those age groups and may inform dose selection in children under the age of 13 years.

[0078] Other indications for which the present invention may be used include acute panic attacks, severe dental phobia, post-traumatic stress disorder (PTSD), autism with intermittent aggressive behavior, or for certain ophthalmic procedures. [Example]

[0079] The following examples are provided for illustrative purposes only and are not intended to limit the scope of the present invention.

[0080] Example 1 evaluated the ability of inhaled alprazolam to rapidly suppress light sensitivity in a double-blind, placebo-controlled, crossover proof-of-concept study. The study was a randomized, placebo-controlled, double-blind, five-period crossover design within a hospital setting, allowing for a small number of patients. Epileptic patients were evaluated using an intermittent photic stimulation model, allowing for screening for antiepileptic effects without eliciting seizures or convulsive responses. Three doses of alprazolam were studied alongside placebo (double doses) in five subjects.

[0081] Intermittent light stimulation was used to induce generalized epileptiform EEG activity in patients with photosensitive epilepsy. Subjects were exposed to specific frequencies of light stimulation (flash frequencies) to measure the range of photosensitivity. This model has been used to identify the antiepileptic effects of several drugs. The model is specific (sedative drugs did not show photosensitivity).

[0082] The primary objectives of the study were to assess 1) the effect of inhaled alprazolam on IPS-induced photophobic EEG responses in patients with epilepsy, 2) the sedative properties of these doses to select the maximally effective dose with minimal sedation for further clinical trials, and 3) overall safety. The primary endpoint was the change in standard photosensitivity range (SPR) in subjects receiving each dose of inhaled alprazolam.

[0083] Patients at least 18 years of age with photosensitive epilepsy at three locations were tested on a baseline day and then randomly received either inhaled placebo (Day 2) or inhaled alprazolam 0.5, 1, or 2 mg delivered using a portable inhaled alprazolam device. Test days were separated by at least one week. The presence (and degree) of photosensitivity was measured pre-dose and then at 2, 10, 30 minutes, 1, 2, 4, and 6 hours post-dose. Plasma concentrations of the study drug were measured at each time point. Sedation was rated at each time point using a 100-mm linear visual analog scale (VAS).

[0084] Subjects were exposed to intermittent light stimulation (14 frequencies from 2 to 60 Hz), starting with the lowest frequency and increasing the frequency stepwise until a photosensitive response was elicited. This test was repeated at the highest frequency and then at decreasing frequencies. Results can be summarized in a quantitative measure known as the standard photosensitivity range (SPR). The maximum SPR is 14. In the example shown, the SPR is 8. The primary endpoint is a decrease in the mean SPR, which is indicative of antiseizure activity. Patients with a relatively stable SPR were enrolled in this study, allowing for a small study.

[0085] Secondary study endpoints included assessment of sedation using two visual analog scales (VAS); correlation between inhaled alprazolam plasma concentrations and the effect of PD on SPR range; correlation between inhaled alprazolam plasma concentrations and the effect of PD on sedation; and assessment of adverse events and fluctuations in neurological examination.

[0086] Five patients were enrolled and completed all treatment groups. All doses reduced the mean standard photosensitivity range (SPR), with maximal or near-maximal effects occurring by 2 minutes after administration. Higher doses affected SPR for up to 4 hours. Sedation was dose-related but differed from the effects of SPR at later time points. Treatment was well tolerated, with no serious adverse events.

[0087] The effects of inhaled alprazolam were assessed on IPS-induced photophobic EEG responses in patients with epilepsy. Plasma concentrations of inhaled alprazolam were correlated with its pharmacodynamic effects on IPS and sedation (PK / PD correlation). The sedative properties of these doses were evaluated to select the maximally effective dose with minimal sedation for further clinical trials. The safety of a single dose of inhaled alprazolam was assessed in patients with photosensitive epilepsy.

[0088] 5A and 5B show graphs of the mean plasma concentrations of alprazolam in Phase 1 and Phase 2a clinical trials, respectively. The graphs demonstrate the rapid uptake of alprazolam into plasma after oral administration of a condensation aerosol. Notably, the oral administration described herein was max is less than 15 minutes after administration or T max is less than 5 minutes after administration or T max The plasma uptake of alprazolam is less than 2 minutes after administration. Mean peak plasma concentrations occurred 1 to 2 minutes after administration of alprazolam concentrated aerosol. Delivery of alprazolam via inhalation of condensed aerosol provides a C of at least 5 ng / ml, or at least 12 ng / ml, or at least 30 ng / ml in less than 5 minutes after administration when administered at a dose of at least 0.5 mg. max This resulted in...

[0089] The variation in SPR range in subjects receiving each dose of inhaled alprazolam was compared with placebo. The plasma concentration of inhaled alprazolam was correlated with the pharmacodynamic effect on SPR range. Figure 6 shows a graph of the mean standard photosensitivity range (SPR) over time for the three dose rates used in the study. All three inhaled alprazolam doses produced a decrease in mean SPR (the primary study endpoint). Maximum or near-maximum effects occurred by approximately 2 minutes for all doses. The maximum decrease in epileptic response at 2 minutes for all three doses compared with placebo suggests rapid antiepileptic activity.

[0090] Regarding the magnitude of the SPR change, a maximum reduction of approximately 5 levels was obtained at least at the early time points. Near-complete elimination of photosensitivity was achieved at the 1 mg and 2 mg doses. These effects represent meaningful variability. For example, 90% confidence intervals were determined for the mean SPR change from baseline at each dose at each time point. The magnitude and duration of the effect were comparable for 1 mg and 2 mg. Results for the first time point (2 minutes) are shown, with no or minimal overlap in the confidence intervals.

[0091] Results demonstrated maximal or near-maximal reduction in epileptiform responses (primary endpoint) at all doses (0.5 mg, 1 mg, and 2 mg) by the 2-minute time point, suggesting rapid epileptiform activity.

[0092] Figures 7A and 7B show EEG tracings from a representative patient before and after administration of alprazolam condensate aerosol, respectively. The post-administration tracing shows complete abolition of epileptiform activity. The epileptiform activity shown in Figure 7A shows inconsistent brain activity during the seizure. After treatment, brain activity returns to normal, as seen in Figure 7B.

[0093] Sedation was assessed using two visual analog scales. Figure 8 shows a graph of the patients' mean visual analog scale (VAS) scores after administration of alprazolam condensate aerosol. Plasma concentrations of inhaled alprazolam were correlated with the pharmacodynamic effects on sedation. Sedation was measured using the VAS, suggesting a rapid onset of activity in the brain after oral inhalation administration of alprazolam. Maximum sedation occurred within approximately 2 minutes of alprazolam administration. Clinical observations support the early onset of sedation at 30 seconds.

[0094] Correlation between SPR and VAS responses showed that both responses began in less than 2 minutes, demonstrating a rapid and predictable onset of effect. Sedation returned to near-placebo levels within 6 hours of administration. SPR reductions were generally maintained for at least 6 hours after administration, demonstrating a reasonable, but not excessively prolonged, duration of effect. The 1 mg dose may be optimal for balancing potential antiepileptic efficacy with sedation levels.

[0095] Assessment of adverse events and fluctuations in neurological examination was performed. The safety profile was consistent with oral alprazolam. As summarized in Table 1, no significant treatment-emergent adverse events were observed. Minimal adverse effects suggest that the treatment was well tolerated. [Table 1]

[0096] Bioavailability can be measured by any suitable pharmacodynamic method, such as comparing the area under the plasma concentration curve (AUC) for inhaled and intravenously administered drug. It will further be appreciated that the percent bioavailability of inhaled alprazolam can be measured by comparing the area under the plasma concentration curve obtained with one dose of alprazolam (e.g., 1 mg of inhaled alprazolam) with another dose of intravenously administered alprazolam (e.g., 0.5 mg of iv alprazolam), taking into account the dose difference. Thus, by way of example, a 1 mg dose of inhaled alprazolam that achieves an AUC that is exactly half the AUC obtained with 0.5 mg of iv alprazolam would have 100% bioavailability.

[0097] In summary, all three doses of inhaled alprazolam produced a reduction in mean SPR (the primary study endpoint). Maximal or near-maximal effects occurred within 2 minutes at all doses. The magnitude and duration of effects were comparable at 1 mg and 2 mg. Dose-related variability was observed on the visual analog scale (VAS) for sedation and somnolence, important markers of potential administration-related adverse events. PK analysis demonstrated dose-proportionality with plasma concentrations. In all cases, treatment with the inhaled drug was generally well tolerated, with no serious adverse events (SAEs) reported at doses up to 2 mg. Predicted CNS adverse events (primarily sedation and somnolence) indicated that respiratory AEs were mild or moderate and resolved. Effects on SPR suggest rapid antiepileptic activity.

[0098] In conclusion, the results of this study demonstrated rapid and substantial reductions in mean SPR with all three doses of inhaled alprazolam. Maximal or near-maximal effects occurred by the 2-minute time point for all doses. The magnitude and duration of effects were similar for the 1 mg and 2 mg doses. Dose-related variations were observed on the visual analog scale (VAS) for sedation and somnolence, but over a different time frame than the observed variations in SPR. Overall, the reductions in SPR suggest a potential for rapid antiepileptic activity.

[0099] The description of various embodiments has been presented for purposes of illustration and description, but is not intended to be exhaustive or to limit the invention to the precise form disclosed. The scope of the invention is limited only by the following claims. Many modifications and variations will be apparent to those skilled in the art. The embodiments described and illustrated in the figures have been chosen and described to explain the principles of the invention, its practical application, and to enable those skilled in the art to understand the invention in its various embodiments with various modifications as suited to the particular use contemplated. All references cited herein are incorporated by reference in their entirety.

Claims

1. 1. A pharmaceutical composition comprising alprazolam for the termination of ongoing epileptic seizures in a subject in need thereof, wherein the seizures have not progressed to status epilepticus, and the subject is selected from patients with partial (focal) or generalized seizures, and wherein the pharmaceutical composition is administered orally in the form of a condensation aerosol.

2. 10. The pharmaceutical composition of claim 1, wherein the subject is selected from patients with aura, secondarily generalized focal seizures, or juvenile myoclonic epilepsy, whose seizures typically last for minutes.

3. 3. The pharmaceutical composition of claim 1, wherein the pharmaceutical composition is delivered by inhalation to the lungs of the subject and achieves an alprazolam plasma Tmax of less than 2 minutes after administration.

4. 4. The pharmaceutical composition of any one of claims 1 to 3, wherein the amount of alprazolam provided per inhalation is 1 mg to 2 mg.

5. The pharmaceutical composition according to any one of claims 1 to 4, wherein the pharmaceutical composition is supplied as an inhalation powder supplied in a single-use disposable inhaler for oral inhalation.

6. 6. The pharmaceutical composition of claim 1, wherein the alprazolam is provided in the form of aerosol particles, and at least 80% by weight of the alprazolam aerosol particles have a size of less than 5 microns.

7. 7. The pharmaceutical composition of claim 6, wherein the alprazolam is provided in the form of aerosol particles, and at least 90% by weight of the alprazolam aerosol particles have a size of less than 5 microns.

8. 8. The pharmaceutical composition of claim 1, wherein the alprazolam is provided in the form of aerosol particles, and at least 50% by weight of the alprazolam aerosol particles have a size of less than 2 microns.

9. 9. The pharmaceutical composition of claim 1, wherein the alprazolam condensation aerosol is excipient-free.

10. 10. The pharmaceutical composition of any one of claims 1 to 9, wherein the pharmaceutical composition is self-administered at the onset of one or more symptoms of the attack or after the onset of one or more symptoms of the attack.

11. The pharmaceutical composition of any one of claims 1 to 10, wherein the pharmaceutical composition is administered when the subject experiences a sensory or experiential aura.

12. The pharmaceutical composition according to any one of claims 1 to 11, wherein the subject is a patient with focal seizures without impairment of consciousness / cognition.

13. 13. The pharmaceutical composition of any one of claims 1 or 3 to 12, wherein the subject is a patient with long-standing focal partial seizures, acute repetitive seizures (ARS), or juvenile myoclonic epilepsy.

14. 14. The pharmaceutical composition of any one of claims 1 to 13, wherein the pharmaceutical composition is delivered to the lungs of the subject by inhalation and achieves maximum therapeutic effect within 2 minutes of inhalation.

15. 15. The pharmaceutical composition of any one of claims 1 to 14, wherein the pharmaceutical composition is delivered non-invasively to the deep lung using a breath-actuated device that delivers alprazolam with a single inspiration through the mouthpiece of the breath-actuated device without the need for any other co-ordination by the patient, thereby resulting in reliable IV-like pharmacokinetics.

16. 16. A device for producing the pharmaceutical composition of any one of claims 1 to 15, comprising: (i) a drug coating containing an alprazolam composition applied to a thermally conductive and impermeable substrate; (ii) means for heating the substrate to at least 300°C, at least 350°C, or 390°C ± 50°C, thereby substantially completing volatilization (evaporation) of the alprazolam composition from the substrate within 2 seconds; and (iii) elements for cooling the generated vapor, thereby generating aerosol particles containing the alprazolam composition.

17. 17. The device of claim 16, wherein volatilization (evaporation) of the alprazolam composition is substantially complete within 1 second.

18. 17. The device of claim 16, wherein volatilization (evaporation) of the alprazolam composition is substantially complete within 0.5 seconds.

19. The device of any one of claims 16 to 18, wherein the thickness of the alprazolam coating is 0.1 to 10 µm.

20. 20. The device of claim 19, wherein the alprazolam coating has a thickness of 0.5 to 5 μm.

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