Dry powder composition of treprostinil prodrug and method for using the same

A dry powder composition of treprostinil prodrugs with DSPE-PEG2000 and sugars addresses the need for effective pulmonary hypertension and fibrosis treatments, offering improved lung delivery and therapeutic outcomes.

JP2025164854APending Publication Date: 2025-10-30INSMED INC
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Patent Information

Application Number
JP2025137209
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2019-04-29
Filing Date
2025-08-20
Publication Date
2025-10-30

AI Technical Summary

Technical Problem

There is a need for novel treatment options for pulmonary hypertension (including pulmonary arterial hypertension, portopulmonary hypertension, and pulmonary fibrosis, as existing treatments are limited and there is a lack of effective methods for administering treprostinil prodrugs for pulmonary administration.

Method used

A dry powder composition comprising treprostinil prodrugs, distearoylphosphatidylethanolamine-polyethylene glycol 2000 (DSPE-PEG2000), leucine, and sugars like trehalose or mannitol, designed for pulmonary administration using a dry powder inhaler, which provides effective treatment for pulmonary hypertension and pulmonary fibrosis.

Benefits of technology

The dry powder composition effectively delivers treprostinil to the lungs, providing therapeutic benefits for pulmonary hypertension and fibrosis, with improved efficacy and convenience compared to existing treatments.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a dry powder composition of a treprostinil prodrug and a method for using the same.SOLUTION: The present invention provides a dry powder composition of a treprostinil prodrug and a method for treating pulmonary hypertension (e.g., pulmonary arterial hypertension), portopulmonary hypertension, or pulmonary fibrosis in a patient in need thereof. The dry powder composition comprises (a) about 0.1 wt.% to about 3 wt.% of a compound of formula (I) or an enantiomer, diastereomer, or a pharmaceutically acceptable salt thereof, (b) about 0.01 wt.% to about 3 wt.% of DSPE-PEG2000, (c) about 10 wt.% to about 50 wt.% of leucine, and (d) the balance being a sugar selected from the group consisting of trehalose and mannitol.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Patent Application No. 62 / 840,186, filed April 29, 2019, the disclosure of which is incorporated herein by reference in its entirety. [Background technology]

[0002] Background of the Invention Pulmonary hypertension (PH) is characterized by abnormally high blood pressure in the pulmonary vasculature. It is a progressive, fatal disease that can lead to heart failure and can occur in the pulmonary arteries, veins, or capillaries. Symptoms include shortness of breath, dizziness, fainting, and other symptoms, all of which worsen with exertion. Multiple causes exist, including idiopathic (with unknown etiology) and hypertension in other systems, such as portopulmonary hypertension (patients have both portal and pulmonary hypertension).

[0003] Pulmonary hypertension is classified into five groups by the World Health Organization (WHO). Group 1, called pulmonary arterial hypertension (PAH), includes PAH of unknown cause (idiopathic), hereditary PAH (i.e., familial PAH or FPAH), PAH caused by drugs or toxins, and PAH caused by conditions such as connective tissue disease, HIV infection, liver disease, and congenital heart disease. Group 2 pulmonary hypertension is characterized by pulmonary hypertension associated with left heart disease. Group 3 pulmonary hypertension is characterized by PH associated with lung diseases such as chronic obstructive pulmonary disease and interstitial lung disease, and PH associated with sleep-related breathing disorders (e.g., sleep apnea). Group 4 PH is PH caused by chronic thrombosis and / or chronic embolism, e.g., PH caused by pulmonary blood clots or blood clotting disorders. Group 5 includes PH caused by other disorders or conditions, such as blood disorders (e.g., polycythemia vera, essential thrombocythemia), systemic disorders (e.g., sarcoidosis, vasculitis), and metabolic disorders (e.g., thyroid disease, glycogen storage disease).

[0004] Pulmonary arterial hypertension (PAH) affects approximately 200,000 people worldwide, with approximately 30,000 to 40,000 of these patients in the United States. PAH patients experience narrowing of the pulmonary arteries, which increases pulmonary artery pressure and makes it difficult for the heart to pump blood to the lungs. Patients suffer from shortness of breath and fatigue, which often significantly limits their ability to perform physical activities.

[0005] The New York Heart Association (NYHA) categorizes PAH patients into four functional classes to assess the severity of their disease. PAH patients categorized as Class I by the NYHA have no physical activity limitations because ordinary physical activity does not cause excessive dyspnea, fatigue, chest pain, or near-fainting. PAH patients categorized as Class II by the NYHA have some physical activity limitations. These patients are asymptomatic at rest, but ordinary physical activity causes excessive dyspnea, fatigue, chest pain, or near-fainting. PAH patients categorized as Class III by the NYHA have significant physical activity limitations. Class III PAH patients are asymptomatic at rest, but experience excessive dyspnea, fatigue, chest pain, or near-fainting as a result of less than ordinary physical activity. PAH patients categorized as Class IV by the NYHA are unable to perform any physical activity without symptoms. Class IV PAH patients may experience dyspnea and / or fatigue even at rest, and any physical activity increases their discomfort. Patients with class IV PAH often present with signs of right heart failure.

[0006] Patients with PAH are treated with endothelin receptor antagonists (ERAs), phosphodiesterase type 5 (PDE-5) inhibitors, guanylate cyclase stimulators, prostanoids (e.g., prostacyclin), or combinations thereof. ERAs include ambrisentan (Letairis®), sitaxsentan, bosentan (Tracleer®), and macitentan (Opsumit®). PDE-5 inhibitors indicated for the treatment of PAH include sildenafil (Revatio®) and tadalafil (Adcirca®). Prostanoids indicated for the treatment of PAH include iloprost, epoprostenol, and treprostinil (Remodulin®, Tyvaso®). One approved guanylate cyclase stimulator is riociguat (Adempas®). Additionally, patients are often treated with combinations of the above compounds.

[0007] Portopulmonary hypertension (PPH), defined by the coexistence of portal hypertension and pulmonary hypertension, is a serious complication of liver disease. The diagnosis of portopulmonary hypertension is based on hemodynamic criteria: (1) portal hypertension and / or liver disease (clinical diagnosis - ascites / varices / splenomegaly), (2) resting mean pulmonary artery pressure >25 mmHg, and (3) pulmonary vascular resistance >240 dyne seconds / cm. 5 (4) pulmonary artery occlusion pressure <15 mmHg or transpulmonary gradient >12 mmHg. PPH is a serious complication of liver disease, occurring in 0.25-4% of patients with cirrhosis. Today, PPH coexists in 4-6% of liver transplant recipients.

[0008] Pulmonary fibrosis is a respiratory disease in which scarring occurs in lung tissue, resulting in severe breathing problems. Scarring, or the accumulation of excess fibrous connective tissue, causes thickening of the lung walls and reduces oxygen delivery to the blood. As a result, patients with pulmonary fibrosis suffer from persistent shortness of breath. While a specific cause of the disease can be diagnosed in some patients, in others, the cause of the problem cannot be determined, resulting in a condition called idiopathic pulmonary fibrosis.

[0009] The present invention addresses the need for novel treatment options for pulmonary hypertension (PH) (including pulmonary arterial hypertension (PAH)), portopulmonary hypertension (PPH), and pulmonary fibrosis, and methods for administering same to patients in need of treatment, by providing dry powder compositions of treprostinil prodrugs useful for pulmonary administration. Summary of the Invention [Means for solving the problem]

[0010] Summary of the Invention In one aspect, the present disclosure relates to a dry powder composition comprising: (a) about 0.1 wt % to about 3 wt % of a compound of Formula (I): [ka] or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, wherein R 1 is tetradecyl, pentadecyl, hexadecyl, heptadecyl, or octadecyl; (b) about 0.01 wt% to about 3 wt% distearoylphosphatidylethanolamine-polyethylene glycol 2000 (DSPE-PEG2000); (c) about 10 wt% to about 50 wt% leucine, and (d) the remainder being a sugar selected from the group consisting of trehalose and mannitol. The total of (a), (b), (c), and (d) is 100 wt%.

[0011] In one embodiment, R 1 is tetradecyl. In a further embodiment, R1 is a linear tetradecyl.

[0012] In one embodiment, R 1 is pentadecyl. In a further embodiment, R 1 is a linear pentadecyl.

[0013] In one embodiment, R 1 is heptadecyl. In a further embodiment, R 1 is a linear heptadecyl.

[0014] In one embodiment, R 1 is octadecyl. In a further embodiment, R 1 is linear octadecyl.

[0015] In one embodiment, R 1 is hexadecyl. In a further embodiment, R 1 is a linear hexadecyl.

[0016] In one embodiment, the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 0.5 wt% to about 2 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.05 wt% to about 2 wt% of the total weight of the dry powder composition. 1 is hexadecyl. In still further embodiments, R 1 is linear hexadecyl. In further embodiments, the DSPE-PEG2000 is present at about 0.15 wt% to about 1.4 wt% of the total weight of the dry powder composition. In even further embodiments, the DSPE-PEG2000 is present at about 0.25 wt% to about 1 wt% of the total weight of the dry powder composition.

[0017] In one embodiment, the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 1 wt% to about 2 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.1 wt% to about 2 wt% of the total weight of the dry powder composition. 1 is hexadecyl. In still further embodiments, R 1 is linear hexadecyl. In further embodiments, the DSPE-PEG2000 is present at about 0.3 wt% to about 1.4 wt% of the total weight of the dry powder composition. In even further embodiments, the DSPE-PEG2000 is present at about 0.5 wt% to about 1 wt% of the total weight of the dry powder composition.

[0018] In one embodiment, the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 1.2 wt% to about 1.8 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.12 wt% to about 1.8 wt% of the total weight of the dry powder composition. 1 is hexadecyl. In still further embodiments, R 1 is linear hexadecyl. In further embodiments, the DSPE-PEG2000 is present at about 0.36 wt% to about 1.26 wt% of the total weight of the dry powder composition. In even further embodiments, the DSPE-PEG2000 is present at about 0.6 wt% to about 0.9 wt% of the total weight of the dry powder composition.

[0019] In one embodiment, the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 1 wt% to about 1.5 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.1 wt% to about 1.5 wt% of the total weight of the dry powder composition. 1 is hexadecyl. In still further embodiments, R 1is linear hexadecyl. In further embodiments, the DSPE-PEG2000 is present at about 0.3 wt% to about 1.05 wt% of the total weight of the dry powder composition. In even further embodiments, the DSPE-PEG2000 is present at about 0.5 wt% to about 0.75 wt% of the total weight of the dry powder composition.

[0020] In one embodiment, the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 1.4 wt% to about 1.6 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.14 wt% to about 1.6 wt% of the total weight of the dry powder composition. 1 is hexadecyl. In still further embodiments, R 1 is linear hexadecyl. In a further embodiment, the DSPE-PEG2000 is present at about 0.42 wt% to about 1.12 wt% of the total weight of the dry powder composition. In an even further embodiment, the DSPE-PEG2000 is present at about 0.7 wt% to about 0.8 wt% of the total weight of the dry powder composition.

[0021] In one embodiment, the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 1.5 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.15 wt% to about 1.5 wt% of the total weight of the dry powder composition. 1 is hexadecyl. In still further embodiments, R 1 is linear hexadecyl. In a further embodiment, the DSPE-PEG2000 is present at about 0.45 wt% to about 1.05 wt% of the total weight of the dry powder composition. In an even further embodiment, the DSPE-PEG2000 is present at about 0.75 wt% of the total weight of the dry powder composition.

[0022] In one embodiment, the compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present in about 0.1 wt% to about 3 wt% of the total weight of the dry powder composition, and the weight ratio of DSPE-PEG2000 to the compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is in the range of about 0.1:1 (DSPE-PEG2000:compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt) to about 1:1 (DSPE-PEG2000:compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt). In a further embodiment, R 1 is hexadecyl. In still further embodiments, R 1is linear hexadecyl. In a further embodiment, the compound of Formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present at about 0.5 wt% to about 2 wt% of the total weight of the dry powder composition. In a further embodiment, the compound of Formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present at about 1 wt% to about 2 wt% of the total weight of the dry powder composition. In a further embodiment, the compound of Formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present at about 1.2 wt% to about 1.8 wt% of the total weight of the dry powder composition. In a further embodiment, the compound of Formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present at about 1 wt% to about 1.5 wt% of the total weight of the dry powder composition. In a further embodiment, the compound of Formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present in about 1.4 wt% to about 1.6 wt% of the total weight of the dry powder composition. In an even further embodiment, the compound of Formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present in about 1.5 wt% of the total weight of the dry powder composition. In another embodiment, the weight ratio of DSPE-PEG2000 to the compound of Formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is within the range of about 0.3:1 (DSPE-PEG2000:compound of Formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt) to about 0.7:1 (DSPE-PEG2000:compound of Formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt). In a further embodiment, the weight ratio of DSPE-PEG2000 to the compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is about 0.5:1 (DSPE-PEG2000: compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt).

[0023] In one embodiment of the dry powder compositions provided herein, leucine is present at about 15 wt% to about 40 wt% of the total weight of the dry powder composition. 1 is hexadecyl. In still further embodiments, R 1 is linear hexadecyl. In another embodiment, leucine is present at about 18 wt% to about 33 wt% of the total weight of the dry powder composition. In a further embodiment, R 1 is hexadecyl. In still further embodiments, R 1 is linear hexadecyl. In another embodiment, leucine is present at about 20 wt% to about 30 wt% of the total weight of the dry powder composition. In a further embodiment, R 1 is hexadecyl. In still further embodiments, R 1 is linear hexadecyl. In another embodiment, leucine is present at about 25 wt% to about 30 wt% of the total weight of the dry powder composition. In a further embodiment, R 1 is hexadecyl. In still further embodiments, R 1 is linear hexadecyl. In another embodiment, leucine is present at about 27 wt% to about 30 wt% of the total weight of the dry powder composition. In a further embodiment, R 1 is hexadecyl. In still further embodiments, R 1 is linear hexadecyl. In another embodiment, leucine is present at about 30 wt% of the total weight of the dry powder composition. In a further embodiment, R 1 is hexadecyl. In still further embodiments, R 1 is a linear hexadecyl.

[0024] In one embodiment, the sugar is mannitol. 1 is hexadecyl. In a further embodiment, R 1 is a linear hexadecyl.

[0025] In one embodiment, the dry powder composition comprises (a) about 1.5 wt% of a compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, (b) about 0.7 wt% of DSPE-PEG2000, (c) about 29.3 wt% of leucine, and (d) the balance being mannitol. 1 is hexadecyl. In a further embodiment, R 1 is a linear hexadecyl.

[0026] In one embodiment, the dry powder composition comprises (a) about 1.5 wt% of the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, (b) about 0.75 wt% of DSPE-PEG2000, (c) about 29.30 wt% of leucine, and (d) about 68.45 wt% of mannitol. 1 is hexadecyl. In a further embodiment, R 1 is a linear hexadecyl.

[0027] In one embodiment, the dry powder composition is in the form of an aerosol having particles of about 1 μm to about 3 μm mass median aerodynamic diameter (MMAD) as measured by Next Generation Impactor (NGI). In a further embodiment, the dry powder composition is in the form of an aerosol having particles of about 1.3 μm to about 2.0 μm MMAD as measured by NGI. In a further embodiment, the dry powder composition is in the form of an aerosol having particles of about 1.3 μm to about 2.0 μm MMAD as measured by NGI. 1 is hexadecyl. In a further embodiment, R 1 is a linear hexadecyl.

[0028] In one embodiment, the sugar is mannitol and the dry powder composition is in the form of an aerosol having particles of about 1 μm to about 3 μm MMAD as measured by NGI. In another embodiment, the sugar is mannitol and the dry powder composition is in the form of an aerosol having particles of about 1.7 μm to about 2.7 μm MMAD as measured by NGI. In a further embodiment, R 1 is hexadecyl. In a further embodiment, R1 is a linear hexadecyl.

[0029] In one embodiment, the dry powder composition is in the form of an aerosol having particles with a fine particle fraction (FPF) of about 30% to about 60% as measured by NGI. 1 is hexadecyl. In a further embodiment, R 1 is a linear hexadecyl.

[0030] In another aspect, the present disclosure relates to a method for treating pulmonary hypertension in a patient in need thereof, the method comprising administering to the patient's lungs by inhalation with a dry powder inhaler an effective amount of a dry powder composition disclosed herein.

[0031] In one embodiment, pulmonary hypertension is pulmonary arterial hypertension (PAH). In one embodiment, PAH is Class I PAH as characterized by the New York Heart Association (NYHA). In another embodiment, PAH is Class II PAH as characterized by the NYHA. In another embodiment, PAH is Class III PAH as characterized by the NYHA. In another embodiment, PAH is Class IV PAH as characterized by the NYHA.

[0032] In one embodiment, the pulmonary hypertension is Group 1 pulmonary hypertension as characterized by the World Health Organization (WHO).

[0033] In another embodiment, the pulmonary hypertension is Group 2 pulmonary hypertension as characterized by the WHO.

[0034] In another embodiment, the pulmonary hypertension is group 3 pulmonary hypertension as characterized by the WHO.

[0035] In another embodiment, the pulmonary hypertension is Group 4 pulmonary hypertension as characterized by the WHO.

[0036] In another embodiment, the pulmonary hypertension is Group 5 pulmonary hypertension as characterized by the WHO.

[0037] In yet another aspect, the present disclosure relates to a method for treating portopulmonary hypertension or pulmonary fibrosis in a patient in need thereof, the method comprising administering to the patient's lungs by inhalation with a dry powder inhaler an effective amount of a dry powder composition disclosed herein.

[0038] In one embodiment of the methods of treatment described herein, the administering step is carried out in once-daily, twice-daily, or three-times-daily dosing.

[0039] In another embodiment of the methods of treatment described herein, the administering step comprises aerosolizing the dry powder composition and administering the aerosolized dry powder composition to the patient's lungs by inhalation. In one embodiment, the aerosolized dry powder composition comprises particles having an MMAD of about 1 μm to about 3 μm as measured by NGI. In another embodiment, the aerosolized dry powder composition comprises particles having an FPF of about 30% to about 60% as measured by NGI.

[0040] In yet another aspect, the present disclosure relates to a system for treating pulmonary hypertension, portopulmonary hypertension, or pulmonary fibrosis, the system comprising one of the dry powder compositions disclosed herein and a dry powder inhaler (DPI).

[0041] The DPI, in one embodiment, is either a single dose or a multi-dose inhaler.

[0042] In another embodiment, the DPI is pre-metered or metered on the device. [Brief explanation of the drawings]

[0043] [Figure 1]FIG. 1 is a graph showing the effect of leucine content on spray drying recovery of mannitol-based C16TR (treprostinil palmityl) dry powder.

[0044] [Figure 2A] Figures 2A-2D are SEM images of mannitol-based C16TR (treprostinil palmitate) dry powders containing various amounts of leucine, as indicated. [Figure 2B] Figures 2A-2D are SEM images of mannitol-based C16TR (treprostinil palmitate) dry powders containing various amounts of leucine, as indicated. [Figure 2C] Figures 2A-2D are SEM images of mannitol-based C16TR (treprostinil palmitate) dry powders containing various amounts of leucine, as indicated. [Figure 2D] Figures 2A-2D are SEM images of mannitol-based C16TR (treprostinil palmitate) dry powders containing various amounts of leucine, as indicated.

[0045] [Figure 3] FIG. 3 is a graph showing the effect of leucine content on particle size distribution as measured by laser diffraction in mannitol-based C16TR (treprostinil palmityl) dry powders.

[0046] [Figure 4] FIG. 4 is a graph showing the effect of C16TR (treprostinil palmityl) content on the MMAD of mannitol-based C16TR (treprostinil palmityl) dry powders.

[0047] [Figure 5] Figures 5A-5C are SEM images of mannitol-based C16TR (treprostinil palmitate) dry powder spray-dried at various inlet temperatures. Images in the top panels were taken at high magnification, and images in the bottom panels were taken at low magnification.

[0048] [Figure 6] 6A and 6B are SEM images showing the morphology of mannitol-based C16TR (treprostinil palmitate) dry powder spray-dried with or without ammonium bicarbonate (ABC, 0.5 mg / mL) at an inlet temperature of 135° C. The images in the top panel were taken at high magnification, and the images in the bottom panel were taken at low magnification.

[0049] [Figure 7A] FIG. 7A is a graph showing DSC data for batch SD-NNP-179 of mannitol-based C16TR (treprostinil palmityl) dry powder.

[0050] [Figure 7B] FIG. 7B is a graph showing X-ray diffraction data for batch SD-NNP-179 of mannitol-based C16TR (treprostinil palmityl) dry powder.

[0051] [Figure 8] 8A and 8B are SEM images showing the effect of leucine content on the morphology of trehalose-based C16TR (treprostinil palmityl) dry powder.

[0052] [Figure 9A] 9A-9C are SEM images showing the effect of spray-drying inlet temperature on the morphology of trehalose-based C16TR (treprostinil palmitate) dried powder. [Figure 9B] 9A-9C are SEM images showing the effect of spray-drying inlet temperature on the morphology of trehalose-based C16TR (treprostinil palmitate) dried powder. [Figure 9C] 9A-9C are SEM images showing the effect of spray-drying inlet temperature on the morphology of trehalose-based C16TR (treprostinil palmitate) dried powder.

[0053] [Figure 10A]FIG. 10A is a graph showing DSC data for trehalose-based C16TR (treprostinil palmityl) dry powder.

[0054] [Figure 10B] FIG. 10B is a graph showing X-ray diffraction data for trehalose-based C16TR (treprostinil palmityl) dry powder.

[0055] [Figure 11] FIG. 11 is a DVS isotherm plot showing the water absorption of batch SD-NNP-167 of mannitol-based C16TR (treprostinil palmityl) dry powder (C16TR (treprostinil palmityl) / DSPE-PEG2000 / Man / Leu, 1 / 0.5 / 80 / 20).

[0056] [Figure 12] FIG. 12 is a DVS isotherm plot showing the water absorption of batch SD-NNP-162 of trehalose-based C16TR (treprostinil palmityl) dry powder (C16TR (treprostinil palmityl) / DSPE-PEG2000 / Treh / Leu, 1 / 0.5 / 80 / 20).

[0057] [Figure 13] FIG. 13 is a DVS isotherm plot showing the water absorption of batch SD-NNP-163 of trehalose-based C16TR (treprostinil palmityl) dry powder (C16TR (treprostinil palmityl) / DSPE-PEG2000 / Treh / Leu, 1 / 0.5 / 70 / 30).

[0058] [Figure 14] FIG. 14 is a graph showing the change in MMAD in an accelerated stability study of mannitol-based C16TR (treprostinil palmityl) dry powder.

[0059] [Figure 15A]15A and 15B are SEM images of batch SD-NNP-179 of mannitol-based C16TR (treprostinil palmityl) dry powder containing 1% C16TR (treprostinil palmityl) at T0 and T3 (3 months), respectively. [Figure 15B] 15A and 15B are SEM images of batch SD-NNP-179 of mannitol-based C16TR (treprostinil palmityl) dry powder containing 1% C16TR (treprostinil palmityl) at T0 and T3 (3 months), respectively.

[0060] [Figure 16A] 16A and 16B are SEM images of batch SD-NNP-183 of mannitol-based C16TR (treprostinil palmityl) dry powder containing 1.5% C16TR (treprostinil palmityl) at T0 and T3 (3 months), respectively. [Figure 16B] 16A and 16B are SEM images of batch SD-NNP-183 of mannitol-based C16TR (treprostinil palmityl) dry powder containing 1.5% C16TR (treprostinil palmityl) at T0 and T3 (3 months), respectively.

[0061] [Figure 17A] 17A and 17B are SEM images of batch SD-NNP-184 of mannitol-based C16TR (treprostinil palmityl) dry powder containing 2% C16TR (treprostinil palmityl) at T0 and T3 (3 months), respectively. [Figure 17B] 17A and 17B are SEM images of batch SD-NNP-184 of mannitol-based C16TR (treprostinil palmityl) dry powder containing 2% C16TR (treprostinil palmityl) at T0 and T3 (3 months), respectively.

[0062] [Figure 18A]Figures 18A and 18B are SEM images of batches of mannitol-based C16TR (treprostinil palmityl) dry powder at T5 (5 months), 3% C16TR (treprostinil palmityl) (SD-NNP-190) and 5% C16TR (treprostinil palmityl) (SD-NNP-191), respectively. [Figure 18B] Figures 18A and 18B are SEM images of batches of mannitol-based C16TR (treprostinil palmityl) dry powder at T5 (5 months), 3% C16TR (treprostinil palmityl) (SD-NNP-190) and 5% C16TR (treprostinil palmityl) (SD-NNP-191), respectively.

[0063] [Figure 19] FIG. 19 is a graph showing the change in MMAD in an accelerated stability study of trehalose-based C16TR (treprostinil palmityl) dry powder.

[0064] [Figure 20] FIG. 20 is a graph showing the change in FPF in an accelerated stability study of trehalose-based C16TR (treprostinil palmityl) dry powder.

[0065] [Figure 21A] 21A and 21B are SEM images of batch SD-NNP-162 of trehalose-based C16TR (treprostinil palmityl) dry powder containing 1% C16TR (treprostinil palmityl) at T0 and T3.5 (3.5 months), respectively. [Figure 21B] 21A and 21B are SEM images of batch SD-NNP-162 of trehalose-based C16TR (treprostinil palmityl) dry powder containing 1% C16TR (treprostinil palmityl) at T0 and T3.5 (3.5 months), respectively.

[0066] [Figure 22A]22A and 22B are SEM images of batch SD-NNP-163 of trehalose-based C16TR (treprostinil palmityl) dry powder containing 1% C16TR (treprostinil palmityl) at T0 and T3.5 (3.5 months), respectively. [Figure 22B] 22A and 22B are SEM images of batch SD-NNP-163 of trehalose-based C16TR (treprostinil palmityl) dry powder containing 1% C16TR (treprostinil palmityl) at T0 and T3.5 (3.5 months), respectively.

[0067] [Figure 23A] 23A and 23B are SEM images of batch SD-NNP-188 of trehalose-based C16TR (treprostinil palmityl) dry powder containing 1.5% C16TR (treprostinil palmityl) at T0 and T3.5 (3.5 months), respectively. [Figure 23B] 23A and 23B are SEM images of batch SD-NNP-188 of trehalose-based C16TR (treprostinil palmityl) dry powder containing 1.5% C16TR (treprostinil palmityl) at T0 and T3.5 (3.5 months), respectively.

[0068] [Figure 24A] 24A and 24B are SEM images of batch SD-NNP-189 of trehalose-based C16TR (treprostinil palmityl) dry powder containing 2% C16TR (treprostinil palmityl) at T0 and T3.5 (3.5 months), respectively. [Figure 24B] 24A and 24B are SEM images of batch SD-NNP-189 of trehalose-based C16TR (treprostinil palmityl) dry powder containing 2% C16TR (treprostinil palmityl) at T0 and T3.5 (3.5 months), respectively.

[0069] [Figure 25]Figure 25 is a graph showing pressure titration of spray-dried treprostinil palmityl dry powder formulations A, B, C, and D. For ease of viewing, data points are staggered (A, B, C, and D) within each air pressure category (from left to right).

[0070] [Figure 26] FIG. 26 is a graph showing particle size distribution of treprostinil palmityl dry powder formulations A, B, C, and D.

[0071] [Figure 27] FIG. 27 is an SEM image of treprostinil palmityl dry powder formulation A.

[0072] [Figure 28] FIG. 28 is an SEM image of treprostinil palmityl dry powder formulation B.

[0073] [Figure 29] FIG. 29 is an SEM image of treprostinil palmityl dry powder formulation C.

[0074] [Figure 30] FIG. 30 is an SEM image of treprostinil palmityl dry powder formulation D.

[0075] [Figure 31] FIG. 31 is a graph showing fine particle doses (FPD) of Treprostinil Palmityl Dry Powder Formulation A at T=0 and after storage in capsules for 1 to 3 months at 25° C. or 40° C. as shown, or after storage in bulk at 25° C. or 40° C. for 3 months and filled into capsules and administered on the same day.

[0076] [Figure 32]FIG. 32 is a graph showing the fine particle dose (FPD) of Treprostinil Palmityl Dry Powder Formulation C at T=0 and after storage in capsules for 1 to 3 months at 25° C. or 40° C. as shown, or after storage in bulk at 25° C. or 40° C. for 3 months and filled into capsules and administered on the same day.

[0077] [Figure 33] FIG. 33 is a graph showing the fine particle dose (FPD) of Treprostinil Palmityl Dry Powder Formulation D at T=0 and after storage in capsules for 1 to 3 months at 25° C. or 40° C. as shown, or after storage in bulk at 25° C. or 40° C. for 3 months and filled into capsules and administered on the same day.

[0078] [Figure 34] FIG. 34 is a dynamic vapor sorption (DVS) isotherm plot of a trehalose-based C16TR (treprostinil palmityl) dry powder formulation.

[0079] [Figure 35] Figure 35 is a graph showing the aerosol particle size distribution of a trehalose-based C16TR (treprostinil palmityl) dry powder formulation at T=0 months and after storage at 40°C and uncontrolled ambient humidity for 1.5 months, 2.5 months, and 3.5 months (n=1 per time point).

[0080] [Figure 36] FIG. 36 is a graph showing the concentrations of C16TR (treprostinil palmityl) equivalents (C16TR (treprostinil palmityl) plus treprostinil, ng / g) and nebulized INS1009 in the lungs following inhalation of a trehalose-based C16TR (treprostinil palmityl) dry powder formulation.

[0081] [Figure 37]FIG. 37 is a graph showing the concentration of C16TR (treprostinil palmityl) equivalents (C16TReq) in the lungs following inhalation of treprostinil palmityl dry powder Formulation D or Formulation C.

[0082] [Figure 38] FIG. 38 is a graph showing the concentration of C16TR (treprostinil palmityl) in the lungs following inhalation of treprostinil palmityl dry powder Formulation D or Formulation C.

[0083] [Figure 39] FIG. 39 is a graph showing the concentration of treprostinil palmityl in the lungs after inhalation of treprostinil palmityl dry powder Formulation D or Formulation C.

[0084] [Figure 40] FIG. 40 is a graph showing the concentration of treprostinil palmityl in plasma following inhalation of treprostinil palmityl dry powder Formulation D or Formulation C.

[0085] [Figure 41] FIG. 41 is a graph showing the ΔRVPP response to hypoxia in rats exposed to treprostinil palmityl dry powder Formulation D or Formulation C. DETAILED DESCRIPTION OF THE INVENTION

[0086] Detailed Description of the Invention Throughout this disclosure, the term "about" may be used in conjunction with numerical values ​​and / or ranges. The term "about" is understood to mean a value close to the stated value. For example, "about 40 units" can mean within ±25% (e.g., 30-50), ±20%, ±15%, ±10%, ±9%, ±8%, ±7%, ±6%, ±5%, ±4%, ±3%, ±2%, ±1%, or within ±1%, or less than ±1%, or any other value or range of values ​​therein or less.

[0087] The term "pharmaceutically acceptable salt" refers to a salt prepared from a pharmaceutically acceptable non-toxic base or acid, including inorganic or organic bases and inorganic or organic acids. The nature of the salt is not critical, so long as it is pharmaceutically acceptable. Suitable pharmaceutically acceptable acid addition salts can be prepared from inorganic or organic acids. Exemplary pharmaceutical salts are disclosed in Stahl, PH, Wermuth, CG, Eds. Handbook of Pharmaceutical Salts: Properties, Selection and Use; Verlag Helvetica Chimica Acta / Wiley-VCH: Zurich, 2002, the contents of which are incorporated herein by reference in their entirety. Specific, non-limiting examples of inorganic acids are hydrochloric acid, hydrobromic acid, hydroiodic acid, nitric acid, carbonic acid, sulfuric acid, and phosphoric acid. Suitable organic acids include, but are not limited to, fatty acids, alicyclic acids, aromatic acids, aryl fatty acids, and heterocyclylic acids containing carboxylic and sulfonic acids, such as formic acid, acetic acid, propionic acid, succinic acid, glycolic acid, gluconic acid, lactic acid, malic acid, tartaric acid, citric acid, ascorbic acid, glucuronic acid, maleic acid, fumaric acid, pyruvic acid, aspartic acid, glutamic acid, benzoic acid, anthranilic acid, mesylic acid, stearic acid, salicylic acid, p-hydroxybenzoic acid, phenylacetic acid, mandelic acid, embonic acid (pamoic acid), methanesulfonic acid, ethanesulfonic acid, benzenesulfonic acid, pantothenic acid, toluenesulfonic acid, 2-hydroxyethanesulfonic acid, sulfanilic acid, cyclohexylaminosulfonic acid, algenic acid, 3-hydroxybutyric acid, galactaric acid, or galacturonic acid. Suitable pharmaceutically acceptable salts of the compounds containing free acid disclosed herein include, but are not limited to, metal salts and organic salts.Exemplary metal salts include, but are not limited to, suitable alkali metal (group Ia) salts, alkaline earth metal (group IIa) salts, and other physiologically acceptable metal salts.Such salts can be made from aluminum, calcium, lithium, magnesium, potassium, sodium, and zinc.Exemplary organic salts can be made from primary, secondary, tertiary, and quaternary amine salts, such as tromethamine, diethylamine, tetra-N-methylammonium, N,N'-dibenzylethylenediamine, chloroprocaine, choline, diethanolamine, ethylenediamine, meglumine (N-methylglucamine), and procaine.

[0088] Throughout this specification, numerical ranges are given as specific quantities. It should be understood that these ranges include all subranges therein. Thus, the range "50 to 80" includes all possible ranges therein (e.g., 51 to 79, 52 to 78, 53 to 77, 54 to 76, 55 to 75, 60 to 70, etc.). Furthermore, all values ​​within a given range may be endpoints of the range encompassed thereby (e.g., the range 50 to 80 includes ranges including endpoints such as 55 to 80, 50 to 75, etc.).

[0089] The term "treating," in one embodiment, includes: (1) preventing or delaying the appearance of clinical symptoms of the condition, disorder, or condition in a subject who may be suffering from or predisposed to the condition, disorder, or condition, but who has not yet experienced or exhibited clinical or asymptomatic symptoms of the condition, disorder, or condition; (2) inhibiting the condition, disorder, or condition (e.g., halting, reducing, or delaying the onset of the disease, or, in the case of maintenance treatment of at least one clinical or asymptomatic symptom thereof, its recurrence); and / or (3) alleviating the condition (e.g., reversing the condition, disorder, or condition, or at least one of its clinical or asymptomatic symptoms). In one embodiment, "treating" refers to inhibiting the condition, disorder, or condition (e.g., halting, reducing, or delaying the onset of the disease, or, in the case of maintenance treatment of at least one clinical or asymptomatic symptom thereof, its recurrence). In another embodiment, "treating" refers to alleviating a condition (e.g., by reversing the condition, disorder, or at least one of its clinical or asymptomatic symptoms). The benefit to a treated subject is statistically significant compared to the condition or state of the same subject before treatment, or compared to the condition or state of an untreated control subject, and the benefit is at least perceptible to the subject or to a physician.

[0090] By "effective amount" is meant the amount of a dry powder composition of the present disclosure sufficient to result in a desired therapeutic response.

[0091] In one aspect of the present invention, a dry powder composition of a treprostinil prodrug is provided. The dry powder composition comprises: (a) A compound of formula (I): [ka] or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, wherein R 1is tetradecyl, pentadecyl, hexadecyl, heptadecyl, or octadecyl), present in about 0.1 wt% to about 3 wt% of the total weight of the dry powder composition; (b) about 0.01 wt% to about 3 wt% DSPE-PEG2000; (c) about 10 wt% to about 50 wt% leucine, and (d) a remainder which is a sugar selected from the group consisting of trehalose and mannitol. The total of (a), (b), (c), and (d) is 100 wt%.

[0092] In some embodiments, the compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present at about 0.1 wt%, about 0.3 wt%, about 0.5 wt%, about 0.7 wt%, about 1 wt%, about 1.3 wt%, about 1.5 wt%, about 1.7 wt%, about 2.0 wt%, about 2.3 wt%, about 2.5 wt%, about 2.7 wt%, or about 3 wt% of the total weight of the dry powder composition. In further embodiments, the compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present at about 1.5 wt% of the total weight of the dry powder composition. The compound of formula (I) and its pharmaceutically acceptable salt are treprostinil prodrugs disclosed in International Application Publication No. 2015 / 061720, the disclosure of which is incorporated herein by reference in its entirety. In some embodiments, leucine is present at about 10 wt%, about 15 wt%, about 20 wt%, about 25 wt%, about 30 wt%, about 35 wt%, about 40 wt%, about 45 wt%, or about 50 wt% of the total weight of the dry powder composition.

[0093] PEG refers to polyethylene glycol, also known as polyethylene oxide (PEO) or polyoxyethylene (POE), depending on its molecular weight. DSPE-PEG2000 can contain branched or unbranched PEG molecules with an average PEG molecular weight of 2000 g / mol. In one embodiment, (b) is DSPE-PEG2000 present at about 0.03 wt% to about 2.1 wt% of the total weight of the dry powder composition. In another embodiment, (b) is DSPE-PEG2000 present at about 0.05 wt% to about 1.5 wt% of the total weight of the dry powder composition.

[0094] In one embodiment of a compound of Formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, R 1 is tetradecyl. In a further embodiment, R 1 is a linear tetradecyl.

[0095] In another embodiment of the compound of Formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, R 1 is pentadecyl. In a further embodiment, R 1 is a linear pentadecyl.

[0096] In another embodiment of the compound of Formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, R 1 is heptadecyl. In a further embodiment, R 1 is a linear heptadecyl.

[0097] In another embodiment of the compound of Formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, R 1 is octadecyl. In a further embodiment, R 1 is linear octadecyl.

[0098] In another embodiment of the compound of Formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, R 1is hexadecyl. In a further embodiment, R 1 is a linear hexadecyl, i.e., a compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, can be prepared by the reaction of a compound of formula (II): [ka] or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof. In one embodiment, the compound of formula (I) or a pharmaceutically acceptable salt thereof is a compound of formula (II) or a pharmaceutically acceptable salt thereof. In a further embodiment, the compound of formula (I) or a pharmaceutically acceptable salt thereof is a compound of formula (II). In a further embodiment, the compound of formula (I) is a compound of formula (II). The compound of formula (II) is also referred to herein as C16TR or treprostinil palmityl. In this application, C16TR and treprostinil palmityl are used interchangeably and refer to the compound of formula (II).

[0099] In one embodiment, (a) is a compound of Formula (I) or a pharmaceutically acceptable salt thereof. In a further embodiment, (a) is a compound of Formula (I). In another embodiment, (a) is a compound of Formula (II) or a pharmaceutically acceptable salt thereof. In a further embodiment, (a) is a compound of Formula (II).

[0100] In one embodiment, the compound of Formula (I) or (II), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present in about 0.5 wt% to about 2 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.05 wt% to about 2 wt% of the total weight of the dry powder composition. In a further embodiment, the DSPE-PEG2000 is present in about 0.15 wt% to about 1.4 wt% of the total weight of the dry powder composition. In a further embodiment, the DSPE-PEG2000 is present in about 0.25 wt% to about 1 wt% of the total weight of the dry powder composition. In some embodiments, the compound of Formula (I) or (II), or its pharmaceutically acceptable salt, is present in about 0.5 wt% to about 2 wt% of the total weight of the dry powder composition. In some embodiments, the compound of formula (I) or (II) is present at about 0.5 wt% to about 2 wt% of the total weight of the dry powder composition.

[0101] In one embodiment, the compound of Formula (I) or (II), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present in about 1 wt% to about 2 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.1 wt% to about 2 wt% of the total weight of the dry powder composition. In a further embodiment, the DSPE-PEG2000 is present in about 0.3 wt% to about 1.4 wt% of the total weight of the dry powder composition. In a further embodiment, the DSPE-PEG2000 is present in about 0.5 wt% to about 1 wt% of the total weight of the dry powder composition. In some embodiments, the compound of Formula (I) or (II), or its pharmaceutically acceptable salt, is present in about 1 wt% to about 2 wt% of the total weight of the dry powder composition. In some embodiments, the compound of Formula (I) or (II) is present in about 1 wt% to about 2 wt% of the total weight of the dry powder composition.

[0102] In one embodiment, the compound of Formula (I) or (II), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present in about 1.2 wt% to about 1.8 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.12 wt% to about 1.8 wt% of the total weight of the dry powder composition. In a further embodiment, the DSPE-PEG2000 is present in about 0.36 wt% to about 1.26 wt% of the total weight of the dry powder composition. In a further embodiment, the DSPE-PEG2000 is present in about 0.6 wt% to about 0.9 wt% of the total weight of the dry powder composition. In some embodiments, the compound of Formula (I) or (II), or its pharmaceutically acceptable salt, is present in about 1.2 wt% to about 1.8 wt% of the total weight of the dry powder composition. In some embodiments, the compound of formula (I) or (II) is present at about 1.2 wt% to about 1.8 wt% of the total weight of the dry powder composition.

[0103] In one embodiment, the compound of Formula (I) or (II), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present in about 1 wt% to about 1.5 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.1 wt% to about 1.5 wt% of the total weight of the dry powder composition. In a further embodiment, the DSPE-PEG2000 is present in about 0.3 wt% to about 1.05 wt% of the total weight of the dry powder composition. In a further embodiment, the DSPE-PEG2000 is present in about 0.5 wt% to about 0.75 wt% of the total weight of the dry powder composition. In some embodiments, the compound of Formula (I) or (II), or its pharmaceutically acceptable salt, is present in about 1 wt% to about 1.5 wt% of the total weight of the dry powder composition. In some embodiments, the compound of formula (I) or (II) is present at about 1 wt% to about 1.5 wt% of the total weight of the dry powder composition.

[0104] In one embodiment, the compound of Formula (I) or (II), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present in about 1.4 wt% to about 1.6 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.14 wt% to about 1.6 wt% of the total weight of the dry powder composition. In a further embodiment, the DSPE-PEG2000 is present in about 0.42 wt% to about 1.12 wt% of the total weight of the dry powder composition. In a further embodiment, the DSPE-PEG2000 is present in about 0.7 wt% to about 0.8 wt% of the total weight of the dry powder composition. In some embodiments, the compound of Formula (I) or (II), or its pharmaceutically acceptable salt, is present in about 1.4 wt% to about 1.6 wt% of the total weight of the dry powder composition. In some embodiments, the compound of formula (I) or (II) is present at about 1.4 wt% to about 1.6 wt% of the total weight of the dry powder composition.

[0105] In one embodiment, the compound of Formula (I) or (II), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present at about 1 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present at about 0.1 wt% to about 1 wt% of the total weight of the dry powder composition. In a further embodiment, the DSPE-PEG2000 is present at about 0.3 wt% to about 0.7 wt% of the total weight of the dry powder composition. In a further embodiment, the DSPE-PEG2000 is present at about 0.5 wt% of the total weight of the dry powder composition. In some embodiments, the compound of Formula (I) or (II), or its pharmaceutically acceptable salt, is present at about 1 wt% of the total weight of the dry powder composition. In some embodiments, the compound of Formula (I) or (II) is present at about 1 wt% of the total weight of the dry powder composition.

[0106] In one embodiment, the compound of Formula (I) or (II), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present at about 1.5 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present at about 0.15 wt% to about 1.5 wt% of the total weight of the dry powder composition. In a further embodiment, the DSPE-PEG2000 is present at about 0.45 wt% to about 1.05 wt% of the total weight of the dry powder composition. In a further embodiment, the DSPE-PEG2000 is present at about 0.75 wt% of the total weight of the dry powder composition. In some embodiments, the compound of Formula (I) or (II), or its pharmaceutically acceptable salt, is present at about 1.5 wt% of the total weight of the dry powder composition. In some embodiments, the compound of Formula (I) or (II) is present at about 1.5 wt% of the total weight of the dry powder composition.

[0107] In some embodiments, the compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present at about 0.1 wt% to about 3 wt%, about 0.5 wt% to about 2 wt%, about 1 wt% to about 2 wt%, about 1.2 wt% to about 1.8 wt%, about 1 wt% to about 1.5 wt%, about 1.4 wt% to about 1.6 wt%, about 1 wt%, or about 1.5 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 and the compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, The weight ratio of DSPE-PEG2000 to a compound of Formula (I) or (II) and an acceptable salt thereof is within the range of about 0.1:1 (DSPE-PEG2000: compound of Formula (I) or (II)) to about 1:1 (DSPE-PEG2000: compound of Formula (I) or (II)), or about 0.3:1 (DSPE-PEG2000: compound of Formula (I) or (II)) to about 0.7:1 (DSPE-PEG2000: compound of Formula (I) or (II)), e.g., about 0.1:1, about 0.2:1, about 0.3:1, about 0.4:1, about 0.5:1, about 0.6:1, about 0.7:1, about 0.8:1, about 0.9:1, or about 1:1. In one embodiment, the weight ratio of DSPE-PEG2000 to the compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is within the range of about 0.1:1 (DSPE-PEG2000:compound of Formula (I) or (II)) to about 1:1 (DSPE-PEG2000:compound of Formula (I) or (II)). In another embodiment, the weight ratio of DSPE-PEG2000 to the compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is within the range of about 0.3:1 (DSPE-PEG2000:compound of Formula (I) or (II)) to about 0.7:1 (DSPE-PEG2000:compound of Formula (I) or (II)).

[0108] In some embodiments, the weight ratio of DSPE-PEG2000 to the compound of Formula (I) or (II), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is about 0.5:1 (DSPE-PEG2000:compound of Formula (I) or (II)). At this weight ratio, in one embodiment, the compound of Formula (I) or (II), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present in about 1 wt% to about 2 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.5 wt% to about 1 wt% of the total weight of the dry powder composition. In another embodiment, the compound of Formula (I) or (II), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present in about 1.2 wt% to about 1.8 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.6 wt% to about 0.9 wt% of the total weight of the dry powder composition. In another embodiment, the compound of Formula (I) or (II), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present in about 1.4 wt% to about 1.6 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.7 wt% to about 0.8 wt% of the total weight of the dry powder composition. In another embodiment, the compound of Formula (I) or (II), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present at about 1.5 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present at about 0.75 wt% of the total weight of the dry powder composition. In some embodiments, the compound of Formula (I) or (II), or its pharmaceutically acceptable salt, is present in the dry powder composition at each of the above weight percentages or weight percentage ranges. In some embodiments, the compound of Formula (I) or (II) is present in the dry powder composition at each of the above weight percentages or weight percentage ranges.

[0109] In one embodiment, leucine is present at about 15 wt% to about 40 wt% of the total weight of the dry powder composition. In a further embodiment, leucine is present at about 18 wt% to about 33 wt% of the total weight of the dry powder composition. In a further embodiment, leucine is present at about 20 wt% to about 30 wt%, e.g., about 20 wt%, about 25 wt%, or about 30 wt% of the total weight of the dry powder composition. In a further embodiment, leucine is present at about 25 wt% to about 30 wt% of the total weight of the dry powder composition. In a further embodiment, leucine is present at about 27 wt% to about 30 wt% of the total weight of the dry powder composition. In one embodiment, leucine is present at about 20 wt% of the total weight of the dry powder composition. In another embodiment, leucine is present at about 30 wt% of the total weight of the dry powder composition.

[0110] In some embodiments, the sugar in the dry powder composition is trehalose, hi other embodiments, the sugar in the dry powder composition is mannitol.

[0111] In one embodiment, the dry powder composition comprises (a) about 1.5 wt% of a compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, (b) about 0.7 wt% of DSPE-PEG2000, (c) about 29.3 wt% of leucine, and (d) the remainder being trehalose. In a further embodiment, (a) in the dry powder composition is about 1.5 wt% of a compound of Formula (I) or (II), or a pharmaceutically acceptable salt thereof. In a further embodiment, (a) in the dry powder composition is about 1.5 wt% of a compound of Formula (I) or (II). In some embodiments, R 1 is hexadecyl in compounds of formula (I). In a further embodiment, R 1 is a linear hexadecyl in the compound of formula (I), i.e., the compound of formula (I) is a compound of formula (II).

[0112] In another embodiment, the dry powder composition comprises (a) about 1 wt% of a compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, (b) about 0.5 wt% of DSPE-PEG2000, (c) about 29.6 wt% of leucine, and (d) the remainder being trehalose. In a further embodiment, (a) in the dry powder composition is about 1 wt% of a compound of Formula (I) or (II), or a pharmaceutically acceptable salt thereof. In a further embodiment, (a) in the dry powder composition is about 1 wt% of a compound of Formula (I) or (II). In some embodiments, R 1 is hexadecyl in compounds of formula (I). In a further embodiment, R 1 is a linear hexadecyl in the compound of formula (I), i.e., the compound of formula (I) is a compound of formula (II).

[0113] In another embodiment, the dry powder composition comprises (a) about 1 wt% of a compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, (b) about 0.5 wt% of DSPE-PEG2000, (c) about 19.7 wt% of leucine, and (d) the remainder being trehalose. In a further embodiment, (a) in the dry powder composition is about 1 wt% of a compound of Formula (I) or (II), or a pharmaceutically acceptable salt thereof. In a further embodiment, (a) in the dry powder composition is about 1 wt% of a compound of Formula (I) or (II). In some embodiments, R 1 is hexadecyl in compounds of formula (I). In a further embodiment, R 1 is a linear hexadecyl in the compound of formula (I), i.e., the compound of formula (I) is a compound of formula (II).

[0114] In another embodiment, the dry powder composition comprises (a) about 1.5 wt% of a compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, (b) about 0.7 wt% of DSPE-PEG2000, (c) about 19.6 wt% of leucine, and (d) the remainder being trehalose. In a further embodiment, (a) in the dry powder composition is about 1.5 wt% of a compound of Formula (I) or (II), or a pharmaceutically acceptable salt thereof. In a further embodiment, (a) in the dry powder composition is about 1.5 wt% of a compound of Formula (I) or (II). In some embodiments, R 1 is hexadecyl in compounds of formula (I). In a further embodiment, R 1 is a linear hexadecyl in the compound of formula (I), i.e., the compound of formula (I) is a compound of formula (II).

[0115] In another embodiment, the dry powder composition comprises (a) about 1.5 wt% of a compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, (b) about 0.7 wt% of DSPE-PEG2000, (c) about 29.3 wt% of leucine, and (d) the remainder being mannitol. In a further embodiment, (a) in the dry powder composition is about 1.5 wt% of a compound of Formula (I) or (II), or a pharmaceutically acceptable salt thereof. In a further embodiment, (a) in the dry powder composition is about 1.5 wt% of a compound of Formula (I) or (II). In some embodiments, R 1 is hexadecyl in compounds of formula (I). In a further embodiment, R 1 is a linear hexadecyl in the compound of formula (I), i.e., the compound of formula (I) is a compound of formula (II).

[0116] In another embodiment, the dry powder composition comprises (a) about 1.5 wt% of a compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, (b) about 0.75 wt% of DSPE-PEG2000, (c) about 29.30 wt% of leucine, and (d) about 68.45 wt% of mannitol. In a further embodiment, (a) in the dry powder composition is about 1.5 wt% of a compound of Formula (I) or (II), or a pharmaceutically acceptable salt thereof. In a further embodiment, (a) in the dry powder composition is about 1.5 wt% of a compound of Formula (I) or (II). In some embodiments, R 1 is hexadecyl in compounds of formula (I). In a further embodiment, R 1 is linear hexadecyl in the compound of formula (I), i.e., the compound of formula (I) is a compound of formula (II). In one embodiment, the dry powder composition comprises: (a) about 1.5 wt% of the compound of formula (II), (b) about 0.75 wt% of DSPE-PEG2000, (c) about 29.30 wt% of leucine, and (d) about 68.45 wt% of mannitol.

[0117] In another embodiment, the dry powder composition comprises (a) about 1 wt% of a compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, (b) about 0.5 wt% of DSPE-PEG2000, (c) about 29.6 wt% of leucine, and (d) the remainder being mannitol. In a further embodiment, (a) in the dry powder composition is about 1 wt% of a compound of Formula (I) or (II), or a pharmaceutically acceptable salt thereof. In a further embodiment, (a) in the dry powder composition is about 1 wt% of a compound of Formula (I) or (II). In some embodiments, R 1 is hexadecyl in compounds of formula (I). In a further embodiment, R 1 is a linear hexadecyl in the compound of formula (I), i.e., the compound of formula (I) is a compound of formula (II).

[0118] In another embodiment, the dry powder composition comprises (a) about 1.5 wt% of a compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, (b) about 0.7 wt% of DSPE-PEG2000, (c) about 19.6 wt% of leucine, and (d) the remainder being mannitol. In a further embodiment, (a) in the dry powder composition is about 1.5 wt% of a compound of Formula (I) or (II), or a pharmaceutically acceptable salt thereof. In a further embodiment, (a) in the dry powder composition is about 1.5 wt% of a compound of Formula (I) or (II). In some embodiments, R 1 is hexadecyl in compounds of formula (I). In a further embodiment, R 1 is a linear hexadecyl in the compound of formula (I), i.e., the compound of formula (I) is a compound of formula (II).

[0119] In another embodiment, the dry powder composition comprises (a) about 1 wt% of a compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, (b) about 0.5 wt% of DSPE-PEG2000, (c) about 19.7 wt% of leucine, and (d) the remainder being mannitol. In a further embodiment, (a) in the dry powder composition is about 1 wt% of a compound of Formula (I) or (II), or a pharmaceutically acceptable salt thereof. In a further embodiment, (a) in the dry powder composition is about 1 wt% of a compound of Formula (I) or (II). In some embodiments, R 1 is hexadecyl in compounds of formula (I). In a further embodiment, R 1 is a linear hexadecyl in the compound of formula (I), i.e., the compound of formula (I) is a compound of formula (II).

[0120] Mass median aerodynamic diameter (MMAD) is the aerodynamic diameter at which 50% of the mass of a given aerosol is associated with particles smaller than the mass median aerodynamic diameter (MAD) and 50% of the mass is associated with particles larger than the MAD. MMAD can be determined by impactor measurements, such as an Anderson Cascade Impactor (ACT) or Next Generation Impactor (NGI). In some embodiments, the dry powder composition is in the form of an aerosol containing particles with an MMAD of about 1 μm to about 5 μm, about 1 μm to about 3 μm, about 1.3 μm to about 2.0 μm, or about 1.7 μm to about 2.7 μm, as measured by NGI. In one embodiment, the sugar in the dry powder composition is mannitol. In another embodiment, the sugar in the dry powder composition is trehalose.

[0121] In one embodiment, the sugar in the dry powder composition is mannitol and the dry powder composition is in the form of an aerosol comprising particles having an MMAD of about 1 μm to about 3 μm as measured by NGI. In another embodiment, the sugar in the dry powder composition is mannitol and the dry powder composition is in the form of an aerosol comprising particles having an MMAD of about 1.7 μm to about 2.7 μm as measured by NGI.

[0122] "Fine particle fraction" or "FPF" refers to the fraction of aerosol having a particle size less than 5 μm in diameter as measured by cascade impaction. FPF is usually expressed as a percentage. FPF has been demonstrated to correlate with the fraction of powder deposited in a patient's lungs. In some embodiments, the dry powder composition is in the form of an aerosol containing particles having an FPF of at least 20%, at least 30%, at least 40%, at least 50%, about 30% to about 60%, about 35% to about 55%, or about 40% to about 50%, as measured by NGI. In one embodiment, the sugar in the dry powder composition is mannitol. In another embodiment, the sugar is trehalose.

[0123] The tapped density of a powder is the ratio of the mass of the powder to the volume occupied by the powder after tapping the powder for a defined period of time. The tapped density of a powder represents its random, dense packing. Tapped density was determined using the method of USP Bulk Density and Tapped Density, United States Pharmacopeia convention, Rockville, Md., 10th Supplement, 4950-4951, 1999. The tap density can be determined using a 2000 sachets or 2000 sachets per 1 ...

[0124] The dry powder composition of the present disclosure can be produced from liquid composition using freeze-drying or spray-drying techniques.When freeze-drying is used, the freeze-dried composition can be pulverized to obtain a finely divided dry powder containing particles within the desired size range.When spray-drying is used, this process is carried out under conditions that produce a finely divided dry powder containing particles within the desired size range.Exemplary methods for preparing pharmaceutical compositions in the form of dry powder are disclosed in WO96 / 32149, WO97 / 41833, WO98 / 29096, and U.S. Patent Nos. 5,976,574, 5,985,248, and 6,001,336, the disclosures of which are incorporated herein by reference in their entirety.Exemplary spray-drying methods are described in U.S. Patent Nos. 6,848,197 and 8,197,845, the disclosures of which are incorporated herein by reference in their entirety.

[0125] In some embodiments, the dry powder composition of the present disclosure is prepared by the following process: A stock solution of a compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, and DSPE-PEG2000 is prepared using an organic solvent such as alcohol (e.g., 1-propanol). An aqueous stock solution of a sugar (e.g., mannitol or trehalose) and leucine is also prepared. The required amount of the stock solution is then added to a mixture of water and organic solvent to form a spray-drying feed solution. In the spray-drying feed solution, the volume ratio of water to organic solvent can be from about 3:2 to about 1:1.

[0126] Spray drying begins by heating the drying gas by starting the drying gas flow and setting it to the desired inlet temperature, for example, about 120°C to about 160°C, or about 135°C to about 150°C. After the spray drying outlet temperature reaches a suitable temperature, for example, about 55°C to about 65°C, the liquid skid inlet is set so that the blank solvent is atomized into the spray dryer with the aid of nitrogen, and the system is allowed to cool and stabilize. Pulsing of the product filter is initiated, and the product filter purge flow is set, for example, to 10 to 20 scfh. After the system has stabilized, the liquid skid inlet is switched to the feed solution prepared above, and the process continues until the feed solution is depleted. At this point, the liquid skid inlet is switched back to the blank solvent, and the solvent is allowed to spray for about 5 to about 20 minutes. At this point, the powder is collected at the bottom of the product filter. After spraying the blank solvent for about 5 to about 20 minutes, the system is shut down by turning off the liquid lines, atomization gas, drying gas heater, drying gas inlet, and finally the exhaust.

[0127] In one embodiment, the dry powder composition of the present disclosure is delivered to the subject's lungs by inhalation using a dry powder inhaler (DPI). In one embodiment, the dry powder inhaler is a single-dose dry powder inhaler. The DPI, which is a propellant-free device, delivers the dry powder to the subject's lungs using the subject's inhalation. The unit dose of the dry powder composition used in the DPI device is often a dry powder blister disk in a hard capsule. Exemplary DPI devices suitable for delivering the dry powder composition of the present disclosure include the devices described in the following paragraphs, as well as the DPIs described in U.S. Patent Nos. 6,766,799, 7,278,425, and 8,496,002, the disclosures of each of which are incorporated herein by reference in their entirety.

[0128] The AIR® inhaler (Alkermes) comprises a miniature, breath-activated system that delivers a porous powder from a capsule. The porous particles have an aerodynamic particle size of 1-5 μm. See International Patent Applications Nos. 99 / 66903 and 00 / 10541, the disclosures of each of which are incorporated herein by reference in their entireties.

[0129] The Aerolizer™ (Novartis) is a single-dose dry powder inhaler. In this device, dry powder medication is stored in a capsule and released by piercing the capsule wall with a TEFLON®-coated steel pin. See U.S. Pat. Nos. 6,488,027 and 3,991,761, the disclosures of each of which are incorporated herein by reference in their entireties.

[0130] Bang Olufsen provides a breath-actuated inhaler that uses a blister strip containing up to 60 doses. The dose is only available during inhalation via a novel trigger mechanism. The device is equipped with a dose counter and can be disposed of after all doses have been used. See EP1522325, the disclosure of which is incorporated herein by reference in its entirety.

[0131] Clickhaler® (Innovata PLC) is a large reservoir, breath-activated, multi-dose device. See U.S. Patent No. 5,437,270, the disclosure of which is incorporated herein by reference in its entirety.

[0132] DirectHaler™ (Direct-Haler A / S) is a single-dose, pre-metered, pre-filled, disposable DPI device made of polypropylene. See U.S. Patent No. 5,797,392, the disclosure of which is incorporated herein by reference in its entirety.

[0133] Diskus™ (GlaxoSmithKline) is a disposable miniature DPI device holding up to 60 doses contained in a moisture-resistant double foil blister strip. See GB 2242134, the disclosure of which is incorporated herein by reference in its entirety.

[0134] Eclipse™ (Aventis) is a breath-activated, reusable capsule device capable of delivering up to 20 mg of dry powder composition. The powder is drawn from the capsule into a vortex chamber, where a rotating ball assists in deagglomeration of the powder as the subject breathes. See U.S. Pat. No. 6,230,707 and WO 9503846, the disclosures of each of which are incorporated herein by reference in their entireties.

[0135] The Flexhaler® is a plastic, breath-activated dry powder inhaler that is suitable for use with the dry powder compositions provided herein.

[0136] FlowCaps® (Hovione) is a capsule-based, refillable, reusable dry powder passive inhaler that holds up to 14 capsules. The inhaler itself is moisture resistant. See U.S. Pat. No. 5,673,686, the disclosure of which is incorporated herein by reference in its entirety.

[0137] Gyrohaler® (Vectura) is a disposable passive DPI containing a strip of blisters. See GB2407042, the disclosure of which is incorporated herein by reference in its entirety.

[0138] The HandiHaler® (Boehringer Ingelheim GmbH) is a single-dose DPI device. It can deliver up to 30 mg of dry powder composition in a capsule. See International Patent Application Publication No. 04 / 024156, the disclosure of which is incorporated herein by reference in its entirety.

[0139] MicroDose DPI (Microdose Technologies) is a small electronic DPI device. It uses a piezoelectric vibrator (ultrasonic frequencies) to deagglomerate drug powder (single or multiple doses) in aluminum blisters. See U.S. Patent No. 6,026,809, the disclosure of which is incorporated herein by reference in its entirety.

[0140] The Nektar Dry Powder Inhaler® (Nektar) is an easy-to-use, palm-sized device that provides convenient dosing from a standard capsule and flow-independent lung deposition.

[0141] The Nektar Pulmonary Inhaler® (Nektar) efficiently removes powder from the package, breaking down particles and creating an aerosol cloud suitable for deep lung delivery. This allows aerosolized particles to be transported from the device to the deep lung during a patient's breath, reducing losses in the throat and upper airway. Compressed gas is used to aerosolize the powder. See AU4090599 and U.S. Pat. No. 5,740,794, the disclosures of each of which are incorporated herein by reference in their entireties.

[0142] NEXT DPI™ is a device that features multiple dose capability, moisture resistance, and dose counting. The device can be used regardless of orientation (up or down) and dose, only when adequate respiratory flow is achieved. See EP1196146, U.S. Patent No. 6,528,096, WO0178693, and WO0053158, the disclosures of each of which are incorporated herein by reference in their entirety.

[0143] Neohaler® is a capsule-based, plastic, breath-activated dry powder inhaler.

[0144] Oriel™ DPI is an active DPI that utilizes a piezoelectric membrane and nonlinear vibrations to aerosolize powder formulations. See International Patent Application Publication No. 0168169, the disclosure of which is incorporated herein by reference in its entirety.

[0145] The RS01 single-dose dry powder inhaler, developed by Plastiape in Italy, features a compact size and a simple and effective perforation system, and is compatible with both gelatin and HMPC capsules.

[0146] The Pressair™ is a plastic, breath-activated dry powder inhaler.

[0147] The Pulvinal® Inhaler (Chiesi) is a breath-activated, multi-dose (100-dose) dry powder inhaler. The dry powder is stored in a reservoir that is transparent and clearly marked to indicate when the 100th dose has been delivered. See U.S. Pat. No. 5,351,683, the disclosure of which is incorporated herein by reference in its entirety.

[0148] Rotohaler® (GlaxoSmithKline) is a single-use device that utilizes a capsule. See U.S. Patent Nos. 5,673,686 and 5,881,721, the disclosures of each of which are incorporated herein by reference in their entirety.

[0149] Rexam DPI (Rexam Pharma) is a single-dose, reusable device designed for use with capsules. See U.S. Patent No. 5,651,359 and EP 0707862, the disclosures of each of which are incorporated herein by reference in their entirety.

[0150] The S2 (Innovata PLC) is a reusable or disposable, single-dose DPI for delivering highly concentrated dry powder compositions. Its dispersion mechanism requires minimal patient effort to achieve excellent drug delivery to the patient's lungs. The S2 is easy to use and has a passive engine, so it does not require batteries or a power source. See AU3320101, the disclosure of which is incorporated herein by reference in its entirety.

[0151] The SkyeHaler® DPI (SkyePharma) is a multi-dose device containing up to 300 individual doses in a single-use or replaceable cartridge. The device is breath-powered and does not require coordination between breath and actuation. See U.S. Pat. No. 6,182,655 and WO 97 / 20589, the disclosures of each of which are incorporated herein by reference in their entirety.

[0152] The Taifun® DPI (LAB International) is a multi-dose (up to 200 doses) DPI device. It is breath-actuated and flow-independent. The device contains an inherent moisture-balanced drug reservoir connected to a volumetric dose metering system for consistent dosing. See U.S. Pat. No. 6,132,394, the disclosure of which is incorporated herein by reference in its entirety.

[0153] The TurboHaler® (AstraZeneca) is described in U.S. Patent No. 5,983,893, the disclosure of which is incorporated herein by reference in its entirety. This DPI device is an inspiratory flow-driven, multi-dose dry powder inhaler with a multi-dose reservoir that provides up to 200 doses of dry powder composition and a dose range of a few micrograms to 0.5 mg.

[0154] The Twisthaler® (Schering-Plough) is a multi-dose device with dose counting features, capable of 14 to 200 actuations. The dry powder composition is packaged in a cartridge containing a desiccant. See U.S. Pat. No. 5,829,434, the disclosure of which is incorporated herein by reference in its entirety.

[0155] Ultrahaler® (Aventis) combines accurate dose measurement with good dispersion. It is an easy-to-use, discrete, pocket-sized device with a numeric dose counter, ingested dose indicator, and lockout mechanism. The device is capable of delivering up to 20 mg of dry powder composition. Ultrahaler® is described in U.S. Pat. No. 5,678,538 and WO2004026380, the disclosures of each of which are incorporated herein by reference in their entirety.

[0156] Xcelovair™ (Meridica / Pfizer) contains 60 pre-metered, hermetically sealed doses ranging from 5 to 20 mg. The device provides moisture protection under accelerated conditions of 40°C / 75% RH. The dispersion system maximizes the fine particle fraction and delivers up to 50% fine particle mass.

[0157] In another aspect, a system is provided that includes (i) one of the dry powder compositions described herein and (ii) a dry powder inhaler (DPI) for administering the dry powder composition. The DPI includes (a) a reservoir containing a dry powder composition disclosed herein, and (b) a means for introducing the dry powder composition to a patient by inhalation. The reservoir, in one embodiment, contains the dry powder composition of the present invention in a capsule or blister pack. The capsule shell material can be gelatin, cellulose derivatives, starch, starch derivatives, chitosan, or synthetic plastics. The DPI can be a single-dose or multi-dose inhaler. Furthermore, the DPI can be pre-metered or device-metered. In one embodiment, the dry powder inhaler is a single-dose dry powder inhaler.

[0158] In one embodiment, the system is used to treat pulmonary hypertension, portopulmonary hypertension, or pulmonary fibrosis. The system includes a dry powder composition disclosed herein, i.e., a dry powder composition comprising a compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, and a DPI. In one embodiment, the dry powder composition comprises a compound of Formula (I) or (II), or a pharmaceutically acceptable salt thereof. In another embodiment, the dry powder composition comprises a compound of Formula (I) or (II). The dry powder inhaler may be as described above and may be a single-dose or multi-dose inhaler, and / or may be pre-metered or metered on the device. In one embodiment, the dry powder inhaler is a single-dose dry powder inhaler.

[0159] Another aspect of the present invention provides a method for treating pulmonary hypertension (PH) in a patient in need thereof. The method comprises administering an effective amount of a dry powder composition disclosed herein, i.e., a dry powder composition comprising a compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, to the patient's lungs by inhalation with a dry powder inhaler. In one embodiment, the dry powder composition comprises a compound of Formula (I) or (II), or a pharmaceutically acceptable salt thereof. In another embodiment, the dry powder composition comprises a compound of Formula (I) or (II). In one embodiment, the administering step comprises aerosolizing the dry powder composition with a DPI to provide an aerosolized dry powder composition, and administering the aerosolized dry powder composition to the patient's lungs by inhalation with the DPI. In some embodiments, the aerosolized dry powder composition comprises particles having an MMAD of about 1 μm to about 10 μm, about 1 μm to about 7 μm, about 1 μm to about 5 μm, or about 1 μm to about 3 μm, as measured by NGI. In one embodiment, the aerosolized dry powder composition comprises particles having an FPF of about 40% to about 70%, about 30% to about 60%, or about 50% to about 60%, as measured by NGI.

[0160] The World Health Organization (WHO) classifies PH into five groups. Group 1 PH includes pulmonary arterial hypertension (PAH), idiopathic pulmonary arterial hypertension (IPAH), familial pulmonary arterial hypertension (FPAH), and pulmonary arterial hypertension (APAH) associated with other diseases. For example, pulmonary arterial hypertension associated with collagen vascular disease (e.g., scleroderma), congenital shunts between the systemic and pulmonary circulation, portal hypertension, and / or HIV infection is included in Group 1 PH. Group 2 PH includes pulmonary hypertension associated with left heart disease, e.g., atrial or ventricular disease, or valvular heart disease (e.g., mitral valve stenosis). WHO Group 3 pulmonary hypertension is characterized as pulmonary hypertension associated with lung disease, e.g., chronic obstructive pulmonary disease (COPD), interstitial lung disease (ILD), and / or hypoxemia. Group 4 pulmonary hypertension is pulmonary hypertension due to chronic thrombosis and / or embolism. Group 4 PH is also referred to as chronic thromboembolic pulmonary hypertension. Patients with Group 4 PH experience blockage or narrowing of blood vessels due to blood clots. Group 5 PH is a "diverse" category and includes PH caused by blood disorders (e.g., polycythemia vera, essential thrombocythemia), systemic disorders (e.g., sarcoidosis, vasculitis), and / or metabolic disorders (e.g., thyroid disease, glycogen storage disease).

[0161] The methods provided herein can be used to treat PH patients characterized by the WHO as Group 1 (i.e., pulmonary arterial hypertension or PAH), Group 2, Group 3, Group 4, or Group 5. In one embodiment of the method, the pulmonary hypertension being treated is chronic thromboembolic pulmonary hypertension.

[0162] In another embodiment of the method, the pulmonary hypertension being treated is pulmonary arterial hypertension (PAH). In some embodiments, the PAH being treated is Class I PAH, Class II PAH, Class III PAH, or Class IV PAH as characterized by the New York Heart Association (NYHA).

[0163] In one embodiment, the PAH is Class I PAH as characterized by NYHA.

[0164] In another embodiment, the PAH is Class II PAH as characterized by NYHA.

[0165] In yet another embodiment, the PAH is Class III PAH as characterized by NYHA.

[0166] In yet another embodiment, the PAH is Class IV PAH as characterized by NYHA.

[0167] In another aspect, the present disclosure provides a method for treating portopulmonary hypertension (PPH) in a patient in need thereof. The method comprises administering an effective amount of a dry powder composition disclosed herein, i.e., a dry powder composition comprising a compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, to the patient's lungs by inhalation with a dry powder inhaler. In one embodiment, the dry powder composition comprises a compound of Formula (I) or (II), or a pharmaceutically acceptable salt thereof. In another embodiment, the dry powder composition comprises a compound of Formula (I) or (II). In one embodiment, the administering step comprises aerosolizing the dry powder composition with a dry powder inhaler (DPI) to provide an aerosolized dry powder composition, and administering the aerosolized dry powder composition to the patient's lungs with the DPI. In some embodiments, the aerosolized dry powder composition comprises particles having an MMAD of about 1 μm to about 10 μm, about 1 μm to about 7 μm, about 1 μm to about 5 μm, or about 1 μm to about 3 μm, as measured by NGI. In one embodiment, the aerosolized dry powder composition comprises particles having an FPF of about 40% to about 70%, about 30% to about 60%, or about 50% to about 60%, as measured by NGI.

[0168] In some embodiments, patients with PH, PAH, or PPH treated by the methods of the present disclosure exhibit one or more of the following therapeutic responses: (1) a decrease in pulmonary vascular resistance index (PVRI) from pre-treatment values; (2) a decrease in mean pulmonary artery pressure from pre-treatment values; (3) an increase in hypoxia score from pre-treatment values; (4) a decrease in oxygenation index from pre-treatment values; (5) improved right ventricular function compared to pre-treatment; and (6) improved exercise capacity compared to pre-treatment (e.g., as measured by a 6-minute walk test).

[0169] In one embodiment of the disclosed method, a patient with PH, PAH, or PPH is administered the dry powder composition once daily. In another embodiment of the disclosed method, a patient with PH, PAH, or PPH is administered the dry powder composition twice daily. In yet another embodiment of the disclosed method, a patient with PH, PAH, or PPH is administered the dry powder composition three or more times daily. In one embodiment, administration is with meals. In one embodiment, each administration includes one to five doses (puffs) from the DPI, e.g., one dose (1 puff), two doses (2 puffs), three doses (3 puffs), four doses (4 puffs), or five doses (5 puffs). The DPI, in one embodiment, is compact and portable by the patient. In one embodiment, the dry powder inhaler is a single-dose dry powder inhaler.

[0170] In yet another aspect, the present disclosure provides a method for treating pulmonary fibrosis in a patient in need thereof. The method comprises administering an effective amount of a dry powder composition disclosed herein, i.e., a dry powder composition comprising a compound of Formula (I) or (II), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, to the patient's lungs by inhalation with a dry powder inhaler. In one embodiment, the dry powder composition comprises a compound of Formula (I) or (II), or a pharmaceutically acceptable salt thereof. In another embodiment, the dry powder composition comprises a compound of Formula (I) or (II). In one embodiment, the administering step comprises aerosolizing the dry powder composition with a DPI to form an aerosolized dry powder composition and administering the aerosolized dry powder composition to the patient's lungs with the DPI. In some embodiments, the aerosolized dry powder composition comprises particles having an MMAD of about 1 μm to about 10 μm, about 1 μm to about 7 μm, about 1 μm to about 5 μm, or about 1 μm to about 3 μm, as measured by NGI. In one embodiment, the aerosolized dry powder composition comprises particles having an FPF of about 40% to about 70%, about 30% to about 60%, or about 50% to about 60%, as measured by NGI. In one embodiment, the patient is administered the dry powder composition once daily, twice daily, or three or more times daily. In one embodiment, administration is with meals. In one embodiment, each administration comprises one to five doses (puffs) from the DPI, e.g., one dose (1 puff), two doses (2 puffs), three doses (3 puffs), four doses (4 puffs), or five doses (5 puffs). The DPI, in one embodiment, is compact and portable by the patient. In one embodiment, the dry powder inhaler is a single-dose dry powder inhaler. [Example]

[0171] The present invention is further illustrated by reference to the following examples, but as with the above embodiments, it should be noted that these examples are illustrative and should not be construed as limiting the scope of the invention in any way. Example 1 Preparation and Characterization of Inhalable Dry Powder Formulations Containing the Compound of Formula (II) (Treprostinil Palmityl)

[0172] This example describes mannitol and trehalose-based dry powder formulations containing treprostinil palmityl represented by formula (II), their preparation by spray drying using a Buchi B-290 spray dryer equipped with an Inert Loop Condenser B-295 and a Dehumidifier B-296, and the characterization and stability testing of these formulations.

[0173] Mannitol-based treprostinil palmityl dry powder formulations were successfully prepared with the following components: treprostinil palmityl / DSPE-PEG2000 / mannitol / leucine (1 / 0.5 / 80 / 20, 1.5 / 0.75 / 80 / 20, 2 / 1 / 80 / 20, w / w). The feedstock was prepared by dissolving all components in a 1-propanol / HO cosolvent system (50 / 50, v / v) without the addition of ammonium bicarbonate. The spray drying yield for the mannitol-based dry powder was greater than 90%. The collected dry powder had spherical particles, a crystalline XRD profile, and a low moisture content.

[0174] Trehalose-based treprostinil palmityl dry powder formulations with the following components were prepared: treprostinil palmityl / DSPE-PEG2000 / trehalose / leucine (1 / 0.5 / 80 / 20, 1 / 0.5 / 70 / 30, 1.5 / 0.75 / 80 / 20, 2 / 1 / 80 / 20, w / w) by spray drying a feedstock containing all components dissolved in a 1-propanol / HO cosolvent system (50 / 50, v / v) without added ammonium bicarbonate. The trehalose-based dry powder contained broken particles and exhibited crystalline leucine and amorphous trehalose. The trehalose-based dry powder exhibited good physical stability over a 3-month period. material and method 1.Material

[0175] Phosphate buffered saline: PBS, pH 7.4, Catalog No. 10010 (Life Technologies,) or equivalent

[0176] Sodium chloride: ACS reagent (JT Baker, catalog number 3628-05), or equivalent

[0177] Treprostinil palmityl, Formula II, supra

[0178] DSPE-PEG2000: N-(methylpolyoxyethyleneoxycarbonyl)-1,2-distearoyl-sn-glycero-3-phosphoethanolamine, sodium salt, SUNBRIGHT® DSPE-020CN (NOF, Tokyo, Japan), or equivalent

[0179] D-Lactose, monohydrate, (Sigma)

[0180] L-leucine, (Sigma)

[0181] Ammonium bicarbonate (Sigma)

[0182] Absolute ethanol (Fisher Sci)

[0183] 1-Propanol (Fisher Sci) 2. Equipment

[0184] Inert Loop Condenser B-295, Dehumidifier B-296, Two-Fluid Nozzle ID 0.7 mm, and a Buchi B-290 spray dryer equipped with a high-performance cyclone separator (Buchi)

[0185] SEM:Zeiss-Sigma FE-SEM(Germany)

[0186] XRD:(PANalytical, Netherlands)

[0187] DSC 250, TA Instruments, New Castle, DE, USA

[0188] Tapped density tester, JV 1000, (Copley Scientific, UK)

[0189] NGI: Next Generation Impactor (MSP Corporation, MN, USA)

[0190] PSD:RODOS / M, (Sympatec, Germany)

[0191] Karl Fischer titrator: Aquastar, AQV33, EMD.

[0192] DLS: Mobius®, Atlas, (Wyatt Technology, Santa Barbara, CA)

[0193] High performance liquid chromatograph: Waters Alliance Model 2695. HPLC software: Waters Empower™ 3

[0194] Magnetic Stirrer Plate 3. Preparation of a Dry Powder Formulation Containing Treprostinil Palmityl, DSPE-PEG2000, Trehalose, and Leucine in a Weight Ratio of 1:0.5:80:20 [Table 1] Preparation of stock solutions:

[0195] Treprostinil palmitate: 10 mg / mL in 1-propanol

[0196] DSPE-PEG2000: 10 mg / mL in 1-propanol

[0197] Trehalose: 150 mg / mL in DI water

[0198] Leucine stock: 20mg / mL in DI water: Preparation of spray drying feed solution:

[0199] A spray-drying feed solution was prepared with a weight ratio of treprostinil palmityl to the total amount of trehalose and leucine of 1:100 according to Table 1. The final feed solution had 50% 1-propanol and 20.3 mg / mL solids (Table 2).

[0200] Trehalose and leucine stock solutions were first added to the aqueous phase, followed by 1-propanol and ultrasonication in a water bath. Treprostinil palmitate (Formula (II)) and DSPE-PEG2000 were then added separately. Stirring was applied throughout the entire process. [Table 2] Spray drying process of trehalose-based dry powder containing Treprostinil Palmityl / DSPE-PEG2000 / Treh / Leu (1 / 0.5 / 80 / 20):

[0201] Spray drying was carried out using a Buchi B-290 spray dryer under the following parameters: inlet temperature of 150°C, outlet temperature of 64°C, atomizing air flow of 414 L / h (36 mm, rotameter height), suction speed of 35% m 3 / hr and a feed rate of 7.5 mL / min (22%). Table 3 summarizes the process parameters. [Table 3] 4. Preparation of a Dry Powder Formulation Containing Treprostinil Palmityl, DSPE-PEG2000, Mannitol, and Leucine in a Weight Ratio of 1:0.5:80:20 [Table 4] Preparation of stock solutions:

[0202] Treprostinil palmitate: 10 mg / mL in 1-propanol

[0203] DSPE-PEG2000: 10 mg / mL in 1-propanol

[0204] Mannitol: 150 mg / mL in DI water

[0205] Leucine stock: 20 mg / mL in DI water Preparation of spray drying feed solution:

[0206] A spray-dried feed solution was prepared with a weight ratio of treprostinil palmityl to the total amount of mannitol and leucine of 1:100 according to Table 4. The final feed solution had 50% 1-propanol and 20.3 mg / mL solids (Table 5).

[0207] Mannitol and leucine stock solution were first added to the aqueous phase, followed by propanol, and sonicated in a water bath. Treprostinil palmitate and DSPE-PEG2000 were then added separately. Stirring was applied throughout the entire process. [Table 5] Spray drying process of mannitol-based dry powder consisting of Treprostinil Palmityl / DSPE-PEG2000 / Mannitol / Leu(1 / 0.5 / 80 / 20):

[0208] Spray drying was carried out using a Buchi B-290 spray dryer under the following parameters: inlet temperature of 135°C, outlet temperature of 60°C, atomizing air flow of 414 L / h (36 mm, rotameter height), suction speed of 35% m 3 / hr and a feed rate of 7.5 mL / min (22%). Table 6 summarizes the process parameters. [Table 6] 5. Characterization of the Dry Powder Surface Electron Microscopy (SEM)

[0209] Dry powder samples (as received) were applied to carbon tape and then coated with 20 nm of gold (Au) using an Electron Microscopy Sciences (EMS150T ES) sputter coater. Field-emission scanning electron microscopy (FE-SEM) was used to observe particle morphology using a Zeiss-Sigma FE-SEM (Germany) with a working voltage of 5 keV. The working distance was kept between 8 and 10 mm to obtain relatively high resolution. X-ray diffraction testing (XRD)

[0210] Dry powder samples (as received) were packed into zero-background sample holders and then subjected to X-ray diffraction (XRD) for structural characterization using a PANalytical (Netherlands) X'Pert diffractometer at 45 kV and 40 mA with Cu Kα (λ = 1.540598 Å) radiation at a scan rate of 0.04 radians (rad) per minute. The scan range was 4° to 40° (2θ), with a step time of 97.92 s and a step size of 0.0131°. Differential scanning calorimetry (DSC)

[0211] Approximately 5-10 mg of dry powder was weighed into a DSC sample pan, which was then hermetically sealed. The test was performed as follows: equilibration at 20°C, modulation temperature 0.32°C for 60 seconds, isothermal 1.0 minute, ramp 5°C / min to 180.0°C. Particle size distribution by laser diffraction (PSD)

[0212] Approximately 15-20 mg of dry powder was placed in the required glass tube. Sympatech-HOLOS-REDOS mode was used. Test parameters were as follows: [Table 1A] Moisture content test (Karl Fischer)

[0213] The moisture content in the dry powder was analyzed using a Karl Fischer. Approximately 30 mg of sample was weighed and transferred to the titration vessel. The equipment, materials and operating parameters used were as described below: Material / equipment: (1) Titrator: Aquastar AQV33 Karl Fischer titrator equipped with a 5 mL burette with associated balance (2) Balance: An analytical balance capable of measuring up to four decimal places and having an interface that can be connected to an Aquastar titrator. (3) Water Standard 1% NIST (4) Dessicant 100% specified, or molecular sieve, type 4A, 1 / 16 pellets (5) Lint-free cloths and Kimwipes (6) Weighing boat (7) 3mL syringe solution: (1)Titrant: Aquastar CombiTitrant 2 (2) Solvent: 60 / 40 methanol / formamide Equipment parameters and conditions: (1) Drift: <50 μg / min (2) Stirring speed: 40% (3) Mixing time: 300 seconds (4) End: Relative Drift Bulk and tap density

[0214] The density test was carried out by a tap density tester, JV 1000 (Coply Scientific, UK). The following procedure was followed: clean the glass tube and dry it with compressed air; weigh the glass tube and record it as W1; transfer the dry powder into the glass tube, mark the height as A, and record the weight as W2; seal the top with parafilm; place the glass tube in a 5 mL graduated cylinder and tap for 10 minutes; mark the height after tapping as B; remove the powder from the tube, clean it, and dry it with compressed air; weigh the glass tube and record it as W3; add water to the level of B and record the weight as W5; add water to the level of A and record the weight as W4 (assuming the density of water is equal to 1 g / mL). [Table 1B] Aerodynamic particle size distribution (APSD) using NGI

[0215] Approximately 20 mg of powder loaded into size 3 Vcaps HPMC capsules was dispersed by a commercially available inhaler (Plastiape RS01) into a next-generation cascade impactor (NGI) (Copley Scientific, UK) operated at a volumetric flow rate of 60 L / min and actuated for 4 seconds. The drug content collected at each stage from the NGI instrument was assessed by HPLC-MS. The fine particle fraction (FPF) was defined as the drug mass (<5 μm) deposited in the NGI divided by the emitted dose. HPLC assay

[0216] Treprostinil (TRE) and treprostinil palmityl concentrations were determined using a Waters Alliance Model 2695 equipped with a PDA detector (Waters 2996) and a corona charged particle detector (Thermo Fisher Scientific). Column: ACE 3 C8 HPLC column 4.6 x 50 (Mac-Mod Analytical, Cat. No. ACE1120546) Column temperature: 25℃ Mobile phase A: 25% acetonitrile, 25% methanol, 50% water, 0.1% formic acid, 0.01% triethylamine Mobile phase B: 50% acetonitrile, 50% methanol, 0.1% formic acid, 0.01% triethylamine Flow rate: 1mL / min Gradient for measuring TRE: Injection volume: 50 μL UV wavelength: 270±2.4nm Samples and standards were dissolved in 33% acetonitrile, 33% methanol, and 33% water. Calibration is performed using the power function Log(area) = A + B * Approximated by Log(concentration). Retention time TRE approximately 1.8 minutes, C16TR approximately 7.6 minutes Total recording time: 9 minutes result 1. Batch of Mannitol-Based Treprostinil Palmitate Dry Powder

[0217] Various batches of mannitol-based treprostinil palmityl dry powder were prepared by spray drying. In these batches, the amount of treprostinil palmityl in the dry powder varied from 1 to 5% (weight ratio, w / w), while the ratio of treprostinil palmityl to DSPE-PEG2000 was maintained at 2:1. The leucine content ranged from 0 to 30% (w / w) of the dry powder. The effect of ammonium bicarbonate was also investigated. During the spray-drying process, the inlet temperature was varied from 120 to 150°C. Table 7A shows the composition and inlet temperature for various batches of mannitol-based treprostinil palmityl dry powder. For each batch, the amounts of treprostinil palmityl, DSPE-PEG2000, mannitol, and leucine are listed by weight. The amounts of treprostinil palmityl and leucine are also listed in their approximate weight percentages, expressed by their ratio by weight. Table 7B shows the target weight percentages of treprostinil palmityl, DSPE-PEG2000, mannitol, and leucine in each batch, calculated based on weight ratios. [Table 7A] [Table 7B] 1.1. Effect of leucine content on spray drying recovery

[0218] The effect of leucine on the properties of mannitol-based treprostinil palmitate dry powder was evaluated. Four leucine loadings were evaluated: 0%, 10%, 20%, and 30%. To compensate for the reduced leucine content, an increased mannitol loading was applied. [Table 8]

[0219] Spray drying recoveries (%) from batches containing no leucine were low. Recovery increased significantly with increasing leucine levels to 10% and 20%. Recovery then declined slightly with further increases in leucine content to 30% (Figure 1). The batch containing 20% ​​leucine had the highest powder density (Table 8). 1.2. Effect of leucine content (30%, 20%, 10% and 0%) on powder morphology.

[0220] SEM was performed to examine the effect of leucine content on the powder surface (Figures 2A-2D). Varying the leucine content resulted in various weight ratios of mannitol to leucine: 70 / 30, 80 / 20, 90 / 10, and 100 / 0.

[0221] Treprostinil palmitate dry powder samples were prepared with various weight ratios of mannitol to leucine (70 / 30, 80 / 20, 90 / 10, and 100 / 0). SEM data showed that increasing the leucine content from 20% to 30% resulted in a powder with a grainy surface (Figures 2A and 2B). Dry powders without leucine were crushed after spray drying, with low recovery (Figure 2D). In further studies, 20% leucine was used. 1.3. Effect of leucine content on PSD (tested by laser diffraction)

[0222] Three batches of mannitol-based dry powder containing 10, 20 and 30% leucine (w / w) were investigated by laser diffraction. The batch information is shown in Table 9. [Table 9]

[0223] The formulation containing 20% ​​leucine had the smallest particle size (D50), as shown in Figure 3. The formulation containing 20% ​​leucine will be used in further studies of this example. 1.4.Effect of various doses of treprostinil palmitate on MMAD

[0224] Varying amounts of treprostinil palmityl were added to mannitol-based dry powder formulations to investigate their effect on the properties of the dry powder. Five batches of dry powder were prepared with treprostinil palmityl ranging from 1% to 5% and a treprostinil palmityl / DSPE-PEG2000 weight ratio of 2:1, as shown in Table 10. [Table 10]

[0225] The MMAD values ​​were constant when treprostinil palmityl was present at 1-2% in the dry powder and increased significantly when treprostinil palmityl was increased to 3-5% (Figure 4). 1.5. Effect of spray drying inlet temperatures of 150°C, 135°C and 120°C on powder morphology

[0226] Mannitol-based treprostinil palmitate dry powders with the same component ratios were produced at different inlet temperatures, i.e., 150°C, 135°C, and 120°C (Table 11). The effect of inlet temperature on the morphology of the dried powder was first investigated. SEM revealed that there was less surface destruction in the dried powder samples spray-dried at the lower inlet temperatures of 135°C and 120°C (Figures 5A-5C). Since no significant difference was observed between 135°C and 120°C (Figures 5B and 5C), the inlet temperature of 135°C was used in further investigations. [Table 11] 1.6. Effect of Ammonium Bicarbonate (ABC) in Feedstock on the Morphology of Mannitol-Based Treprostinil Palmityl Dry Powder

[0227] The effect of ABC on the morphology of mannitol-based treprostinil palmitate dry powder was examined by adding or not adding ABC to the feed stock when preparing the dry powder (Table 12). No changes in the powder surface were observed with the addition of ABC (Figures 6A and 6B). Therefore, ABC would not be applicable to mannitol-based treprostinil palmitate dry powder. [Table 12] 1.7. Physicochemical Properties of Mannitol-Based Treprostinil Palmitate Dry Powder

[0228] A mannitol-based treprostinil palmitate dry powder was prepared by spray-drying a solution containing all components. It was expected that the mannitol-based dry powder would exhibit some amorphous characteristics, such as a Tg in DSC testing and a broad peak in powder X-ray diffraction (XRD) testing. Figures 7A and 7B show the DSC and XRD data from batch SD-NNP-179, which contains 1% treprostinil palmitate and 20% leucine, respectively. No Tg was detected from this batch, and a sharp peak was observed in the powder XRD. These two characteristics were also observed in other batches, regardless of differences in composition and spray-drying conditions. 2. Batch of Trehalose-Based Treprostinil Palmityl Dry Powder

[0229] Various batches of trehalose-based treprostinil palmityl dry powder were produced using spray drying. Table 13A shows the batch compositions and inlet temperatures used in the spray drying process. For each batch, the amounts of treprostinil palmityl, DSPE-PEG2000, trehalose, and leucine are listed by weight. Table 13B shows the target weight percentages of treprostinil palmityl, DSPE-PEG2000, trehalose, and leucine for each batch, calculated based on the weight ratio. These batches varied in treprostinil palmityl content from 1 to 2% (weight ratio, w / w), while the ratio of treprostinil palmityl to DSPE-PEG2000 was kept the same at 2:1. The leucine content in these batches was 20% or 30% (w / w). During the spray drying process, the inlet temperature varied from 110°C to 155°C. [Table 13A] [Table 13B] 2.1. Effect of leucine content on powder morphology

[0230] Trehalose-based treprostinil palmitate dry powders containing two levels of leucine (20% and 30%) were prepared (Table 14). SEM data showed that increasing the leucine content from 20% to 30% resulted in a wrinkled powder surface (Figures 8A and 8B). 2.2. Effect of leucine content on powder aerosol performance

[0231] We added two levels of leucine, 20% and 30%, to trehalose-based treprostinil palmityl dry powder and compared their particle size (D50, laser diffraction) and MMAD (Table 14). [Table 14]

[0232] The data in Table 14 show that the dry powder containing 30% leucine had a larger geometric particle size (D50) and less deposition of powder in the throat and pre-separator compared to that containing 20% ​​leucine. The lower solubility of leucine may be the reason why leucine precipitates first. A higher amount of leucine would induce faster precipitation and create larger particles. However, there was no significant difference in MMAD. 2.3. Effect of treprostinil palmityl content on dry powder aerosol performance.

[0233] Varying amounts of treprostinil palmityl were added to the trehalose-based treprostinil palmityl dry powder to investigate their effects on the properties of the dry powder. As shown in Table 15, four batches of dry powder were prepared with treprostinil palmityl contents ranging from 1% to 2%, and the weight ratio of treprostinil palmityl / DSPE-PEG2000 was fixed at 2:1. [Table 15]

[0234] Inclusion of more treprostinil palmityl in the dry powder increased MMAD and throat and pre-separator deposition, but decreased the fine particle fraction (FPF) (Table 15). 2.4. Effect of spray drying inlet temperature on powder morphology

[0235] The inlet temperature in the spray drying process was expected to affect the properties of the dried powder, such as moisture content, particle size, and powder morphology. Two inlet temperatures, 130°C and 150°C, were investigated using the batches of trehalose-based vehicle dried powder shown in Table 16. [Table 16]

[0236] SEM revealed that the high inlet temperature of 150 °C caused the powder to break down (Figures 9A-9C). However, to prevent high moisture in the final dry powder, 150 °C will be used for the trehalose-based dry powder containing treprostinil palmityl. 2.5. Physicochemical properties of trehalose-based dry powders

[0237] Similar to the mannitol-based treprostinil palmityl dry powder, the trehalose-based treprostinil palmityl dry powder was produced by spray drying a solution containing all of the components. The dry powder was expected to exhibit some amorphous characteristics, such as a Tg in DSC and a broad peak in powder X-ray diffraction (XRD).

[0238] The trehalose-based treprostinil palmityl dry powder batches listed in Table 17 were subjected to DSC and XRD. DSC tests observed Tg values ​​ranging from 64°C to 80°C for all batches. The Tg may increase if the powder undergoes a second drying cycle by overnight freeze-drying, as observed for batches SD-NNP-162 and SD-NNP-163, due to a decrease in moisture content in the dried powder (Figure 10A). Compared to the XRD from the mannitol-based dry powder, the trehalose-based dry powder exhibited less sharp peaks (Figure 10B), which was attributed to the amorphous state of trehalose. All of these batches exhibited similar XRD data despite differences in the weight ratios of the components and spray-drying conditions. Table 17 shows further characterization of the dry powder batches, including deposition on the MMAD, FPF, and throat + pre-separator. [Table 17] 3. Dynamic Vapor Sorption (DVS) Profiles of Mannitol- and Trehalose-Based Dry Powders

[0239] Moisture may be introduced into dry powder formulations during spray drying, packaging, and storage, which can destabilize the product and cause packaging problems. During spray drying, moisture in the dry powder can be reduced by secondary drying. However, during packaging, the powder may absorb moisture if exposed to the environment, even under humidity-controlled conditions. Moisture absorption was examined for mannitol- and trehalose-based treprostinil palmitate dry powders.

[0240] As shown in Figure 11, the mannitol-based treprostinil palmityl dry powder can absorb up to 0.3% moisture as the RH% increases from 0 to 40%. Compared to the lactose-based treprostinil palmityl dry powder, the mannitol-based dry powder absorbs much less moisture, likely because the mannitol-based dry powder contains crystalline mannitol and leucine, both of which are stable in non-hydrated forms.

[0241] The moisture absorption profiles for the trehalose-based dry powders are shown in Figure 12 (powder containing 20% ​​leucine) and Figure 13 (powder containing 30% leucine). The weight change of the trehalose-based dry powders peaked at an RH% of 50%. Thereafter, moisture uptake declined as the physical form of trehalose changed from amorphous to crystalline. Powder formulations containing 20% ​​and 30% leucine had similar moisture uptake data, although the latter formulation absorbed less than 1%. However, the difference in the desorption process was significant. The powder containing 30% leucine exhibited a higher moisture retention at an RH% of 0%. 4. Stability Study on Mannitol-Based Treprostinil Palmitate Dry Powder

[0242] Stability studies on mannitol-based treprostinil palmityl dry powder were conducted at 40°C for 3 months without humidity control. Five batches of mannitol-based treprostinil palmityl dry powder containing 1, 1.5, 2, 3, and 5% treprostinil palmityl were investigated (Table 18). NGI testing generally showed that the MMAD of the dry powder increased sharply at 2 months, then returned to levels similar to those at 1 month (Figure 14). SEM data showed that small, densely packed fibers were enriched on the powder surface (Figures 15A, 15B, 16A, 16B, 17A, 17B, 18A, and 18B). [Table 18]

[0243] Table 19 details the stability data for batches of mannitol-based treprostinil palmityl dry powder. Significant changes in MMAD and FPF were observed for all batches of mannitol-based dry powder containing 20% ​​leucine. Furthermore, the initial MMAD was lower for dry powders containing 1, 1.5, and 2% treprostinil palmityl compared to those containing 3 and 5% treprostinil palmityl. [Table 19] 5. Stability studies on trehalose-based dry powders

[0244] Stability studies on trehalose-based dry powder formulations containing 20% ​​or 30% leucine and treprostinil palmitate ranging from 1% to 2% were also conducted under the same conditions as for the mannitol-based dry powder formulations. No significant changes were observed over the 3.5-month study period (Table 20 and Figures 21A, 21B, 22A, 22B, 23A, 23B, 24A, and 24B). [Table 20]

[0245] Table 21 details the stability data for the batches of trehalose-based treprostinil palmityl dry powder. The MMAD increased significantly for batches SD-NNP-162 and SD-NNP-188 (Table 21 and Figure 19). The FPF value decreased most significantly for batch SD-NNP-162 (Figure 20). Batch SD-NNP-163 (treprostinil palmityl 1%, leucine 30%) showed the lowest and most stable MMAD and the highest and most stable FPF. [Table 21] Summary of findings for mannitol-based treprostinil palmitate dry powder formulations

[0246] In mannitol-based treprostinil palmitate dry powders, the addition of leucine resulted in high spray drying recoveries. Mannitol-based dry powders containing 20% ​​leucine resulted in spherical particle shape and a low geometric diameter (D50=2.75 μm).

[0247] In the spray-drying process, varying the inlet temperature from 120 to 150 °C did not affect the morphology of the mannitol-based treprostinil palmitate dry powder. The inlet temperature was set at 135 °C because the moisture content from the dry powder produced at 135 °C was approximately 1%.

[0248] No glass transition was detected in the mannitol-based treprostinil palmitic dry powder in the DSC test, which supported the X-ray diffraction (XRD) results indicating a crystalline material. Furthermore, the spray-dried mannitol-based treprostinil palmitic dry powder was not very hygroscopic, exhibiting a hygroscopicity of less than 1% at 90% RH. It only absorbed 100% of the water.

[0249] In a stability study of mannitol-based treprostinil palmitate dry powder, MMAD increased sharply at 2 months for formulations containing 1-2% treprostinil palmitate and at 1 month for formulations containing higher treprostinil palmitate contents. MMAD decreased at subsequent time points. All formulations exhibited fibers on the powder surface after storage. Summary of findings regarding trehalose-based treprostinil palmitate dry powder formulations

[0250] The trehalose-based treprostinil palmityl dry powder containing 30% leucine had reduced wrinkled surface and deposition of powder on the throat and pre-separator compared to that containing 20% ​​leucine, but there was no significant difference in MMAD between the two.

[0251] The inlet temperature in the spray drying process was chosen to be 150°C to achieve a lower moisture content in the final dried powder.

[0252] A glass transition temperature (Tg) ranging from 64 to 80 °C was observed, indicating the amorphous state of trehalose in the dry powder. The trehalose-based treprostinil palmitate dry powder showed higher water absorption compared to the mannitol-based treprostinil palmitate dry powder.

[0253] In stability studies, most of the trehalose-based treprostinil palmitate dry powders tested did not exhibit significant changes in FPF. All formulations exhibited hair-like crystals on the powder surface after storage.

[0254] In summary, the data in this example demonstrate that treprostinil palmityl content ranging up to 2 wt% did not affect the physical properties of the treprostinil palmityl dry powder. At 3 and 5 wt% treprostinil palmityl, an increase in the initial MMAD of the mannitol-based powder was observed. Leucine content was found to be important for the aerosol properties of the dry powder. Example 2 Fabrication, Encapsulation, and Characterization of Inhalable Mannitol- and Trehalose-Based Treprostinil Palmityl Dry Powder Formulations

[0255] This example describes the preparation of four treprostinil palmityl dry powder formulations, Formulations A, B, C, and D, by spray drying and encapsulation. Formulations A and D are mannitol-based, and their compositions, both by weight and at target weight percentages calculated based on the weight ratios, are shown in Table 22. Formulations B and C are trehalose-based, and their compositions, both by weight and at target weight percentages calculated based on the weight ratios, are shown in Table 23. This example also describes the characterization of Formulations A-D with respect to particle size, morphology, water content, solvent content, physical state, water vapor sorption profile, thermal properties, and weight loss as a function of temperature. [Table 22] [Table 23] 1. Preparation of Formulations A, B, C, and D by Spray Drying

[0256] Approximately 55 grams of in-process solids were used each to produce treprostinil palmityl dry powder formulations A, B, C, and D using a BLD-200 spray dryer. Between each condition, a blank solvent solution was sprayed to ensure the previous formulation had cleared from the solution lines. No additional spray dryer cleaning was performed between conditions.

[0257] Each of the four formulations was prepared as a separate solution. The solutions were prepared at room temperature without protection from light. For the preparation of each solution, the following steps were performed: 1. Leucine was dissolved in deionized water. 2. Sugar (mannitol or trehalose) was dissolved in deionized water. 3. The aqueous solution was filtered through a 0.2 μm PVDF membrane. 4. DSPE-PEG2000 was dissolved in 1-propanol. 5. Treprostinil palmityl was dissolved in 1-propanol. 6. The organic solution was added to the stirred aqueous solution.

[0258] The spray-dried formulations and process conditions are listed in Table 24. Manufacturing yields ranged from 54 to 80% by weight. Packaging of the bulk dry powder for each formulation was performed in a dry glove box. [Table 24] 2. Powder encapsulation

[0259] The dry powder formulations were encapsulated using an Excelodose 600S and filled into 50-51 capsules per formulation. The preferred relative humidity was less than 30%. An encapsulation summary is shown in Table 25. For example, capsules were made from a typical batch of Formulation D (containing 1.50 wt% treprostinil palmityl, 0.75 wt% DSPE-PEG2000, 68.45 wt% mannitol, and 29.30 wt% leucine) by filling each capsule with 112.5 μg treprostinil palmityl, 56.2 μg DSPE-PEG2000, 5133.8 μg mannitol, and 2197.5 μg leucine. Other batches of Formulation D with wt% values ​​for each component independently varying by or within ±5% of the typical wt% values ​​displayed above were observed to have comparable properties and performance. The capsules were collected in a glass jar and heat sealed in a foil bag with 0.5 g of molecular sieve desiccant. [Table 25] 3. Analytical Characterization

[0260] Each of the four formulations was evaluated for particle size distribution, particle morphology, water content, residual solvent, physical state, moisture sorption, and thermal properties. The results are summarized in Table 26. [Table 26] 3.1. Particle size distribution

[0261] Because these formulations were targeted for respiratory delivery, the target particle size should have been less than 5 μm. Particle size distributions were measured by laser diffraction on a Malvern Mastersizer 22000 with a Sirocco 2000 dry powder dispersion unit. An initial pressure titration screening of all samples was performed for method development (n=1), and results were observed to be nearly identical across the three dispersion air pressures used (2.5, 3.0, and 3.5 bar) (Figure 25). Based on this initial screening, two additional replicates (n=2) were measured at a dispersion air pressure of 3.0 bar. Results were averaged with the distribution shown in Figure 26 and Table 27. The Fraunhofer approximation model was used for these measurements. A small sample tray was used with a 65% feed rate, a 10-second background measurement time, and a 30-second sample measurement time. Obscuration filtering allowed for data capture between 1 and 6%. [Table 27] 3.2.Particle morphology

[0262] The four formulations were imaged at 500, 1500, and 5000x magnifications, respectively, using a Hitachi SU3500 scanning electron microscope. Images taken at 5000x magnification are shown in Figure 27 (Formulation A), Figure 28 (Formulation B), Figure 29 (Formulation C), and Figure 30 (Formulation D). All formulations contained perfectly spherical and concave spherical particles with diameters of approximately 3 μm or less, consistent with the laser diffraction results. Formulation C appeared to be the most wrinkled, while Formulation A appeared to be the most "smooth." Surface roughness may improve aerosol performance. No significant crystalline surface formation or coalescence of particles was observed for any of the formulations. 3.3. Water content

[0263] Because these formulations were spray-dried from a solvent mixture containing water, the samples were analyzed for water content using a Metronome 874 Oven Sample Processor. Three blanks and three water standards were initially tested to determine system suitability before testing the samples. Twenty milligram samples (n = 3 replicates) were heated to 140°C at a heating rate of 2.5°C / min from a starting temperature of 50°C for each formulation. The water content for all formulations was less than 3% by weight, as shown in Table 28. The formulations containing trehalose (B and C) exhibited higher water content than those formulated with mannitol (A and D). The formulations containing higher leucine content (C and D) also exhibited higher water content. [Table 28] 3.4. Residual Solvents

[0264] The other component in the spray solvent was 1-propanol, so the residual amount of 1-propanol was determined using the headspace method on an Agilent 7890 gas chromatography system. All samples had less than 0.5% 1-propanol by weight (Table 29), with formulations containing more leucine (C and D) having lower residual 1-propanol levels, as did formulations containing mannitol (A and D). [Table 29] 3.5. Powder X-ray diffraction

[0265] The crystallinity of the samples was assessed using a Rigaku MiniFlex 600 powder X-ray diffractometer. Samples were prepared on 0.2 mm zero background holder (ZBH) discs and run on the instrument from 3 to 40 2θ. Formulations A and D exhibited crystalline mannitol (as well as a polymorphic mixture) and leucine, whereas formulations B and C exhibited crystalline leucine along with amorphous trehalose.

[0266] Components may exhibit different diffraction intensities than the raw material compared to the spray-dried formulation. Formulations containing mannitol appeared to have similar diffraction patterns. Formulations containing trehalose also appeared to have similar amorphous diffraction patterns. 3.6. Differential Scanning Calorimetry (DSC)

[0267] Thermal transitions can be used to predict formulation stability. Four formulations were scanned on a TA Instruments Q2000 differential scanning calorimeter. They were hermetically sealed and samples were equilibrated overnight in a dry environment (<5% RH) before being run on the instrument. A heating ramp rate of 2.5°C / min from 0 to 180°C was used, with modulation set at ±1.5°C / min. A thermal event at 64°C was observed for all samples, which may correspond to melting of treprostinil palmitate or DSPE-PEG2000.

[0268] Crystallization events, a positive indicator of thermal stability, were not observed in these samples. No glass transitions were detected for the mannitol-based formulations (A and D), supporting the powder X-ray diffraction (PXRD) results for crystalline material. Formulations A and D melted at 164°C, consistent with the melting temperature of mannitol. Formulations B and C exhibited a glass transition at 83°C, likely due to amorphous trehalose. Formulation B also had thermal events at 133°C and 158°C that were not observed in the other samples. 3.7.Thermogravimetric analysis (TGA)

[0269] Thermal decomposition data for the formulations was measured using a TA Instruments Discovery Thermogravimetric Analyzer. Samples were run from 0 to 300°C at a rate of 2.5°C / min. From 180°C onwards, the formulations began to decompose rapidly. A weight change was observed at approximately 100°C, corresponding to the water content. 3.8. Dynamic Water Vapor Adsorption

[0270] Water sorption and desorption profiles were measured on a Surface Measurement Systems DVS Advantage 1. Samples were run at 25°C from 0 to 90% RH in 10% RH step changes. All four formulations appeared to have a weight change event that began at approximately 50% or 60% RH, depending on the formulation. A second cycle was performed on the samples to assess the rate of water sorption after crystallization. None of these samples were observed to change during the second cycle, and most samples did not retain water during the final desorption step.

[0271] The adsorption results obtained from Formulation D display a change at higher humidity (approximately 70% RH) compared to the results obtained from Formulation A. A slight loss of mass was observed for Formulation D at approximately 50% RH compared to Formulation A, which appeared to continue to lose mass even with the adsorption of additional moisture from higher humidity.

[0272] The uptake rates for trehalose formulations indicate that it takes approximately 50-90 minutes (depending on the level of leucine content) to reach moisture equilibrium at 40% relative humidity. Those with lower leucine content uptake moisture faster than those with higher leucine content. 3.9. Aerosol Performance of Capsules of Formulations A, C, and D Assessed by Aerodynamic Particle Size Distribution (APSD) by NGI

[0273] Capsules of treprostinil palmitate dry powder formulations A, C, and D were stored at 25°C or 40°C for 1 to 3 months. There was no change in the appearance of the encapsulated dry powder, such as browning or obvious growth or hardness changes. The particle size distribution (PSD) of the dry powder formulations, measured by laser diffraction, was not affected after 3 months of storage at 25°C or 40°C.

[0274] Treprostinil palmityl dry powder formulations A, C, and D were encapsulated, and the capsules were stored at 40°C for 1, 2, or 3 months or at 25°C for 3 months. The fine particle dose (FPD) of the formulations from the stored capsules and the initial (T=0) FPD of these formulations were measured by NGI. Treprostinil palmityl dry powder formulations A, C, and D were also stored in bulk at 40°C or 25°C for 3 months, then filled into capsules and administered on the same day to determine FPD. The FPD results for formulations A, C, and D are shown in Figures 31, 32, and 33, respectively. These data indicate that formulation D had the least change in FPD (-3.7%) after storage in capsules at 25°C for 3 months. Furthermore, formulation D had a -5.2% change in FPD when stored in bulk at 25°C for 3 months, filled into capsules, and administered on the same day. Additionally, for each of Formulations A, C, and D, storage at 40°C did not appear to be predictive of long-term storage at 25°C on aerosol performance as measured by FPD. Based on these data, no conditioning or pretreatment of the powder or capsules is required to modify aerosol performance.

[0275] The excretion rates and total recovery rates of Formulations A, C, and D from the capsules were also determined and the results are shown in Table 30. [Table 30]

[0276] The above data indicate that Formulation D exhibited minimal changes in excretion rate after storage in capsules for 3 months at 25°C, and after storage in bulk at 25°C for 3 months followed by filling into capsules and dosing on the same day. In summary, based on the change in aerosol performance, Formulation D appears to be stable for at least 3 months at 25°C. Furthermore, stability data to date supports a shelf life of 6 months when stored at 2-8°C. Example 3 Determination of the aerosol performance of a trehalose-based treprostinil palmityl dry powder formulation under accelerated storage conditions and pulmonary pharmacokinetic profile in rats after inhalation of the dry powder formulation

[0277] A trehalose-based treprostinil palmityl dry powder composed of treprostinil palmityl, DSPE-PEG2000, trehalose (Treh), and leucine (Leu) in a weight ratio of 1:0.5:70:30 was produced by spray drying using a Buchi B-290 system as described in Example 1. For accelerated stability studies, the dry powder was stored in sealed glass vials at 40°C and uncontrolled ambient humidity. The aerosol performance of the powder was measured after 1.5, 2.5, and 3.5 months of storage. Methods and Materials 1. Dynamic Vapor Sorption (DVS) Studies

[0278] Moisture sorption curves were obtained using a dynamic vapor sorption (DVS) automated gravimetric sorption system (DVS Intrinsic1 Plus, Surface Measurement Systems, PA, USA). Approximately 20 mg of powder was loaded and subjected to adsorption / desorption isotherm cycling (0% relative humidity (RH) to 90% RH to 0% RH again, in 10% RH increments) at 25 °C. The change in powder mass (%) with respect to RH was determined and plotted. 2. DPI Device and Aerodynamic Particle Size Distribution (APSD) Testing

[0279] This study used an RS01 Mod.7 DPI device (High Resistance, code 239700002AA, Plastiape, Italy). A next-generation impactor (NGI) was used at 60 L / min to measure the mass median aerodynamic diameter (MMAD) of trehalose-based treprostinil palmitate dry powder.

[0280] Approximately 15 mg of treprostinil palmityl dry powder was loaded into size number 3 HPMC capsules (Qualicaps, Inc.). The capsules were loaded into a DPI device and actuated to characterize the aerosol particle size distribution (APSD). The amount of drug deposited on each impactor stage and filter was analyzed by high-performance liquid chromatography (HPLC). 3. Nasal inhalation

[0281] A dry powder disperser (Vilnius Aerosol Generator (VAG), CH Technologies, USA) was used to deliver treprostinil palmityl dry powder through a 12-port nasal inhalation chamber. Approximately 1 g of dry powder was loaded into the VAG. The VAG had a flow rate of 8 L / min at 1.0 V for a total of 20 minutes. The dry powder delivery system was described in Li et al., "Inhaled INS1009 Demonstrates This was described in detail in "Localized Pulmonary Vasodilation," European Respiratory Society (ERS) International Congress, 3-7 September 2016, London, United Kingdom, Abstract No: 853952 (poster PA2845). 4. PK Sample Collection and Analysis

[0282] Rat lung tissue was collected immediately after delivery (approximately 0.5 hours), and 6, 12, and 24 hours after drug administration. Lung tissue samples were analyzed for treprostinil palmityl and treprostinil (TRE) by LC-MS / MS. Results are reported in terms of "treprostinil palmityl equivalents" to account for postmortem hydrolysis of treprostinil palmityl. Treprostinil palmityl equivalents, ng / g = [treprostinil palmityl, ng / g] + [TRE, ng / g] *(MM Treprostinil Palmityl / MM TRE) MM: Molar mass result 1. Dynamic Vapor Sorption (DVS)

[0283] The dynamic water vapor sorption (DVS) of a treprostinil palmitate dry powder formulation is shown in Figure 34. When the dry powder was exposed to increases in RH up to 50%, the absorbed moisture increased from 0% to over 8% and was not fully reversible with desorption, remaining at or exceeding 5.5%. To keep the moisture content at or below approximately 4%, exposure to RH for this powder may be controlled to <30% during manufacturing. 2. Aerodynamic particle size distribution (APSD)

[0284] APSD data for treprostinil palmityl dry powder stored for 1.5 months (T=1.5M), 2.5 months (T=2.5M), and 3.5 months (T=3.5M) as well as the initial APSD (T=0) obtained with RS01 Mod. 7 DPI (well tolerated) at 60 L / min are shown in Figure 35 and Table 31. Distributions from all four time points were comparable. [Table 31]

[0285] The fine particle fraction (FPF), MMAD, and geometric standard deviation (GSD) values ​​of the aerosolized dry powder after storage at 40°C and uncontrolled ambient humidity for up to 3.5 months are summarized in Table 32. FPF values ​​ranged from 54.6% to 58.7%. MMAD values ​​ranged from 1.25 μm to 1.44 μm. GSD values ​​ranged from 3.5 to 4.1. [Table 32] 3. Rat lung PK results

[0286] The concentrations of treprostinil palmityl equivalents (treprostinil palmityl and treprostinil) in the lungs after inhalation of nebulized INS1009 or aerosolized treprostinil palmityl dry powder are summarized in Table 33 and Figure 36. Nebulized INS1009 contained treprostinil palmityl and the excipients squalane and DSPE-PEG2000 in a molar ratio of 45:45:10, suspended in PBS (Corboz et al., "Preclinical (See, "Pharmacology and Pharmacokinetics of Inhaled Hexadecyl-Treprostinil (C16TR), a Pulmonary Vasodilator Prodrug," J Pharmacol Exp Ther. 363:348-357 (2017)). Both the acetaminophen and palmityl dry powders had similar pulmonary PK profiles after inhalation in rats. A statistical comparison of these two profiles is summarized in Table 34 and demonstrates comparable slopes for both profiles. [Table 33] [Table 34]

[0287] In summary, this study demonstrates that the aerosol particle size distribution of the trehalose-based treprostinil palmityl dry powder formulation was reproducible for up to 3.5 months of storage in closed vials at 40°C and uncontrolled RH, and that the pulmonary PK profile of the treprostinil palmityl dry powder formulation was comparable to that of nebulized INS1009. Example 4 Pharmacokinetic evaluation of mannitol- and trehalose-based treprostinil palmitate dry powder formulations in rats

[0288] This study evaluated the pulmonary and plasma pharmacokinetics (PK) of two different treprostinil palmityl dry powder formulations containing mannitol (i.e., Formulation D described in Example 2) or trehalose (i.e., Formulation C described in Example 2) as their primary excipient. The compositions of Formulations D and C expressed as weight ratios, the target weight percentages calculated based on the weight ratios, and the actual weight percentages of the components from a typical batch of each formulation are summarized in Tables 35A and 35B, respectively. [Table 35A] [Table 35B] method

[0289] Male Sprague-Dawley rats (300-400 g) were exposed to aerosols of dry powder Formulation D or Formulation C using a 12-port nasal inhalation chamber and a Vilinius Aerosol Generator (VAG). Rats were placed in a restraining tube attached to the nasal port of the chamber. Two separate studies with Formulation D and Formulation C were conducted, each using nine rats and one port for collecting the aerosolized drug on a filter. An abbreviated study with Formulation D was also conducted, using six rats and one port for collecting the drug amount deposited on the filter.

[0290] For drug exposure, 1 gram of material was placed in the VAG. The output from the VAG was established at 1 volt (V), and the drug was dispersed and delivered to the nasal chamber with a bias air volume of 8 L / min. Air entered the bottom of the nasal chamber and exited through the top. The exposure period was set to 20 min. A vacuum source (0.5 L / min) was attached to the filter, and a drug sampling time of 5 min was established. The amount of treprostinil palmitate deposited on the filter was measured by HPLC and a charged aerosol detector (CAD). The delivered drug dose was calculated from the inhaled drug concentration (from the filter data), exposure period, minute ventilation, and body weight with a deposition factor of 1.0 used for drug delivered to the nose and 0.1 used for drug delivered to the lungs. Doses are expressed per kg of body weight.

[0291] In the two main studies for Formulations D and C, blood samples were collected at 0.5, 2, 4, 6, 12, and 24 hours after drug exposure. The blood samples were centrifuged to extract plasma. In these studies, respiratory tissues from the larynx, trachea, carina + bronchi, and lungs were collected at 0.5, 6, 12, and 24 hours after drug exposure. In the abbreviated study for Formulation D, blood samples were obtained at 0.5, 2, 4, 12, and 24 hours, and respiratory tissues were collected at 0.5 and 24 hours after drug exposure. Concentrations of treprostinil (TRE) in plasma and treprostinil palmityl and TRE in respiratory tissue were measured by LC-MS / MS. For all respiratory tissues, the concentration of treprostinil palmityl (C16TR) equivalents (C16TReq) was derived from the concentrations of treprostinil palmityl and TRE (C16TReq = treprostinil palmityl + [TRE × 615 / 390.5 ng / g], where the molar weights of treprostinil palmityl and TRE are 615 and 390.5, respectively). The data for treprostinil palmityl equivalents in lung and TRE in plasma were used to derive the following PK parameters: lambda z (terminal elimination rate constant), T (terminal elimination rate constant), and T (terminal elimination rate constant) using the PK Solver program in Microsoft Excel. 1 / 2 , T max , Cmax and AUC 0~inf . result

[0292] Exposure of rats to Formulation D and Formulation C resulted in a slightly higher total dose delivered per kg of body weight of 78 μg for Formulation D compared to 58 μg for Formulation C. The concentration of treprostinil palmityl equivalents in the lung measured 0.5 hours after exposure was also slightly higher for Formulation D, averaging 3072 ng / g compared to 1711 ng / g for Formulation C. 1. Treprostinil palmityl, TRE and treprostinil palmityl equivalents for the lungs and upper respiratory tract

[0293] For both Formulation D and Formulation C, the highest concentrations of treprostinil palmityl, TRE, and treprostinil palmityl equivalents in the lungs occurred 0.5 hours after exposure. Over 24 hours, there was a gradual monoexponential decrease in treprostinil palmityl and TRE, with both treprostinil palmityl and TRE concentrations consistently higher in Formulation D at all time points. These results are illustrated for treprostinil palmityl equivalents (C16TReq) in Figure 37, which shows a gradual decrease in treprostinil palmityl equivalent concentrations in the lungs over 24 hours, but with consistently higher treprostinil palmityl equivalent concentrations in Formulation D compared to Formulation C. Figure 38 shows the concentration of treprostinil palmityl (C16TR) in the lungs after inhalation of Formulation D or Formulation C. Figure 39 shows the concentration of TRE in the lungs after inhalation of Formulation D or Formulation C.

[0294] Comparison of derived PK parameters for treprostinil palmitate equivalents in the lungs: lambda z, T 1 / 2 and T max No major differences were found between formulations D and C with respect to treprostinil palmitate equivalents in the lungs, but formulation D had a significantly higher C max is 79% higher, and AUC 0~24h was 130% higher (Table 36). [Table 36]

[0295] Regarding deposition of treprostinil palmitate in the larynx, trachea, carina + bronchi, and lungs, the majority (>97 percent) of treprostinil palmitate was deposited in the lungs. This was observed for both Formulation D and Formulation C. Nasal tissue was not collected in this study. 2. Plasma TRE

[0296] The highest concentrations of TRE in plasma were observed at 0.5 hours and declined slowly over 24 hours for Formulation D and more rapidly for Formulation C. Plasma TRE concentrations were below detection levels by 24 hours for Formulation C (Figure 40).

[0297] Comparison of PK parameters derived for plasma TRE showed that formulation D had a 34% lower lambda z and a 34% lower T 1 / 2 The C of plasma TRE was found to be 51% higher in Formulation D compared to Formulation C (Table 37). max is 10% higher, and AUC 0~t was 51% higher (Table 37). [Table 37]

[0298] In summary, inhalation of treprostinil palmityl dry powder formulations D and C resulted in lower plasma C levels of treprostinil compared with inhalation of treprostinil. maxThis resulted in high blood pressure values ​​and sustained levels of treprostinil in plasma and lungs. Comparison of the PK profiles in rats between Formulation D and Formulation C delivered under similar conditions, i.e., VAG output at 1V for 20 minutes, resulted in a 34% higher delivered dose for Formulation D, which was 78 μg / kg compared to 58 μg / kg for Formulation C. Treprostinil palmityl, TRE, and treprostinil palmityl equivalent concentrations in the lung were consistently higher for Formulation D, likely due to the higher delivered dose for Formulation D, although both formulations demonstrated a moderate monoexponential decline over 24 hours. A similar trend was observed for plasma TRE concentrations, which were higher for Formulation D and declined slowly over 24 hours for both formulations. Most of the TRE and treprostinil palmityl exposure occurred in the lungs, with less than 3 percent deposited in the larynx, trachea, and upper respiratory regions of the carina plus bronchi.

[0299] These results for Formulations D and C demonstrate similar PK profiles to those previously observed with nebulized INS1009, which exhibited the highest concentrations of treprostinil palmityl equivalents in the lung and TRE in plasma at 30 minutes, with a gradual monoexponential decline over 24 hours. However, there was no significant difference in the C of treprostinil palmityl equivalents in the lung:TRE in plasma between one treprostinil palmityl dry powder formulation and the other nebulized INS1009. max There appears to be a significant difference in the ratio. Typical lung treprostinil palmityl equivalents: plasma treprostinil C for nebulized INS1009 max The ratio is approximately 800, while the ratio for treprostinil palmitate dry powder formulations ranges from approximately 1,600 to 13,000. See Corboz et al., J Pharmacol Exp Ther 363: 1-10 (2017), the contents of which are incorporated herein by reference in their entirety. Pulmonary vasodilators are more strongly related to the local activity of TREs in the lung and less related to the level of TREs in plasma (see Chapman RW et al., Pulm. Pharmacol. Ther. 49:104-111 (2018), the contents of which are incorporated herein by reference in their entirety), and the pulmonary treprostinil palmityl equivalents:C of TREs in plasma max The unexpected difference in ratios indicates that administration of the treprostinil palmityl dry powder formulation beneficially results in lower systemic exposure to TRE, thus minimizing potential systemic adverse events such as systemic hypotension. Example 5 Evaluating the efficacy of mannitol- and trehalose-based treprostinil palmityl dry powder formulations in rats undergoing remotely monitored hypoxia

[0300] This example describes the in vivo efficacy evaluation of two different treprostinil palmityl dry powder formulations: mannitol-based Formulation D and trehalose-based Formulation C, as described in Examples 2 and 4 (Tables 35A and 35B). Efficacy was determined in rats prepared with a telemetry probe implanted in the right ventricle to measure inhibition of increases in right ventricular pulse pressure (RVPP) induced by exposure to an inhaled hypoxic gas mixture. method

[0301] Experiments were performed in male Sprague-Dawley rats with telemetry probes implanted in the right ventricle and descending aorta to measure RVPP and mean systemic arterial blood pressure (mSAP). These cardiovascular parameters were measured while breathing normoxic air (21% O2 / balance N2), followed by a 10-minute exposure to hypoxic air (10% O2 / balance N2), and then returning to normoxic air. In each experiment, the increase in RVPP due to hypoxia (ΔRVPP due to hypoxia) was measured before drug exposure and 1, 6, 12, and 24 hours after exposure to inhaled treprostinil palmitate dry powder formulation D or formulation C. Drug formulations were delivered using a Vilinius Aerosol Generator (VAG) at 1 volt (V) output into a 12-port nasal inhalation chamber for 20 minutes. A bias flow of 8 L / min dispersed the aerosol from the VAG and delivered it to the base of the nasal inhalation chamber. The filter was connected to one of the nose ports and subjected to a vacuum flow of 0.5 L / min for 5 minutes. The amount of treprostinil palmityl deposited on the filter was measured by LC-MS / MS. Rat plasma and respiratory tissue samples were analyzed for treprostinil palmityl and / or TRE concentrations. result

[0302] Exposing rats to inhaled hypoxia increased RVPP by 10–13 mmHg relative to normoxic values. At the end of the hypoxic challenge, RVPP immediately decreased within minutes and returned to prehypoxic values ​​within 10 minutes. At various time points up to 24 h after drug exposure, the effects of the drug were determined by comparing the ΔRVPP resulting from hypoxia with the sum of two to three determinations obtained before drug exposure.

[0303] The experimental results are shown in Figure 41. In Figure 41, values ​​are mean ± SEM (n = 6-8 rats for Formulation D and 4 rats for Formulation C). Day -1 represents the baseline value before exposure to the drug, and day 0 represents the value after exposure to the drug. ΔRVPP represents the increase in right ventricular pulse pressure. *" indicates P<0.05 compared to the summed values ​​(1, 6, and 12 hours) before drug exposure on day -1. Results indicate that exposure to Formulation D reduced ΔRVPP due to hypoxia, with statistically significant (P<0.05) inhibition observed at 1, 6, 12, and 24 hours. Similar results were obtained for Formulation C, with statistically significant (P<0.05) inhibition observed at 1, 6, 12, and 24 hours. By 24 hours after treatment with Formulations D and C, RVPP tended to return to the baseline values ​​observed before drug exposure. In contrast, exposure to an inhaled mannitol vehicle (containing a target weight percent of mannitol of 69.48 wt%, a target weight percent of leucine of 29.78 wt%, and a target weight percent of DSPE-PEG2000 of 0.74 wt%) did not inhibit the ΔRVPP response to hypoxia at 1, 6, 12, and 24 hours after administration (data not shown). Based on the concentration of inhaled drug, duration of exposure, body weight, minute ventilation, and a deposition ratio of 1.0, the delivered dose of Formulation D was 78 μg / kg body weight (resulting in a lung treprostinil palmityl equivalent concentration of 3072 ng / g), and the delivered dose of Formulation C was 58 μg / kg body weight (resulting in a lung treprostinil palmityl equivalent concentration of 1711 ng / g). See Alexander DJ et al., Inhal. Toxicol. 20:1179-1189 (2008), the contents of which are incorporated herein by reference in their entirety.

[0304] In summary, efficacy assessments in hypoxic telemetry rats demonstrate that inhaled treprostinil palmityl dry powder formulations C and D inhibited the increase in RVPP up to 24 hours after drug exposure. By 24 hours, the RVPP response to hypoxia tended to return to baseline values ​​observed before drug exposure. In comparison, nebulized INS1009, delivered at a dose of 76 μg / kg, inhibited the hypoxia-induced increase in RVPP for up to 12 hours and returned to baseline values ​​by 24 hours. Higher doses of inhaled treprostinil (215 μg / kg) inhibited the hypoxia-induced increase in RVPP for 2 hours, while lower inhaled doses (15, 53, or 110 μg / kg) inhibited it for 1 hour. These results demonstrate the prolonged inhibition of hypoxia-induced increases in RVPP by treprostinil palmityl dry powder formulations in telemetry rats. Example 6 Evaluation of mannitol- and trehalose-based treprostinil palmityl dry powder formulations on cough and ventilation in guinea pigs

[0305] This example describes a study of the effects of mannitol-based treprostinil palmityl dry powder formulation D and trehalose-based treprostinil palmityl dry powder formulation C (described in Examples 2 and 4; see formulation compositions in Tables 35A and 35B) on changes in Penh, a dimensionless index of altered breathing patterns typically seen during coughing, altered ventilation, and bronchoconstriction, in conscious male guinea pigs. method

[0306] Experiments were performed on male Hartley guinea pigs. After 3 days of acclimation, the guinea pigs were placed in a whole-body plethysmograph to measure ventilation (tidal volume, respiratory rate, and minute ventilation), Penh, and cough using established techniques. Corboz et al., J Pharmacol Exp Ther 363: 1-10 (2017); Chong BTY et al., J. Pharmacol. The contents of each of which are incorporated herein by reference in their entirety. See Toxicol. Methods 39, 163-168 (1998); Lomask, Exp. and Toxicol. Pathol. 57, 13-20 (2006). Cough was measured from plethysmographic recordings showing a deep inhale followed by a deep exhale, and confirmed by manual observation, video recording, and cough sounds. Ventilation, Penh, and cough data were measured during a 15-minute baseline period before exposure to the dry powder aerosol. Test articles containing Formulations D, C, and their respective vehicles, i.e., mannitol vehicle (containing a target weight percent of mannitol of 69.48 wt%, a target weight percent of leucine of 29.78 wt%, and a target weight percent of DSPE-PEG2000 of 0.74 wt%), and trehalose vehicle (containing a target weight percent of trehalose of 69.48 wt%, a target weight percent of leucine of 29.78 wt%, and a target weight percent of DSPE-PEG2000 of 0.74 wt%), were then delivered as dry powders for 15 minutes, followed by an observation period of 120 minutes after the aerosolized compounds were administered. Air for aerosol delivery at all steps of the experiment was supplied by an air compressor. The typical humidity of the supplied air was measured to be approximately 30%. Ventilation, Penh, and cough were measured before, during, and after exposure to the test articles. Aerosolized test articles were generated using a Vilnius aerosol generator (VAG). The air flow rate from the VAG was set at 4.5 L / min to disperse the aerosol and was combined with 1 L / min of moist air (30% humidification) to facilitate aerosol delivery to the plethysmograph and minimize electrostatic adsorption problems. Therefore, the total air inflow was 5.5 L / min. The generator outputs from the VAG were 1, 0.75, and 0.5 volts. Each VAG output was applied for 15 minutes to deliver three different doses of drug, with larger doses delivered at higher voltages. A vacuum flow of 8 L / min was established at the bottom of the plethysmograph so that air and aerosol entered the top of the system and exited through the bottom.A separate vacuum source at 0.5 L / min was connected to a filter attached to a port on the plethysmograph to sample drug (treprostinil palmitate) concentrations. Filter sampling was maintained for the entire duration of the study, i.e., 135 min, but a 15-min exposure time was used to calculate the aerosol concentration of drug in the nose chamber and the total inhaled delivered drug dose. Filter samples were analyzed for treprostinil palmitate concentrations. At the end of the study, the guinea pigs were euthanized, and blood (plasma), lungs, trachea, larynx, and carinae + bronchi were collected to measure treprostinil palmitate and TRE concentrations in these samples. result

[0307] Exposure to Formulation D, Formulation C, or the mannitol and trehalose vehicle was well tolerated and did not result in any mortality.

[0308] Aerosolized Formulation D made at 1V and administered over 15 minutes (total inhaled delivered dose = 35.8 μg / kg body weight) caused coughing in four of six guinea pigs. The mean number of coughs for this exposure was 24 ± 12 coughs. At 0.75V and a 15-minute administration setting (total inhaled delivered dose = 12.8 μg / kg body weight), coughing was observed in three of four guinea pigs, with a mean number of coughs of 19 ± 7 coughs. At 0.5V and a 15-minute administration setting (total inhaled delivered dose = 2.3 μg / kg body weight), no coughing was observed in four of four guinea pigs. Aerosols of the mannitol vehicle made at 1V and administered over 15 minutes did not cause coughing in four of four guinea pigs (Table 38). There were no consistent changes in ventilation with Formulation D or the mannitol vehicle, and the slight increase in Penh observed with this drug did not reach significance compared to the mannitol vehicle.

[0309] Aerosolized Formulation C produced at 1 V and a 15-minute administration setting (total inhaled delivered dose = 10.2 μg per kg body weight) produced coughing in three of six guinea pigs, with a mean number of coughs of 10 ± 5 coughs. At administration settings of 0.75 V (total inhaled delivered dose = 4.7 μg per kg body weight) and 0.5 V (total inhaled delivered dose = 1.5 μg per kg body weight) and a 15-minute exposure, Formulation C did not produce coughing in four of four guinea pigs in either group. Trehalose vehicle administered at 1 V for 15 minutes did not produce coughing in four of four guinea pigs (Table 38). There were no consistent changes in ventilation or Penh with Formulation C or the trehalose vehicle.

[0310] The concentration of treprostinil palmityl equivalents in the lung increased as a function of inhaled drug dose for both Formulation D and Formulation C, with Formulation D having approximately three-fold higher levels of treprostinil palmityl equivalents in the lung compared to Formulation C (Table 38). Because most of the inhaled drug was deposited in the lung (data not shown), there was no difference between the two formulations in the percentage of drug deposition in the upper respiratory tissues of the larynx, trachea, and carina plus bronchi. Nasal tissue was not collected in this study. [Table 38]

[0311] Results from this study demonstrate that coughing was induced by both formulations, with threshold inhaled doses of 12.8 μg / kg for Formulation D and 10.2 μg / kg for Formulation C. These doses are 10 and 8 times higher than the threshold inhaled dose of TRE that elicits coughing in guinea pigs, which is 1.23 μg / kg. Following exposure to Formulation D or Formulation C, the first bout of coughing occurred between 17 and 35 minutes, which is later than the timing of coughing with nebulized TRE, which occurred within the first 10 minutes of exposure.

[0312] The concentration of treprostinil palmityl equivalents in the lung was approximately three-fold higher than in Formulation D (Table 38), and there was no difference between these two formulations in the percentage of drug deposited in the larynx, trachea, and upper airways of the carina and bronchi, as most of the drug was deposited in the lung (data not shown). The concentration of TRE in plasma was two to three-fold higher in Formulation D compared to Formulation C (Table 38). Example 7 Assessment of the efficacy of treprostinil palmityl dry powder formulation in the treatment of an 8-week sugen-hypoxia (SuHx)-induced pulmonary arterial hypertension rat model

[0313] The Sugen-hypoxia (SuHx)-induced PAH model in rats is a well-documented model. This model replicates most of the pathology seen in clinical disease. In this example, we evaluate the effects of treprostinil palmityl dry powder formulation D (described in Examples 2 and 4; see the formulation composition in Table 35A) and inhaled treprostinil (TRE), intravenous treprostinil (TRE), and oral selexipag on an 8-week SuHx-induced pulmonary arterial hypertension (PAH) model in rats, including pulmonary arterial pressure (PAP) and other cardiovascular parameters, right ventricular hypertrophy, lung and cardiac histopathology, and PAH-related biomarkers. Study Groups, Test Articles and Vehicles and Their Administration

[0314] Male Sprague-Dawley rats weighing 200-250 g were randomized into study groups by weight to ensure that the weight range was evenly distributed across the groups. Table 39 summarizes the study groups and the treatment each group received. [Table 39] 1. Group 1 - Normoxic control group

[0315] The normoxic control group (Group 1) receives a single subcutaneous injection of 100% DMSO at 2 mL / kg (vehicle for the sugen) and no treatment. 2. Group 2 - Vehicle treatment group for Treprostinil Palmityl dry powder formulation D

[0316] The vehicle for treprostinil palmityl dry powder formulation D has a target composition of 70 wt% mannitol and 30 wt% leucine. Rats in this vehicle-treated group (Group 2) are weighed and placed in the cup of a Vilnius aerosol generator (VAG) (loaded with 170 mg of vehicle) and administered once daily at 1 volt into the nose cone chamber until all material is aerosolized. The duration of aerosolization is measured. Vehicle treatment for this group is performed for 35 days in parallel with Groups 3 and 4. 3. Groups 3 and 4 - Treprostinil palmityl dry powder formulation D treatment group

[0317] For Groups 3 and 4, Treprostinil Palmityl Dry Powder Formulation D is weighed and placed in the VAG cup (90 mg is used, made at 0.5 volts (V) for a target dose of 57 μg / kg, and 170 mg is used, made at 1 V for a target dose of 138 μg / kg). The dry powder formulation is given once daily for 35 days, and for each administration, the VAG is left in place until all material is aerosolized. The duration of aerosolization is measured. The dry powder formulation is stored at 4±2°C. 4. Group 5 - Treatment group with atomized vehicle for inhaled treprostinil (TRE)

[0318] The nebulized vehicle for inhaled treprostinil (TRE) is phosphate-buffered saline (PBS). In parallel with Group 6, rats in this nebulized vehicle treatment group (Group 5) receive nebulized PBS in a nose cone chamber four times daily over a 12-hour period for 35 days. 5. Group 6 - Treatment with nebulized treprostinil (TRE)

[0319] The nebulized treprostinil (TRE) solution contains 0.5 mM TRE in PBS, pH 7.4. The solution is stored at 4±2°C with an expiration date set at 7 days after preparation. This solution is used to deliver a target dose of 110 μg / kg of TRE, administered by inhalation to rats in Group 6 four times daily over 12 hours for 35 days. 6. Group 7 - Vehicle treatment group for intravenous treprostinil by continuous infusion

[0320] The vehicle for intravenous treprostinil is an aqueous solution containing 3.0 mg / mL m-Cresol, 5.3 mg / mL NaCl, and 6.3 mg / mL sodium citrate, with a pH of 6.0-7.2. Rats in this group (Group 7) will each be implanted with an osmotic pump filled with vehicle and subjected to continuous infusion at the infusion rate specified for Group 8 below. In parallel with Group 8, the continuous infusion of vehicle for Group 7 will continue for 35 days. 7. Group 8 - Treatment with intravenous treprostinil (TRE) by continuous infusion

[0321] Two solutions were prepared for intravenous administration of TRE to Group 8. They differed only in the concentration of TRE. Specifically, the first solution was an aqueous solution containing 8.75 mg / mL TRE, 3.0 mg / mL m-Cresol, 5.3 mg / mL NaCl, and 6.3 mg / mL sodium citrate, with a pH of 6.0-7.2. The second solution was an aqueous solution containing 10.7 mg / mL TRE, 3.0 mg / mL m-Cresol, 5.3 mg / mL NaCl, and 6.3 mg / mL sodium citrate, with a pH of 6.0-7.2. Each rat in this group (Group 8) received an intravenous infusion of TRE using an implanted osmotic pump (ALZET pump). Each ALZET pump is initially filled with 2 mL of a first solution containing 8.75 mg / mL of TRE, sufficient (based on an infusion rate of 2.5 μL / hour) to achieve a continuous infusion over a 28-day period for a 450 g rat and achieve a target dose of TRE of 810 ng / kg / min. The ALZET pump is replaced on day 19 of the infusion (day 40 of the overall study) and filled with 2 mL of a second solution containing 10.7 mg / mL of TRE, based on the rat's weight gain to approximately 550 g. The derivation of the TRE concentrations in the first and second solutions is shown below. The continuous IV infusion of TRE will continue for 35 days.

[0322] Derivation of TRE concentration (8.75 mg / mL) in the first solution: Assume that the rat weighs 450g. Infused TRE = 810 ng / kg / min; = 364.5 ng / min; = 21.87 μg / h; = 524.88 μg / day; = 18.37 mg / 35 days 〇 AlZET injection rate=2.5μL / hour;=60μL / day;=2100μL / 35 days;=2.1mL / 35 days 〇 TRE concentration=18.37mg / 2.1mL=8.75mg / mL

[0323] Derivation of TRE concentration (10.7 mg / mL) in the second solution Assume that the rat weighs 550g. Infused TRE = 810 ng / kg / min; = 445.5 ng / min; = 26.73 μg / h; = 641.52 μg / day; = 22.45 mg / 35 days 〇 ALZET injection rate=2.5μL / hour;=60μL / day;=2100μL / 35 days;=2.1mL / 35 days 〇 TRE concentration=22.45mg / 2.1mL=10.7mg / mL 8. Group 9 - Vehicle treatment group for oral selexipag

[0324] The vehicle for selexipag is an aqueous solution containing 0.5% (w / v) methylcellulose, pH 7.5-8.0. Rats in this group, in parallel with Group 10, are dosed with the vehicle by oral gavage twice daily for 35 days. 9. Group 10 - Oral selexipag treatment group

[0325] A selexipag solution containing 3.0 mg / mL selexipag in 0.5% (w / v) methylcellulose, pH 7.5, is prepared. This solution is stored at room temperature with an expiration date set at 7 days after preparation. This solution is administered to this group of rats (Group 10) by oral gavage twice daily for a target dose of 30 mg / kg at a volume of 10 mL / kg per administration. Selexipag treatment will last for 35 days. research design

[0326] Table 39 outlines the study design, the details of which are as follows: 1. PAH induction

[0327] Rats are randomized into treatment groups on day 21 based on their body weight as described above.

[0328] On day 0, a 10 mg / mL solution of sugen in DMSO is prepared, and rats from groups 2-10 (see Table 39) receive a single subcutaneous injection of sugen (20 mg / kg in a volume of 2 mL / kg) solution and are returned to their cages. Also on day 0, rats from group 1 receive a single subcutaneous injection of 2 mL / kg of 100% DMSO (vehicle for sugen) and are returned to their respective cages.

[0329] Rats in groups 2-10 were placed in cages with ambient air controlled by a ventilated cage system with a controlled atmosphere using a nitrogen mixture to achieve an FiO2 equal to 0.10 (10%). They were kept under these hypoxic conditions for 21 days. While hypoxic, the cages were cleaned and changed once a week, and the rats were exposed to ambient oxygen levels for less than 10 minutes. They were exposed to ambient oxygen levels from day 22 through day 56. Rats in group 1 remained in cages exposed to ambient (normoxia) oxygen levels for 56 days. The rats were routinely observed for any changes in their behavior and general health.

[0330] Treatment with test article or vehicle is administered from days 22 to 56. Food and water are available ad libitum. Rats are observed daily for behavior and general health. Weights are measured weekly. 2. Echocardiography

[0331] Echocardiographic monitoring of disease progression is performed on all rats on days 0, 21 (pre-treatment) and the day of surgery (day 56). 3. Blood and Lung PK Sampling

[0332] Venous blood (0.5 ml, anticoagulated with EDTA) is sampled from all rats (including normoxic and vehicle groups) on days 23 (just before the second dose), 38 (just before the next dose), and 57 (24 hours after the final dose). Blood is sampled from the saphenous vein for rats with ALZET pumps and via the jugular vein for all other rats. Whole blood is centrifuged to obtain plasma, which is frozen and stored at -80°C for analysis. 4. Dry powder inhalation (groups 2-4)

[0333] During the treatment period, each rat was placed in a nose cone restraint chamber connected to a 12-port nasal inhalation chamber (CH Technologies). Treprostinil palmityl dry powder formulation D or its vehicle was delivered using a VAG. Airflow was introduced into the VAG at a flow rate of 7 L / min and connected to the nasal inhalation chamber. For Group 3 treated with low-dose treprostinil palmityl dry powder formulation D, 90 mg of treprostinil palmityl dry powder formulation D was weighed and loaded into the VAG deagglomerator. The VAG was set to a voltage of 0.5 V, corresponding to a powder concentration of 0.5 mg / L (approximately 7 μg / L of treprostinil palmityl). For Group 4, treated with the higher dose of treprostinil palmityl dry powder formulation D, 170 mg of treprostinil palmityl dry powder formulation D was weighed and loaded into the VAG deagglomerator and delivered at a voltage of 1 V, corresponding to a powder concentration of 1.0 mg / L (approximately 14.7 μg / L of treprostinil palmityl). The powder aerosol output concentration was continuously monitored with a portable aerosol monitor (Casella MicroDust Pro). The exact delivery time was recorded. The remaining dry powder in the VAG deagglomerator was weighed, and the actual amount of test dry powder aerosolized was calculated. Five minutes after the start of aerosolization, a glass fiber filter connected to a vacuum source with a vacuum flow of 0.5 L / min was placed in one of the exposure ports, and the aerosol from the chamber was collected on the filter for five minutes. All filter samples were kept at 4°C until analysis.

[0334] Rats from Group 2 receive 170 mg of the vehicle for Treprostinil Palmityl Dry Powder Formulation D administered at a setting of 1.0V.

[0335] This study will use two different inhalation towers and VAG and laser sets: one for the dry powder vehicle and the other for the treprostinil palmitate dry powder formulation D.

[0336] After removing the remaining powder from the VAG deagglomerator, all parts of the VAG were exposed to dry air. Between the dosing of Group 3 (low dose) and Group 4 (high dose), the tower was exposed to dry air and after the dosing of Group 4, it was cleaned with a 0.5% aqueous solution of sodium dodecyl sulfate (SDS), tap water, and distilled water. 5. Nebulized inhalation (groups 5 and 6)

[0337] Treprostinil and its vehicle, PBS, were administered using a nebulizer and controller (Aeroneb Pro) from Aerogen, manufactured to deliver a mass mean aerosol diameter (MMAD) between 2.5 and 4 μm at flow rates ranging from 0.2 to 0.4 mL / min. During the treatment period, each rat was placed in a nose cone restraint chamber connected to a 12-port nasal inhalation chamber (CH Technologies). The volume of the nebulized solution was 6 mL with an airflow of 6 L / min, and the treprostinil concentration was 0.5 mM. A glass fiber filter was placed in one of the exposure ports and connected to a vacuum source with a vacuum flow of 0.5 L / min for a 5-minute period (i.e., starting 5 minutes after the start of nebulization and ending at 10 minutes).

[0338] Two inhalation towers and two separate sets of nose cones will be used; one for Group 5 receiving PBS and one for Group 6 receiving TRE.

[0339] Nebulizer purging is performed by sequentially running aqueous solutions of 0.5% SDS, tap water, and distilled water through the nebulizer and by nebulizing PBS between uses to flush any residual drug from the drug cup and through the orifice plate. The atomization tower tube and other materials used in the atomization process are also purged with the drug once daily. Additionally, the aerosolization tower tube and other materials used in the aerosolization process are purged with the drug after each chamber dose. 6. IV continuous infusion (Groups 7 and 8)

[0340] Rats from Group 8 are anesthetized with 2% isoflurane and medical air. An incision is made on the back of each rat, and an ALZET pump filled with a first solution containing 8.75 mg / mL of TRE is placed. A catheter is implanted in the jugular vein and connected to the ALZET pump. On day 19 of the infusion, the catheter is temporarily clamped, and the ALZET pump is replaced with a new one filled with a second solution containing 10.7 mg / mL of TRE for a 35-day period. Each rat from Group 7 is implanted with an ALZET pump filled with vehicle. 7. Oral administration (Groups 9 and 10)

[0341] Rats from Group 10 receive the reference compound, selexipag, by oral gavage twice daily from days 22 to 56 (35 days). Care is taken to maintain a uniform suspension of selexipag by continuous stirring; the dose is drawn into the gavage syringe, filling one gavage syringe in one go and administering that dose before filling the next syringe. Doses are given by oral gavage at 10 mL per kg body weight at each administration. Rats from Group 9 are dosed with vehicle twice daily by oral gavage from days 22 to 56 (35 days). Surgical Instrumentation and Efficacy Studies: Measurement of Hemodynamic and Functional Parameters in Rats

[0342] 1. On the selected surgery day, which is 24 hours after the final dose, anesthetize the rat with a mixture of 2-2.5% isoflurane USP (Abbot Laboratories) in oxygen and place it on a heating pad to maintain body temperature.

[0343] 2. Rats are tracheotomized and immediately ventilated with a positive pressure rodent respirator set at approximately 10 ml per kg body weight at a frequency of 90 strokes / min.

[0344] 3. A cannula connected to a pressure transducer is inserted into the left femoral artery to measure systemic arterial blood pressure (SAP).

[0345] 4. The heart is exposed via sternotomy and an Insyte 20GA 1.16 is introduced into the right ventricle and quickly hooked onto a saline-filled PE-50 catheter connected to a transducer.

[0346] 5. After a few seconds of recording right ventricular pressure, advance the Insyte further into the pulmonary artery and record PAP for an additional 60 seconds.

[0347] 6. Hemodynamic parameters are recorded continuously for the duration of the procedure or until the PAP signal is lost.

[0348] 7. After hemodynamic monitoring, obtain blood by cardiac puncture for biomarker analysis (described below).

[0349] 8. After collection of the blood sample, the chest cavity is further opened to expose the lungs. The muscles overlying the trachea are cut away and the lungs and heart are removed. The collected tissue is rinsed with PBS to remove all excess blood before being weighed.

[0350] 9. The right lung is ligated and immediately collected for drug concentration and biomarker analysis by separating the four lobes, weighing them, freezing them in liquid nitrogen, and storing them at -80°C.

[0351] 10. For cardiac histology and casting, the process is as follows: 1) 5 of the 11 rats in each of groups 2-10 will be reserved and evaluated for cardiac histology and biochemical parameters, and will be treated accordingly as described in point 11 below; 2) The other 6 rats in each of groups 2-10 will serve to determine the Fulton index and will be treated accordingly as described in point 12. After collecting the data for the Fulton index, the cardiac tissue will be stored at -80°C for biomarker analysis.

[0352] 11. For histology, flush the left lung with 0.9% NaCl. Inflate the left lung using a 10 mL syringe filled with fixative 10% neutral buffered formalin (NBF) fitted with a blunt-tip needle (23 g). Insert the tip of the needle into the trachea and secure it with a suture, while tying another syringe to the pulmonary artery. Gently inflate the lung with physiological pressure until it expands completely, uniformly, and consistently (does not allow for settling and seeps through the lung surface). This results in optimal vascular and airway expansion without causing excessive tissue destruction. The needle is then removed, the area around the trachea is sutured, and the lung is immersed in 10% NBF at a tissue-to-fixative ratio of 1:20. The heart is rinsed with PBS and then immersed in 10% NBF at a tissue-to-fixative ratio of 1:20. Keep the tissue in formalin for 24–48 hours. The left lung and heart are then excised and transferred to 70% ethanol.

[0353] All fixed tissues are embedded, sliced, and stained. Lung sections are stained with hematoxylin and eosin (H&E) for morphology determination or von Willebrand factor (VWF) for endothelial cell staining. Heart sections are stained with H&E and either Sirius Red or Trichrome stain for collagen fiber visualization and quantification.

[0354] 12. As part of the Fulton index, the heart is excised, the right ventricle is separated from the left ventricle by the septum, and then weighed separately. After collecting data for the Fulton index, the heart tissue is stored at -80°C for biomarker analysis. Experimental data acquisition and analysis

[0355] The experimental traces are analyzed by Clampfit software from Axon Instruments.

[0356] Extract mean, diastolic, and systolic pulmonary pressures using PAP recorded continuously for at least 1 min or until loss of signal.

[0357] Continuously recorded systemic arterial pressure (SAP) is used to extract mean, diastolic and systolic arterial pressure.

[0358] At the end of the recording of hemodynamic parameters, the right and left ventricles including the septum and the lung lobes are excised and their wet weights are determined.

[0359] The following hemodynamic and cardiac function parameters are quantified with appropriate statistical analysis: - Mean systemic arterial pressure - Mean pulmonary artery pressure - Diastolic pulmonary pressure - systolic pulmonary pressure - systolic right ventricular pressure - Saturation (SO2) - Weight gain - Lung weight -Fulton index - Heart rate - Pulse pressure

[0360] Additionally, biomarkers of oxidative stress, collagen (Sircol assay) and hydroxyproline content, uric acid, and natriuretic peptide B Molecules that indicate cardiac biochemistry will be examined, including NP, NT-proBNP (biomarker of myocardial stress), endothelin-1 (heart failure), angiopoietin (angiogenesis), von Willebrand factor (endothelial cells), interleukin-6 (biomarker of heart attack and stroke), Toll receptor C (biomarker of heart disease), plasma cytokines, atrial natriuretic peptide ANP (biomarker of stroke, coronary artery disease, myocardial infarction and heart failure), toponin T / I (biomarker of cardiac ischemia), and CPK-MB (cardiac biomarker for myocardial infarction).

[0361] Genes related to PAH, such as bone morphogenetic protein type 2 (BMPR1), BMP-9, ABCC8, TBX4, ACVRL, SMAD 4 / 9, KCNA5, and TET2, are also investigated in this example. Furthermore, in the heart and lung, collagen type 1 alpha 1 (COL1A1), collagen type 1 alpha 2 (COL1A2), and collagen type 3 alpha 1 (COL3A1) are involved in collagen formation and secretion. P4HA1 is a key enzyme in collagen biosynthesis. ACTG2 is a gene involved in myofibroblast differentiation. Changes in the expression of these genes are also investigated.

[0362] It is expected that treprostinil palmityl dry powder formulation D will improve the pathophysiology and histopathology in the pulmonary vessels and heart of rats subjected to Su / Hx.

[0363] While the described invention has been described with reference to specific embodiments thereof, it should be understood by those skilled in the art that various changes may be made and equivalents substituted without departing from the true spirit and scope of the invention. Moreover, many modifications may be made to adapt a particular situation, material, composition of matter, process, process step(s), to the objective spirit and scope of the described invention. All such modifications are intended to be within the scope of the claims appended hereto.

[0364] All patents, patent applications, published patent applications, journal articles, and protocols referred to herein are incorporated by reference in their entirety for all purposes. The present invention provides, for example, the following items. (Item 1) (a) about 0.1 wt % to about 3 wt % of a compound of Formula (I): [ka] or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, wherein R 1 is tetradecyl, pentadecyl, hexadecyl, heptadecyl, or octadecyl), (b) about 0.01 wt% to about 3 wt% DSPE-PEG2000; (c) about 10 wt% to about 50 wt% leucine, and (d) a remainder which is a sugar selected from the group consisting of trehalose and mannitol. Including, (a), (b), (c), and (d) are 100 wt% in total; Dry powder composition. (Item 2) 2. The dry powder composition of claim 1, wherein (a) is a compound of formula (I) or a pharmaceutically acceptable salt thereof. (Item 3) 3. The dry powder composition of claim 1 or 2, wherein (a) is a compound of formula (I). (Item 4) R 1 4. The dry powder composition of any one of items 1 to 3, wherein is tetradecyl. (Item 5) R 1 5. The dry powder composition of item 4, wherein is linear tetradecyl. (Item 6) R 1 4. The dry powder composition of any one of items 1 to 3, wherein is pentadecyl. (Item 7) R 17. The dry powder composition of claim 6, wherein is linear pentadecyl. (Item 8) R 1 4. The dry powder composition of any one of items 1 to 3, wherein is heptadecyl. (Item 9) R 1 9. The dry powder composition of item 8, wherein is linear heptadecyl. (Item 10) R 1 4. The dry powder composition of any one of items 1 to 3, wherein is octadecyl. (Item 11) R 1 11. The dry powder composition of item 10, wherein is linear octadecyl. (Item 12) R 1 4. The dry powder composition of any one of items 1 to 3, wherein is hexadecyl. (Item 13) R 1 13. The dry powder composition of item 12, wherein is linear hexadecyl. (Item 14) 14. The dry powder composition of any one of the preceding claims, wherein the DSPE-PEG2000 is present at about 0.03 wt% to about 2.1 wt% of the total weight of the dry powder composition. (Item 15) 15. The dry powder composition of any one of the preceding claims, wherein the DSPE-PEG2000 is present at about 0.05 wt% to about 1.5 wt% of the total weight of the dry powder composition. (Item 16) 14. The dry powder composition of any one of items 1 to 13, wherein the compound of formula (I), or enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 0.5 wt% to about 2 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.05 wt% to about 2 wt% of the total weight of the dry powder composition. (Item 17) Item 17. The dry powder composition of item 16, wherein the compound of formula (I), or a pharmaceutically acceptable salt thereof, is present in about 0.5 wt% to about 2 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.05 wt% to about 2 wt% of the total weight of the dry powder composition. (Item 18) 18. The dry powder composition of claim 16, wherein the compound of formula (I) is present in about 0.5 wt% to about 2 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.05 wt% to about 2 wt% of the total weight of the dry powder composition. (Item 19) 19. The dry powder composition of any one of items 16 to 18, wherein the DSPE-PEG2000 is present at about 0.15 wt% to about 1.4 wt% of the total weight of the dry powder composition. (Item 20) 21. The dry powder composition of any one of claims 16 to 19, wherein the DSPE-PEG2000 is present in an amount of about 0.25 wt% to about 1 wt% of the total weight of the dry powder composition. The dry powder composition according to any one of items 1 to 13, wherein the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in an amount of about 1 wt% to about 2 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in an amount of about 0.1 wt% to about 2 wt% of the total weight of the dry powder composition. 22. The dry powder composition of claim 21, wherein the compound of formula (I), or a pharmaceutically acceptable salt thereof, is present in about 1 wt% to about 2 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.1 wt% to about 2 wt% of the total weight of the dry powder composition. (Item 23) 23. The dry powder composition of claim 21, wherein the compound of formula (I) is present in about 1 wt% to about 2 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.1 wt% to about 2 wt% of the total weight of the dry powder composition. (Item 24) 24. The dry powder composition of any one of items 21 to 23, wherein the DSPE-PEG2000 is present at about 0.3 wt% to about 1.4 wt% of the total weight of the dry powder composition. (Item 25) 25. The dry powder composition of any one of items 21 to 24, wherein the DSPE-PEG2000 is present at about 0.5 wt% to about 1 wt% of the total weight of the dry powder composition. (Item 26) 14. The dry powder composition of any one of items 1 to 13, wherein the compound of formula (I), or enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 1.2 wt% to about 1.8 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.12 wt% to about 1.8 wt% of the total weight of the dry powder composition. (Item 27) 27. The dry powder composition of claim 26, wherein the compound of formula (I), or a pharmaceutically acceptable salt thereof, is present in about 1.2 wt% to about 1.8 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.12 wt% to about 1.8 wt% of the total weight of the dry powder composition. (Item 28) 28. The dry powder composition of claim 26, wherein the compound of formula (I) is present in about 1.2 wt% to about 1.8 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.12 wt% to about 1.8 wt% of the total weight of the dry powder composition. (Item 29) 29. The dry powder composition of any one of items 26 to 28, wherein the DSPE-PEG2000 is present at about 0.36 wt% to about 1.26 wt% of the total weight of the dry powder composition. (Item 30) 30. The dry powder composition of any one of items 26 to 29, wherein the DSPE-PEG2000 is present at about 0.6 wt% to about 0.9 wt% of the total weight of the dry powder composition. (Item 31) 14. The dry powder composition of any one of items 1 to 13, wherein the compound of formula (I), or enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 1 wt % to about 1.5 wt % of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.1 wt % to about 1.5 wt % of the total weight of the dry powder composition. (Item 32) 32. The dry powder composition of claim 31, wherein the compound of formula (I), or a pharmaceutically acceptable salt thereof, is present in about 1 wt% to about 1.5 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.1 wt% to about 1.5 wt% of the total weight of the dry powder composition. (Item 33) 33. The dry powder composition of claim 31, wherein the compound of formula (I) is present in about 1 wt% to about 1.5 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.1 wt% to about 1.5 wt% of the total weight of the dry powder composition. (Item 34) 34. The dry powder composition of any one of items 31 to 33, wherein the DSPE-PEG2000 is present at about 0.3 wt% to about 1.05 wt% of the total weight of the dry powder composition. (Item 35) 35. The dry powder composition of any one of items 31 to 34, wherein the DSPE-PEG2000 is present at about 0.5 wt% to about 0.75 wt% of the total weight of the dry powder composition. (Item 36) 14. The dry powder composition of any one of items 1 to 13, wherein the compound of formula (I), or enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 1.4 wt% to about 1.6 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.14 wt% to about 1.6 wt% of the total weight of the dry powder composition. (Item 37) 37. The dry powder composition of claim 36, wherein the compound of formula (I), or a pharmaceutically acceptable salt thereof, is present in about 1.4 wt% to about 1.6 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.14 wt% to about 1.6 wt% of the total weight of the dry powder composition. (Item 38) 38. The dry powder composition of claim 36, wherein the compound of formula (I) is present in about 1.4 wt% to about 1.6 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.14 wt% to about 1.6 wt% of the total weight of the dry powder composition. (Item 39) 39. The dry powder composition of any one of items 36 to 38, wherein the DSPE-PEG2000 is present at about 0.42 wt% to about 1.12 wt% of the total weight of the dry powder composition. (Item 40) 40. The dry powder composition of any one of items 36 to 39, wherein the DSPE-PEG2000 is present at about 0.7 wt% to about 0.8 wt% of the total weight of the dry powder composition. (Item 41) 14. The dry powder composition of any one of items 1 to 13, wherein the compound of formula (I), or enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present at about 1 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present at about 0.1 wt% to about 1 wt% of the total weight of the dry powder composition. (Item 42) 42. The dry powder composition of claim 41, wherein the compound of formula (I), or a pharmaceutically acceptable salt thereof, is present in about 1 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.1 wt% to about 1 wt% of the total weight of the dry powder composition. (Item 43) 43. The dry powder composition of claim 41, wherein the compound of formula (I) is present at about 1 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present at about 0.1 wt% to about 1 wt% of the total weight of the dry powder composition. (Item 44) 44. The dry powder composition of any one of items 41 to 43, wherein the DSPE-PEG2000 is present at about 0.3 wt% to about 0.7 wt% of the total weight of the dry powder composition. (Item 45) 45. The dry powder composition of any one of items 41 to 44, wherein the DSPE-PEG2000 is present at about 0.5 wt% of the total weight of the dry powder composition. (Item 46) 14. The dry powder composition of any one of items 1 to 13, wherein the compound of formula (I), or enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present at about 1.5 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present at about 0.15 wt% to about 1.5 wt% of the total weight of the dry powder composition. (Item 47) Item 47. The dry powder composition of item 46, wherein the compound of formula (I), or a pharmaceutically acceptable salt thereof, is present in about 1.5 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in about 0.15 wt% to about 1.5 wt% of the total weight of the dry powder composition. (Item 48) 48. The dry powder composition of claim 46 or 47, wherein the compound of formula (I) is present at about 1.5 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present at about 0.15 wt% to about 1.5 wt% of the total weight of the dry powder composition. (Item 49) 49. The dry powder composition of any one of items 46 to 48, wherein the DSPE-PEG2000 is present at about 0.45 wt% to about 1.05 wt% of the total weight of the dry powder composition. (Item 50) 50. The dry powder composition of any one of items 46 to 49, wherein the DSPE-PEG2000 is present at about 0.75 wt% of the total weight of the dry powder composition. (Item 51) (a) about 0.1 wt % to about 3 wt % of a compound of Formula (I): [ka] or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, wherein R 1 is tetradecyl, pentadecyl, hexadecyl, heptadecyl, or octadecyl), (b) DSPE-PEG2000, wherein the weight ratio of said DSPE-PEG2000 to said compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is within the range of about 0.1:1 (DSPE-PEG2000: said compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt) to about 1:1 (DSPE-PEG2000: said compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt); (c) about 10 wt% to about 50 wt% leucine, and (d) a remainder which is a sugar selected from the group consisting of trehalose and mannitol. Including, (a), (b), (c), and (d) are 100 wt% in total; Dry powder composition. (Item 52) 52. The dry powder composition of item 51, wherein (a) is a compound of formula (I) or a pharmaceutically acceptable salt thereof. (Item 53) 53. The dry powder composition of item 51 or 52, wherein (a) is a compound of formula (I). (Item 54) R 1 54. The dry powder composition of any one of items 51 to 53, wherein is tetradecyl. (Item 55) R 1 55. The dry powder composition of item 54, wherein is linear tetradecyl. (Item 56) R 1 54. The dry powder composition of any one of items 51 to 53, wherein is pentadecyl. (Item 57) R 1 57. The dry powder composition of item 56, wherein is linear pentadecyl. (Item 58) R 1 54. The dry powder composition of any one of items 51 to 53, wherein is heptadecyl. (Item 59) R 1 59. The dry powder composition of item 58, wherein is linear heptadecyl. (Item 60) R 1 54. The dry powder composition of any one of items 51 to 53, wherein is octadecyl. (Item 61) R 1 61. The dry powder composition of item 60, wherein is linear octadecyl. (Item 62) R 1 54. The dry powder composition of any one of items 51 to 53, wherein is hexadecyl. (Item 63) R 1 63. The dry powder composition of item 62, wherein is linear hexadecyl. (Item 64) 64. The dry powder composition of any one of items 51 to 63, wherein the compound of formula (I), or enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 0.5 wt% to about 2 wt% of the total weight of the dry powder composition. (Item 65) 64. The dry powder composition of any one of items 51 to 63, wherein the compound of formula (I), or enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 1 wt% to about 2 wt% of the total weight of the dry powder composition. (Item 66) 64. The dry powder composition of any one of items 51 to 63, wherein the compound of formula (I), or enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 1.2 wt% to about 1.8 wt% of the total weight of the dry powder composition. (Item 67) 64. The dry powder composition of any one of items 51 to 63, wherein the compound of formula (I), or enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 1 wt% to about 1.5 wt% of the total weight of the dry powder composition. (Item 68) 64. The dry powder composition of any one of items 51 to 63, wherein the compound of formula (I), or enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 1.4 wt% to about 1.6 wt% of the total weight of the dry powder composition. (Item 69) 64. The dry powder composition of any one of items 51 to 63, wherein the compound of formula (I), or enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 1 wt% of the total weight of the dry powder composition. (Item 70) 64. The dry powder composition of any one of items 51 to 63, wherein the compound of formula (I), or enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is present in about 1.5 wt% of the total weight of the dry powder composition. (Item 71) 71. The dry powder composition of any one of items 51 to 70, wherein the weight ratio of the DSPE-PEG2000 to the compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is within the range of about 0.3:1 (DSPE-PEG2000:the compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt) to about 0.7:1 (DSPE-PEG2000:the compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt). (Item 72) 72. The dry powder composition of any one of items 51 to 71, wherein the weight ratio of the DSPE-PEG2000 to the compound of formula (I), or enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is about 0.5:1 (DSPE-PEG2000:the compound of formula (I), or enantiomer, diastereomer, or pharmaceutically acceptable salt thereof). (Item 73) 73. The dry powder composition of any one of the preceding claims, wherein the leucine is present at about 15 wt% to about 40 wt% of the total weight of the dry powder composition. (Item 74) 74. The dry powder composition of claim 73, wherein the leucine is present at about 18 wt% to about 33 wt% of the total weight of the dry powder composition. (Item 75) 75. The dry powder composition of claim 74, wherein the leucine is present at about 20 wt% to about 30 wt% of the total weight of the dry powder composition. (Item 76) 76. The dry powder composition of claim 75, wherein the leucine is present at about 25 wt% to about 30 wt% of the total weight of the dry powder composition. (Item 77) 77. The dry powder composition of claim 76, wherein the leucine is present at about 27 wt% to about 30 wt% of the total weight of the dry powder composition. (Item 78) 76. The dry powder composition of claim 75, wherein the leucine is present at about 20 wt% of the total weight of the dry powder composition. (Item 79) 76. The dry powder composition of claim 75, wherein the leucine is present at about 30 wt% of the total weight of the dry powder composition. (Item 80) 80. The dry powder composition of any one of the preceding claims, wherein the sugar is trehalose. (Item 81) 80. The dry powder composition of any one of the preceding items, wherein the sugar is mannitol. (Item 82) 14. The dry powder composition of any one of items 1 to 13, comprising: (a) about 1.5 wt% of the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof; (b) about 0.7 wt% of the DSPE-PEG2000; (c) about 29.3 wt% of the leucine; and (d) the remainder being trehalose. (Item 83) 83. The dry powder composition of item 82, comprising: (a) about 1.5 wt% of the compound of formula (I), or a pharmaceutically acceptable salt thereof; (b) about 0.7 wt% of the DSPE-PEG2000; (c) about 29.3 wt% of the leucine; and (d) the remainder being trehalose. (Item 84) 84. The dry powder composition of claim 82 or 83, comprising: (a) about 1.5 wt% of the compound of formula (I), (b) about 0.7 wt% of the DSPE-PEG2000, (c) about 29.3 wt% of the leucine, and (d) the remainder being trehalose. (Item 85) 14. The dry powder composition of any one of items 1 to 13, comprising: (a) about 1 wt. % of the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof; (b) about 0.5 wt. % of the DSPE-PEG2000; (c) about 29.6 wt. % of the leucine; and (d) the remainder being trehalose. (Item 86) 86. The dry powder composition of item 85, comprising: (a) about 1 wt% of the compound of formula (I), or a pharmaceutically acceptable salt thereof; (b) about 0.5 wt% of the DSPE-PEG2000; (c) about 29.6 wt% of the leucine; and (d) the remainder being trehalose. (Item 87) 87. The dry powder composition of item 85 or 86, comprising: (a) about 1 wt% of the compound of formula (I), (b) about 0.5 wt% of the DSPE-PEG2000, (c) about 29.6 wt% of the leucine, and (d) the remainder being trehalose. (Item 88) 14. The dry powder composition of any one of items 1 to 13, comprising: (a) about 1 wt. % of the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof; (b) about 0.5 wt. % of the DSPE-PEG2000; (c) about 19.7 wt. % of the leucine; and (d) the remainder being trehalose. (Item 89) 89. The dry powder composition of item 88, comprising: (a) about 1 wt% of the compound of formula (I), or a pharmaceutically acceptable salt thereof; (b) about 0.5 wt% of the DSPE-PEG2000; (c) about 19.7 wt% of the leucine; and (d) the remainder being trehalose. (Item 90) 90. The dry powder composition of claim 88 or 89, comprising: (a) about 1 wt% of the compound of formula (I), (b) about 0.5 wt% of the DSPE-PEG2000, (c) about 19.7 wt% of the leucine, and (d) the remainder being trehalose. (Item 91) 14. The dry powder composition of any one of items 1 to 13, comprising: (a) about 1.5 wt% of the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof; (b) about 0.7 wt% of the DSPE-PEG2000; (c) about 19.6 wt% of the leucine; and (d) the remainder being trehalose. (Item 92) Item 92. The dry powder composition of item 91, comprising: (a) about 1.5 wt% of the compound of formula (I), or a pharmaceutically acceptable salt thereof; (b) about 0.7 wt% of the DSPE-PEG2000; (c) about 19.6 wt% of the leucine; and (d) the remainder being trehalose. (Item 93) 93. The dry powder composition of claim 91 or 92, comprising: (a) about 1.5 wt% of the compound of formula (I), (b) about 0.7 wt% of the DSPE-PEG2000, (c) about 19.6 wt% of the leucine, and (d) the remainder being trehalose. (Item 94) 14. The dry powder composition of any one of items 1 to 13, comprising: (a) about 1.5 wt% of the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof; (b) about 0.7 wt% of the DSPE-PEG2000; (c) about 29.3 wt% of the leucine; and (d) the remainder being mannitol. (Item 95) Item 95. The dry powder composition of item 94, comprising: (a) about 1.5 wt% of the compound of formula (I), or a pharmaceutically acceptable salt thereof; (b) about 0.7 wt% of the DSPE-PEG2000; (c) about 29.3 wt% of the leucine; and (d) the remainder being mannitol. (Item 96) 96. The dry powder composition of item 94 or 95, comprising: (a) about 1.5 wt% of the compound of formula (I), (b) about 0.7 wt% of the DSPE-PEG2000, (c) about 29.3 wt% of the leucine, and (d) the remainder being mannitol. (Item 97) 14. The dry powder composition of any one of items 1 to 13, comprising: (a) about 1.5 wt% of the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof; (b) about 0.75 wt% of the DSPE-PEG2000; (c) about 29.30 wt% of the leucine; and (d) about 68.45 wt% of mannitol. (Item 98) Item 98. The dry powder composition of item 97, comprising: (a) about 1.5 wt% of the compound of formula (I), or a pharmaceutically acceptable salt thereof; (b) about 0.75 wt% of the DSPE-PEG2000; (c) about 29.30 wt% of the leucine; and (d) about 68.45 wt% of the mannitol. (Item 99) Item 99. The dry powder composition of item 97 or 98, comprising: (a) about 1.5 wt% of the compound of formula (I), (b) about 0.75 wt% of the DSPE-PEG2000, (c) about 29.30 wt% of the leucine, and (d) about 68.45 wt% of the mannitol. (Item 100) 14. The dry powder composition of any one of items 1 to 13, comprising: (a) about 1 wt. % of the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof; (b) about 0.5 wt. % of the DSPE-PEG2000; (c) about 29.6 wt. % of the leucine; and (d) the remainder being mannitol. (Item 101) Item 102. The dry powder composition of Item 100, comprising: (a) about 1 wt% of the compound of formula (I) or a pharmaceutically acceptable salt thereof; (b) about 0.5 wt% of the DSPE-PEG2000; (c) about 29.6 wt% of the leucine; and (d) the remainder being mannitol. 102. The dry powder composition of claim 100 or 101, comprising: (a) about 1 wt% of the compound of formula (I), (b) about 0.5 wt% of the DSPE-PEG2000, (c) about 29.6 wt% of the leucine, and (d) the remainder being mannitol. (Item 103) 14. The dry powder composition of any one of items 1 to 13, comprising: (a) about 1.5 wt% of the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof; (b) about 0.7 wt% of the DSPE-PEG2000; (c) about 19.6 wt% of the leucine; and (d) the remainder being mannitol. (Item 104) Item 104. The dry powder composition of item 103, comprising: (a) about 1.5 wt% of the compound of formula (I), or a pharmaceutically acceptable salt thereof; (b) about 0.7 wt% of the DSPE-PEG2000; (c) about 19.6 wt% of the leucine; and (d) the remainder being mannitol. (Item 105) 105. The dry powder composition of claim 103 or 104, comprising: (a) about 1.5 wt% of the compound of formula (I), (b) about 0.7 wt% of the DSPE-PEG2000, (c) about 19.6 wt% of the leucine, and (d) the remainder being mannitol. (Item 106) 14. The dry powder composition of any one of items 1 to 13, comprising: (a) about 1 wt. % of the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof; (b) about 0.5 wt. % of the DSPE-PEG2000; (c) about 19.7 wt. % of the leucine; and (d) the remainder being mannitol. (Item 107) Item 108. The dry powder composition of Item 106, comprising: (a) about 1 wt% of the compound of formula (I) or a pharmaceutically acceptable salt thereof; (b) about 0.5 wt% of the DSPE-PEG2000; (c) about 19.7 wt% of the leucine; and (d) the remainder being mannitol. 108. The dry powder composition of claim 106 or 107, comprising: (a) about 1 wt% of the compound of formula (I), (b) about 0.5 wt% of the DSPE-PEG2000, (c) about 19.7 wt% of the leucine, and (d) the remainder being mannitol. (Item 109) 109. The dry powder composition of any one of the preceding items, wherein the dry powder composition is in the form of an aerosol comprising particles having a mass median aerodynamic diameter (MMAD) of about 1 μm to about 3 μm as measured by Next Generation Impactor (NGI). (Item 110) 109. The dry powder composition of any one of the preceding items, wherein the dry powder composition is in the form of an aerosol comprising particles having an MMAD of from about 1.3 μm to about 2.0 μm as measured by NGI. (Item 111) 109. The dry powder composition of any one of items 81 and 94 to 108, wherein the dry powder composition is in the form of an aerosol comprising particles having an MMAD of from about 1.7 μm to about 2.7 μm as measured by NGI. (Item 112) 112. The dry powder composition of any one of the preceding items, wherein the dry powder composition is in the form of an aerosol comprising particles having a fine particle fraction of about 30% to about 60% as measured by NGI. (Item 113) 113. A method for treating pulmonary hypertension in a patient in need thereof, comprising administering an effective amount of the dry powder composition of any one of items 1 to 112 to the lungs of the patient by inhalation with a dry powder inhaler. (Item 114) Item 114. The method of item 113, wherein the pulmonary hypertension is pulmonary arterial hypertension. (Item 115) Item 115. The method of item 114, wherein the pulmonary arterial hypertension is Class I pulmonary arterial hypertension as characterized by the New York Heart Association (NYHA). (Item 116) Item 115. The method of item 114, wherein the pulmonary arterial hypertension is class II pulmonary arterial hypertension as characterized by NYHA. (Item 117) Item 115. The method of item 114, wherein the pulmonary arterial hypertension is class III pulmonary arterial hypertension as characterized by NYHA. (Item 118) Item 115. The method of item 114, wherein the pulmonary arterial hypertension is class IV pulmonary arterial hypertension as characterized by NYHA. (Item 119) Item 114. The method of item 113, wherein the pulmonary hypertension is Group 1 pulmonary hypertension as characterized by the World Health Organization (WHO). (Item 120) 114. The method of item 113, wherein the pulmonary hypertension is group 2 pulmonary hypertension as characterized by the WHO. (Item 121) 114. The method of item 113, wherein the pulmonary hypertension is group 3 pulmonary hypertension as characterized by the WHO. (Item 122) 114. The method of item 113, wherein the pulmonary hypertension is group 4 pulmonary hypertension as characterized by the WHO. (Item 123) 114. The method of item 113, wherein the pulmonary hypertension is group 5 pulmonary hypertension as characterized by the WHO. (Item 124) 113. A method for treating portopulmonary hypertension or pulmonary fibrosis in a patient in need thereof, comprising administering an effective amount of the dry powder composition of any one of items 1 to 112 to the lungs of the patient by inhalation with a dry powder inhaler. (Item 125) 125. The method of any one of items 113 to 124, wherein the administering step is carried out in a once-daily, twice-daily, or three-times-daily dosage. (Item 126) 126. The method of any one of items 113 to 125, wherein the administering step comprises aerosolizing the dry powder composition and administering the aerosolized dry powder composition to the lungs of the patient by inhalation. (Item 127) 127. The method of claim 126, wherein the aerosolized dry powder composition comprises particles having an MMAD of about 1 μm to about 3 μm as measured by NGI. (Item 128) 128. The method of claim 126 or 127, wherein the aerosolized dry powder composition comprises particles having a fine particle fraction of about 30% to about 60% as measured by NGI. (Item 129) 1. A system for treating pulmonary hypertension, portopulmonary hypertension, or pulmonary fibrosis, comprising: 113. A dry powder composition according to any one of items 1 to 112, and Dry powder inhaler (DPI) Including, the system. (Item 130) 130. The system of claim 129, wherein the DPI is either a single-dose or multi-dose inhaler. (Item 131) Item 130. The system of item 129, wherein the DPI is pre-calibrated or calibrated on the device.

Claims

1. A dry powder composition comprising: (a) 0.1 wt % to 3 wt % of a compound of formula (I): 【Chemistry 4】 or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, wherein R 1 is tetradecyl, pentadecyl, hexadecyl, heptadecyl, or octadecyl; (b) 0.01 wt % to 3 wt % DSPE-PEG2000 selected from the group consisting of distearoylphosphatidylethanolamine-polyethylene glycol 2000 and 1,2-distearoyl-sn-glycero-3-phosphoethanolamine-polyethylene glycol 2000; (c) 10 wt % to 50 wt % leucine, and (d) a remainder which is a sugar selected from the group consisting of trehalose and mannitol. It consists of The total of (a), (b), (c), and (d) is 100 wt %; A dry powder composition, wherein the aerosol form of said dry powder composition consists of particles having a mass median aerodynamic diameter (MMAD) of 1 μm to 3 μm as measured by Next Generation Impactor (NGI).

2. The dry powder composition of claim 1, wherein R 1 is hexadecyl.

3. The dry powder composition of claim 2, wherein R 1 is linear hexadecyl.

4. A dry powder composition described in any one of claims 1 to 3, wherein the DSPE-PEG2000 is present at 0.03 wt% to 2.1 wt%.

5. A dry powder composition described in any one of claims 1 to 3, wherein the DSPE-PEG2000 is present at 0.05 wt% to 1.5 wt% of the total weight of the dry powder composition.

6. A dry powder composition described in any one of claims 1 to 3, wherein the compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present in an amount of 0.5 wt% to 2 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in an amount of 0.05 wt% to 2 wt% of the total weight of the dry powder composition.

7. The dry powder composition of claim 6, wherein the DSPE-PEG2000 is present at 0.15 wt% to 1.4 wt% of the total weight of the dry powder composition.

8. The dry powder composition described in claim 7, wherein the DSPE-PEG2000 is present at 0.25 wt% to 1 wt% of the total weight of the dry powder composition.

9. A dry powder composition described in any one of claims 1 to 3, wherein the compound of formula (I), or its enantiomer, diastereomer, or pharmaceutically acceptable salt, is present in an amount of 1 wt% to 2 wt% of the total weight of the dry powder composition, and the DSPE-PEG2000 is present in an amount of 0.1 wt% to 2 wt% of the total weight of the dry powder composition.

10. The dry powder composition of claim 9, wherein the DSPE-PEG2000 is present at 0.3 wt% to 1.4 wt% of the total weight of the dry powder composition.

11. The dry powder composition of claim 10, wherein the DSPE-PEG2000 is present at 0.5 wt% to 1 wt% of the total weight of the dry powder composition.

12. The dry powder composition of any one of claims 1 to 11, wherein the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is the compound of formula (I) or a pharmaceutically acceptable salt thereof.

13. The dry powder composition of any one of claims 1 to 11, wherein the compound of formula (I), or an enantiomer, diastereomer, or pharmaceutically acceptable salt thereof, is the compound of formula (I).

14. A dry powder composition described in any one of claims 1 to 13, wherein the leucine is present in an amount of 18 wt% to 33 wt% of the total weight of the dry powder composition.

15. A dry powder composition described in any one of claims 1 to 13, wherein the leucine is present at 25 wt% to 30 wt% of the total weight of the dry powder composition.

16. The dry powder composition of any one of claims 1 to 15, wherein the sugar is mannitol.

17. The dry powder composition of any one of claims 1 to 3, comprising: (a) 1.5 wt% of the compound of formula (I); (b) 0.75 wt% of the DSPE-PEG2000; (c) 29.30 wt% of the leucine; and (d) 68.45 wt% of the mannitol.

18. A dry powder composition described in any one of claims 1 to 17, wherein the aerosol form of the dry powder composition consists of particles having a fine particle fraction of 30% to 60% as measured by NGI.

19. The dry powder composition of claim 1, wherein the DSPE-PEG2000 is distearoylphosphatidylethanolamine-polyethylene glycol 2000.

20. The dry powder composition of claim 1, wherein the DSPE-PEG2000 is 1,2-distearoyl-sn-glycero-3-phosphoethanolamine-polyethylene glycol 2000.

Citation Information

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