Lyophilized factor IX preparation
A pre-lyophilized formulation with optimized components and reduced volume addresses the shortfalls of current factor IX treatments, offering faster reconstitution, extended shelf life, and enhanced stability for improved hemophilia B management.
Patent Information
- Application Number
- JP2024033771
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2014-03-24
- Filing Date
- 2024-03-06
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2035-03-24
AI Technical Summary
Current treatments for hemophilia B, caused by factor IX deficiency, face challenges such as short half-life of factor IX concentrates, requiring frequent dosing, and lack of formulations providing prolonged protection from bleeding.
A pre-lyophilized formulation comprising factor IX polypeptide, buffering agents, stabilizers, bulking agents, and surfactants, optimized for reduced reconstitution time, increased shelf life, and improved stability, with a fill volume less than 5 mL, enhancing lyophilization efficiency and stability.
The formulation achieves reduced reconstitution time, extended shelf life, and improved stability of factor IX, providing more effective and safer treatment options for hemophilia B.
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Abstract
Description
[Background technology]
[0001] The present invention relates generally to the field of treatment of hemostatic disorders.
[0002] Hemophilia B (also known as Christmas disease) is one of the most common inherited bleeding disorders worldwide. It results in decreased in vivo and in vitro blood clotting activity and requires extensive medical monitoring throughout the affected individual's life. Without intervention, affected individuals will suffer from spontaneous bleeding in the joints, which leads to severe pain and debilitating immobility; bleeding into muscles, which leads to the accumulation of blood within those tissues; spontaneous bleeding in the throat and neck, which can cause choking if not treated immediately; kidney bleeding; and severe bleeding after surgery, minor accidental trauma, or tooth extraction are also common.
[0003] Normal in vivo blood coagulation requires, at a minimum, the serine proteases factor II (prothrombin), factor VII, factor IX, factor X, and factor XI (water-soluble plasma proteins), with cofactors including the transmembrane protein tissue factor and the plasma proteins factor V and factor VIII, fibrinogen, the transglutaminase factor XIII, phospholipids (including activated platelets), and calcium. Additional proteins, including kallikrein, high-molecular-weight kininogen, and factor XII, are required for some in vitro coagulation tests and may play a role in vivo under pathological conditions.
[0004] In hemophilia, blood clotting is impaired due to a lack of certain blood clotting factors in plasma. Hemophilia B is caused by a deficiency of factor IX, which can result from either decreased synthesis of the factor IX protein or from defective molecules with reduced activity. Hemophilia is treated by replacing the missing clotting factor with exogenous factor concentrates that are highly enriched in factor IX. However, producing such concentrates from blood presents technical challenges, as described below.
[0005] Purification of factor IX from plasma (plasma-derived factor IX; pdFIX) yields almost exclusively active factor IX. However, this purification of factor IX from plasma is extremely difficult because factor IX is present only at low concentrations in plasma (5 μg / mL; Andersson, Thrombosis Research 7: 451-459 (1975)). Furthermore, purification from blood requires the removal or inactivation of infectious agents such as HIV and HCV. In addition, pdFIX has a short half-life and therefore requires frequent dosing. Recombinant factor IX (rFIX) is also available, but it suffers from the same short half-life and similarly requires frequent dosing (e.g., 2-3 times per week for prophylaxis). rFIX also has a lower incremental recovery rate (K value) compared to pdFIX, necessitating the use of higher doses of rFIX than pdFIX.
[0006] Reduction in mortality, prevention of joint damage, and improvement in quality of life are important outcomes of the development of plasma-derived and recombinant factor IX. Prolonged protection from bleeding would represent another important advance in the treatment of subjects with hemophilia B. However, to date, no products have been developed that allow for prolonged protection. Therefore, there remains a need for improved methods of treating hemophilia caused by factor IX deficiency that are safer and more effective than current therapies.
[0007] In particular, there remains a need for improved lyophilized FIX formulations that provide higher drug product strength, longer shelf life, reduced lyophilization process time, and shorter reconstitution times. [Prior art documents] [Non-patent literature]
[0008] [Non-Patent Document 1] Andersson, Thrombosis Research 7: 451 459 (1975) Summary of the Invention [Means for solving the problem]
[0009] The present invention relates to a pre-lyophilized formulation comprising (a) a factor IX (FIX) polypeptide having FIX clotting activity, (b) a buffering agent, (c) a stabilizer, (d) a bulking agent, and (e) a surfactant, wherein the formulation has a fill volume of less than about 5 mL, less than about 4 mL, or less than about 3 mL, each of (a) through (e) being in an amount (mg / vial) per vial sufficient to enable (1) improved stability of the FIX polypeptide during lyophilization, (2) reduced reconstitution time during lyophilization, (3) reduced splashing onto the stopper containing the formulation, (4) reduced lyophilization cycle time, (5) increased shelf life of a lyophilizate prepared from the pre-lyophilized formulation at room temperature, or (6) any combination thereof, compared to a standard pre-lyophilized formulation, wherein the standard formulation contains the same amount of (a) through (e) per vial as the pre-lyophilized formulation and has a fill volume of at least 5 mL. In certain embodiments, the fill volume of the formulation is about 2.65 mL.
[0010] In some embodiments, the pre-lyophilized formulation comprises at least 100 IU / vial of FIX polypeptide, hi some embodiments, the pre-lyophilized formulation comprises about 200 IU / vial to about 10,000 IU / vial of FIX polypeptide.
[0011] In some embodiments, the FIX polypeptide comprises wild-type FIX. In some embodiments, the FIX polypeptide further comprises a heterologous moiety linked to the wild-type FIX. In one embodiment, the heterologous moiety is a moiety that extends the half-life of FIX. In another embodiment, the heterologous moiety comprises a polypeptide or a non-polypeptide moiety. In one embodiment, the moiety that extends the half-life of FIX comprises an FcRn binding partner or an Fc region. In one embodiment, the FIX polypeptide is at least about 80%, at least about 85%, at least about 90%, at least about 95%, or 100% identical to SEQ ID NO:2.
[0012] In some embodiments, the fill volume is about 4 mL, about 3.5 mL, about 3.0 mL, about 2.9 mL, about 2.8 mL, about 2.7 mL, about 2.65 mL, about 2.6 mL, about 2.5 mL, about 2.4 mL, about 2.3 mL, about 2.2 mL, about 2.1 mL, or about 2.0 mL.
[0013] In some embodiments, the reduced reconstitution time is less than 1.5 minutes, less than 1 minute, less than 50 seconds, less than 40 seconds, less than 30 seconds, less than 20 seconds, or less than 10 seconds.
[0014] In some embodiments, the buffering agent is L-histidine. In one embodiment, the buffering agent is at a concentration (mg / mL) between about 3 mg / mL and about 15 mg / mL. In another embodiment, the buffering agent is at a concentration between about 8 mg and about 39 mg per vial.
[0015] In some embodiments, the stabilizer is sucrose. In one embodiment, the stabilizer is at a concentration of between 10 mg / mL and about 50 mg / mL. In another embodiment, the stabilizer is at a concentration of between about 27 mg and about 132 mg per vial.
[0016] In some embodiments, the bulking agent is mannitol. In one embodiment, the bulking agent is at a concentration (mg / mL) between 20 mg / mL and about 100 mg / mL. In another embodiment, the bulking agent is at a concentration between about 53 mg per vial and about 265 mg per vial.
[0017] In some embodiments, the surfactant is polysorbate 20. In one embodiment, the surfactant is at a concentration (mg / mL) between 0.01 mg / mL and about 5 mg / mL. In another embodiment, the surfactant is at a concentration between about 0.03 mg and about 13 mg per vial.
[0018] In one aspect, the present invention relates to a pre-lyophilized formulation comprising: (a) about 80 to about 2,750 IU / mL of rFIXFc; (b) about 7.76 mg / mL of L-histidine; (c) about 47.6 mg / mL of mannitol; (d) about 23.8 mg / mL of sucrose; and (e) about 0.2 mg / mL of polysorbate 20.
[0019] The present invention further relates to a lyophilized powder comprising a FIX polypeptide, a buffer, a stabilizer, a bulking agent, a surfactant, or any combination thereof.
[0020] In some embodiments, the lyophilized powder has a residual moisture level of 1% or less.
[0021] In one embodiment, the lyophilized powder comprises: (a) a FIX polypeptide in an amount between about 2 mg per vial and about 150 mg per vial; (b) a buffering agent in an amount between 10 mg per vial and about 30 mg per vial; (c) a bulking agent in an amount between 70 mg per vial (mg vial) and about 200 mg per vial; (d) a stabilizer in an amount between 30 mg per vial and 100 mg per vial; and (e) a surfactant in an amount between 0.05 mg per vial and about 5 mg per vial.
[0022] In another embodiment, the lyophilized powder comprises (a) lyophilized FIX polypeptide in an amount between about 2.2 mg per vial and about 125 mg per vial, (b) buffering agent in an amount between about 12.5 mg per vial and 25 mg per vial, (c) stabilizer in an amount between about 32.5 mg per vial and 80 mg per vial, (d) bulking agent in an amount between about 75 mg per vial and 150 mg per vial, and (e) surfactant in an amount between about 0.1 mg / mL and about 2 mg / mL.
[0023] In another embodiment, the lyophilized powder comprises (a) about 2.2 to about 125 mg / vial of FIX polypeptide, (b) about 20.6 mg / vial of L-histidine, (c) about 126.1 mg / vial of mannitol, (d) about 63.1 mg / vial of sucrose, and (e) about 0.53 mg / vial of polysorbate 20.
[0024] The present invention also relates to a reconstituted formulation comprising the lyophilized powder described herein reconstituted with a reconstitution buffer.
[0025] In one embodiment, the reconstituted formulation comprises (a) a FIX polypeptide at a concentration between about 0.9 mg / mL and about 50 mg / mL, (b) a buffer at a concentration between 1.5 mg / mL and about 7.5 mg / mL, (c) a bulking agent at a concentration between 10 mg / mL and about 50 mg / mL, (d) a stabilizer at a concentration between 5 mg / mL and 25 mg / mL per vial, and (e) a surfactant at a concentration between 0.005 mg / mL and about 2.5 mg / mL.
[0026] In another embodiment, the reconstituted formulation comprises (a) a FIX polypeptide at a concentration between about 0.9 mg / mL and about 50 mg / mL, (b) a buffer at a concentration of about 3.88 mg / mL, (c) a bulking agent at a concentration of about 23.8 mg / mL, (d) a stabilizer at a concentration of about 11.9 mg / mL, (e) a surfactant at a concentration of about 0.1 mg / mL, and (f) a reconstitution buffer.
[0027] In another embodiment, the reconstituted formulation comprises (a) a FIX polypeptide at a concentration between about 80 IU / mL and about 2,750 IU / mL, (b) a buffer at a concentration of about 25 mM, (c) a bulking agent at a concentration of about 131 mM, (d) a stabilizer at a concentration of about 35 mM, (e) a surfactant at a concentration of 0.01% (w / v), and (f) a reconstitution buffer.
[0028] The present invention further relates to a method of administering a FIX polypeptide to a patient with hemophilia B in need thereof, or a method of preventing, treating, ameliorating, or managing hemophilia B in a patient in need thereof, comprising administering to the patient a reconstituted formulation described herein.
[0029] The present invention also relates to a method for producing a lyophilized powder comprising a FIX polypeptide, comprising lyophilizing a pre-lyophilized formulation described herein.
[0030] In one aspect, the present invention relates to a method for lyophilizing a FIX polypeptide, the method comprising: (a) a "freezing step" comprising freezing a pre-lyophilized formulation comprising a FIX polypeptide and an aqueous solvent; (b) a "vacuum step" comprising reducing the pressure of the frozen pre-lyophilized formulation by an amount effective to remove the aqueous solvent from the frozen pre-lyophilized formulation; and (c) a single "drying step" comprising increasing the temperature of the frozen pre-lyophilized formulation above its collapse temperature, thereby producing a lyophilized powder. In some embodiments, the pre-lyophilized formulation is sterile filtered and sterile filled into vials prior to step (a).
[0031] In another embodiment, the present invention provides a method for freezing a pre-lyophilized formulation comprising: (a) a "freezing step" comprising freezing a pre-lyophilized formulation comprising a FIX polypeptide by lowering the temperature to a freezing temperature of about -55°C for about 2 hours and holding the freezing temperature for about 2 hours; (a') an "annealing step" comprising raising the temperature of the frozen pre-lyophilized formulation of step (a) to an annealing temperature of about -6°C for about 1.5 hours, holding the annealing temperature for about 3 hours, and lowering the temperature to about -55°C for about 1.5 hours; (b) freezing the frozen pre-lyophilized formulation of step (a') by: and (c) a single "drying step" comprising: (a) maintaining the temperature of the frozen pre-lyophilized formulation of step (b) to about 40°C for 3 hours while maintaining the pressure at about 0.33 mbar; and (b) maintaining the temperature of the frozen pre-lyophilized formulation at about 40°C for 25 hours while maintaining the pressure at about 0.33 mbar, thereby producing a lyophilized powder.
[0032] In further aspects, the lyophilized powder has one or more characteristics selected from the group consisting of: (1) improved stability of the FIX polypeptide upon lyophilization; (2) reduced reconstitution time upon lyophilization; (3) reduced splash onto the stopper, including the formulation; (4) reduced lyophilization cycle time; (5) increased shelf life of the lyophilizate prepared from the pre-lyophilized formulation at room temperature; or (6) any combination thereof.
[0033] In one aspect, the present disclosure provides a method of stabilizing a lyophilized powder comprising a FIX peptide, comprising lyophilizing a pre-lyophilization formulation according to the methods described herein, wherein for lyophilized powders prepared using lyophilization methods comprising multiple drying steps, the lyophilized powder is stabilized as measured by size exclusion chromatography (SEC).
[0034] In another aspect, the present disclosure provides a method for increasing the shelf life of a lyophilized powder comprising a FIX polypeptide, comprising lyophilizing a pre-lyophilized formulation according to the methods described herein, wherein the shelf life of the lyophilized powder prepared using a lyophilization method comprising multiple drying steps is increased as measured by SEC and / or FIX clotting activity assays.
[0035] The present disclosure also provides a method of reducing the reconstitution time of a lyophilized powder comprising a FIX polypeptide, comprising lyophilizing a pre-lyophilized formulation according to the methods described herein, wherein the reconstitution time of the lyophilized powder is reduced relative to the reconstitution time of a lyophilized powder prepared by using a lyophilization method comprising multiple drying steps.
[0036] The present disclosure further provides a method of reducing the lyophilization process time of making a lyophilized powder comprising a FIX polypeptide, comprising lyophilizing a pre-lyophilized formulation according to the methods described herein, wherein the lyophilization process time of the pre-lyophilized formulation is reduced relative to the lyophilization process time of making a lyophilized powder using a lyophilization method comprising multiple drying steps. In an embodiment of the present invention, for example, the following items are provided: (Item 1) 1. A pre-lyophilized formulation comprising: (a) a factor IX (FIX) polypeptide having FIX clotting activity; (b) buffering agents; (c) stabilizers; (d) fillers, and (e) surfactants, Including, the formulation has a fill volume of less than about 5 mL, less than about 4 mL, or less than about 3 mL, and each of (a) through (e) is, compared to a standard pre-lyophilized formulation: (1) improving the stability of the FIX polypeptide upon lyophilization; (2) Reduced reconstitution time during freeze-drying; (3) reducing splashing onto stoppers containing the formulation; (4) reduced freeze-drying cycle time; (5) increasing the shelf life of a lyophilisate prepared from said pre-lyophilised formulation at room temperature; or (6) any combination thereof; and the amount per vial (mg / vial) is sufficient to allow The pre-lyophilized formulation, wherein the standard formulation contains the same amounts of (a) to (e) per vial as the pre-lyophilized formulation and has a filling volume of 5 mL. (Item 2) 2. The pre-lyophilized formulation of item 1, wherein the fill volume is about 4 mL, about 3.5 mL, about 3.0 mL, about 2.9 mL, about 2.8 mL, about 2.7 mL, about 2.65 mL, about 2.6 mL, about 2.5 mL, about 2.4 mL, about 2.3 mL, about 2.2 mL, about 2.1 mL, or about 2.0 mL. (Item 3) 3. The pre-lyophilized formulation of item 1 or 2, wherein the fill volume is about 2.65 mL. (Item 4) 4. The pre-lyophilized formulation of any one of items 1 to 3, wherein the reduced reconstitution time is less than 1.5 minutes, less than 1 minute, less than 50 seconds, less than 40 seconds, less than 30 seconds, less than 20 seconds, or less than 10 seconds. (Item 5) 5. The pre-lyophilized formulation of any one of items 1 to 4, wherein the reduced reconstitution time is less than 30 seconds. (Item 6) 6. The pre-lyophilized formulation of any one of items 1 to 5, wherein the reduced lyophilization cycle time is about 4 days or less, about 3 days or less, about 2 days or less, or about 1 day or less. (Item 7) 7. The pre-lyophilized formulation according to any one of items 1 to 6, wherein the buffering agent is L-histidine. (Item 8) 8. The pre-lyophilized formulation according to any one of items 1 to 7, wherein the stabilizer is sucrose. (Item 9) 9. The pre-lyophilized formulation according to any one of items 1 to 8, wherein the bulking agent is mannitol. (Item 10) 10. The pre-lyophilized formulation according to any one of items 1 to 9, wherein the surfactant is polysorbate 20. (Item 11) 11. The pre-lyophilized formulation according to any one of items 1 to 10, wherein the formulation comprises at least 100 IU / vial of the FIX polypeptide. (Item 12) 12. The pre-lyophilized formulation according to any one of items 1 to 11, wherein the formulation comprises about 200 IU / vial to about 10,000 IU / vial of the FIX polypeptide. (Item 13) The FIX polypeptide is about 220 IU / vial, about 250 IU / vial, about 300 IU / vial, about 400 IU / vial, about 500 IU / vial, about 600 IU / vial, about 700 IU / vial, about 800 IU / vial, about 900 IU / vial, about 1,000 IU / vial, about 1,100 IU / vial, about 1,200 IU / vial, about 1,300 IU / vial, about 1,400 IU / vial, about 1,500 IU / vial, about 2,000 IU / vial, about 2,500 IU / vial, about 3,000 IU / vial, about 4,000 IU / vial, about 5,000 IU / vial, about 6,000 IU / vial, about 7,000 IU / vial, about 8,000 IU / vial, about 9,000 IU / vial, about 10,000 IU / vial, about 11,000 IU / vial, about 12,000 IU / vial, about 13,000 IU / vial, about 14,000 IU / vial, about 15,000 IU / vial, about 16,000 IU / vial, about 17,000 IU / vial, about 18,000 IU / vial, about 19,000 IU / vial, about 21,000 IU / vial, about 22,000 IU / vial, about 25,000 IU / vial, about 26,000 IU / vial, about 27,000 IU / vial, about 13. The pre-lyophilized formulation of any one of items 1 to 12, comprising about 100 IU / vial, about 3,000 IU / vial, about 4,000 IU / vial, about 5,000 IU / vial, about 5,500 IU / vial, about 6,000 IU / vial, about 6,500 IU / vial, about 7,000 IU / vial, about 7,500 IU / vial, about 8,000 IU / vial, about 8,500 IU / vial, about 9,000 IU / vial, about 9,500 IU / vial, or about 10,000 IU / vial. (Item 14) 14. The pre-lyophilized formulation according to any one of items 1 to 13, wherein the buffering agent is at a concentration (mg / mL) between about 3 mg / mL and about 15 mg / mL. (Item 15) 15. The pre-lyophilized formulation according to any one of items 1 to 14, wherein the buffering agent is at a concentration (mg / mL) between about 3.88 mg / mL and about 9.7 mg / mL. (Item 16) 16. The pre-lyophilized formulation according to any one of items 1 to 15, wherein the buffering agent is at a concentration (mg / mL) of about 7.76 mg / mL. (Item 17) 17. The pre-lyophilized formulation according to any one of items 1 to 16, wherein the stabilizer is at a concentration (mg / mL) between 10 mg / mL and about 50 mg / mL. (Item 18) 18. The pre-lyophilized formulation according to any one of items 1 to 17, wherein the stabilizer is at a concentration (mg / mL) between about 17.85 mg / mL and about 29.95 mg / mL. (Item 19) 19. The pre-lyophilized formulation according to any one of items 1 to 18, wherein the stabilizer is at a concentration (mg / mL) of about 23.8 mg / mL. (Item 20) 20. The pre-lyophilized formulation according to any one of items 1 to 19, wherein the bulking agent is at a concentration (mg / mL) between 20 mg / mL and about 100 mg / mL. (Item 21) 21. The pre-lyophilized formulation according to any one of items 1 to 20, wherein the bulking agent is at a concentration (mg / mL) between 35.7 mg / mL and 59.5 mg / mL. (Item 22) 22. The pre-lyophilized formulation according to any one of items 1 to 21, wherein the bulking agent is at a concentration (mg / mL) of 47.6 mg / mL. (Item 23) 23. The pre-lyophilized formulation according to any one of items 1 to 22, wherein the surfactant is at a concentration (mg / mL) between 0.01 mg / mL and about 5 mg / mL. (Item 24) 24. The pre-lyophilized formulation of item 23, wherein the surfactant is at a concentration (mg / mL) of 0.2 mg / mL. (Item 25) 25. The pre-lyophilized formulation of any one of items 1 to 24, wherein the FIX polypeptide has a concentration (IU / mL) of between about 80 IU / mL and about 2,750 IU / mL. (Item 26) 1. A pre-lyophilized formulation comprising: (a) about 80 to about 2,750 IU / mL of rFIXFc; (b) about 7.76 mg / mL L-histidine; (c) about 47.6 mg / mL mannitol; (d) about 23.8 mg / mL sucrose, and (e) about 0.2 mg / mL polysorbate 20; The pre-lyophilized formulation comprising: (Item 27) 27. The pre-lyophilized formulation of item 26, wherein the formulation has a fill volume per vial of about 3 mL, about 2.9 mL, about 2.8 mL, about 2.7 mL, about 2.65 mL, about 2.6 mL, about 2.5 mL, about 2.4 mL, about 2.3 mL, about 2.2 mL, about 2.1 mL, or about 2.0 mL. (Item 28) 28. The pre-lyophilized formulation of item 27, wherein the formulation has a fill volume per vial of about 2.65 mL. (Item 29) 29. A lyophilized powder lyophilized from the pre-lyophilization formulation according to any one of items 1 to 28. (Item 30) 30. The lyophilized powder of item 29 having a residual moisture concentration of less than 1%. (Item 31) 31. The lyophilized powder of item 29 or 30, comprising a buffer, a stabilizer, a bulking agent, a surfactant, or any combination thereof. (Item 32) 32. The lyophilized powder of item 31, wherein the buffering agent is L-histidine. (Item 33) 32. The lyophilized powder according to claim 31, wherein the stabilizer is sucrose. (Item 34) 32. The lyophilized powder of item 31, wherein the surfactant is polysorbate 20. (Item 35) 35. The lyophilized powder of any one of items 31 to 34, wherein the buffering agent is at a concentration of between about 8 mg and about 39 mg per vial. (Item 36) 36. The lyophilized powder of item 35, wherein the buffering agent is at a concentration of about 20.6 mg per vial. (Item 37) 37. The lyophilized powder of any one of items 31 to 36, wherein the stabilizer is at a concentration of between about 27 mg and about 132 mg per vial. (Item 38) 38. The lyophilized powder of item 37, wherein the stabilizer is at a concentration of about 63.1 mg per vial. (Item 39) 39. The lyophilized powder of any one of items 31 to 38, wherein the bulking agent is at a concentration of between about 53 mg per vial and about 265 mg per vial. (Item 40) 40. The lyophilized powder of item 39, wherein the bulking agent is at a concentration of about 126.1 mg per vial. (Item 41) 41. The lyophilized powder of any one of items 31 to 40, wherein the surfactant is at a concentration of between about 0.03 mg and about 13 mg per vial. (Item 42) 42. The lyophilized powder of item 41, wherein the surfactant is at a concentration of about 0.53 mg per vial. (Item 43) 1. A lyophilized powder comprising: (a) a FIX polypeptide in an amount between about 2 mg per vial and about 150 mg per vial; (b) a buffering agent in an amount between 10 mg per vial and about 30 mg per vial; (c) a filler in an amount between 70 milligrams per vial (mg vial) and about 200 mg per vial; (d) a stabilizer in an amount between 30 mg per vial and 100 mg per vial; and (e) a surfactant in an amount between 0.05 mg per vial and about 5 mg per vial; The freeze-dried powder comprising: (Item 44) (a) the lyophilized FIX polypeptide in an amount between about 2.2 mg per vial and about 125 mg per vial; (b) said buffering agent in an amount between about 12.5 mg per vial and 25 mg per vial; (c) said stabilizer in an amount between about 32.5 mg per vial and 80 mg per vial; (d) said filler in an amount between about 75 mg per vial and 150 mg per vial; and (e) the surfactant in an amount between about 0.1 mg / mL and about 2 mg / mL; 44. The lyophilized powder according to item 43, comprising (Item 45) (a) about 2.2 to about 125 mg / vial of the FIX polypeptide; (b) approximately 20.6 mg / vial of L-histidine; (c) approximately 126.1 mg / vial of mannitol; (d) about 63.1 mg / vial of sucrose, and (e) approximately 0.53 mg / vial of polysorbate-20; 45. The lyophilized powder according to item 44, comprising (Item 46) 46. A reconstituted formulation comprising the lyophilate power of any one of items 29 to 45, reconstituted with a reconstitution buffer. (Item 47) 47. The reconstituted formulation of item 46, used to treat hemophilia B. (Item 48) 48. A reconstituted formulation according to item 46 or 47, suitable for parenteral administration. (Item 49) Item 50. The reconstituted formulation of Item 48, wherein the parenteral administration is intravenous or subcutaneous. (a) the FIX polypeptide at a concentration between about 0.9 mg / mL and about 50 mg / mL; (b) the buffering agent at a concentration between 1.5 mg / mL and about 7.5 mg / mL; (c) the filler at a concentration between 10 mg / mL and about 50 mg / mL; (d) said stabilizer at a concentration between 5 mg / mL and 25 mg / mL per vial; and (e) the surfactant at a concentration between 0.005 mg / mL and about 2.5 mg / mL; 50. The reconstituted formulation of any one of items 47 to 49, comprising (Item 51) (a) the FIX polypeptide at a concentration between about 0.9 mg / mL and about 50 mg / mL; (b) the buffering agent at a concentration of about 3.88 mg / mL; (c) the filler at a concentration of about 23.8 mg / mL; (d) the stabilizer at a concentration of about 11.9 mg / mL; (e) the surfactant at a concentration of about 0.1 mg / mL, and (f) the reconstitution buffer; 51. The reconstituted formulation of item 50, comprising: (Item 52) (a) the FIX polypeptide at a concentration between about 80 IU / mL and about 2,750 IU / mL; (b) said buffering agent at a concentration of about 25 mM; (c) the filler at a concentration of about 131 mM; (d) said stabilizer at a concentration of about 35 mM; (e) the surfactant at a concentration of 0.01% (w / v), and (f) the reconstitution buffer; 50. The reconstituted formulation of item 49, comprising (Item 53) A vial comprising the pre-lyophilized formulation according to any one of items 1 to 28, the lyophilized powder according to any one of items 29 to 45, or the reconstituted formulation according to any one of items 46 to 52. (Item 54) 52. The pre-lyophilized formulation of any one of items 1 to 28, the lyophilate powder of any one of items 29 to 45, the reconstituted formulation of any one of items 46 to 52, or the vial of item 53, wherein the FIX polypeptide comprises wild-type FIX. (Item 55) 52. The pre-lyophilized formulation of any one of items 1 to 28, the lyophilized powder of any one of items 29 to 45, the reconstituted formulation of any one of items 46 to 52, or the vial of item 53, wherein the FIX polypeptide further comprises a heterologous moiety conjugated to wild-type FIX. (Item 56) The pre-lyophilized formulation according to any one of items 1 to 28, the lyophilized powder according to any one of items 29 to 45, the reconstituted formulation according to any one of items 46 to 52, or the vial according to item 53, wherein the heterologous moiety is a moiety that extends the half-life of FIX. (Item 57) The pre-lyophilized formulation according to any one of items 1 to 28, the lyophilate power according to any one of items 29 to 45, the reconstituted formulation according to any one of items 46 to 52, or the vial according to item 53, wherein the heterologous moiety comprises a polypeptide or a non-polypeptide moiety. formulation of 46 to 52, or the vial of 53). (Item 58) The pre-lyophilized formulation according to any one of items 1 to 28, the lyophilized powder according to any one of items 29 to 45, the reconstituted formulation according to any one of items 46 to 52, or the vial according to item 53, wherein the moiety that extends the half-life of FIX comprises an FcRn binding partner or an Fc region. reconstituted formulation of 46 to 52, or the vial of 53). (Item 59) The pre-lyophilized formulation of any one of items 1 to 28, the lyophilate powder of any one of items 29 to 45, the reconstituted formulation of any one of items 46 to 52, or the vial of item 53, wherein the FIX polypeptide is at least about 80%, at least about 85%, at least about 90%, at least about 95%, or 100% identical to SEQ ID NO:2. of 53). (Item 60) 46. A kit comprising a first container containing the lyophilized powder (lyophilate power) according to any one of items 29 to 45, and a second container containing a reconstitution buffer in an amount sufficient to make, when combined with the lyophilized formulation in the first container, (Item 61) 61. The kit according to item 60, used for treating hemophilia B. (Item 62) 62. The kit of item 60 or 61, wherein the reconstitution buffer comprises NaCl. (Item 63) 52. A method of administering a FIX polypeptide to a patient with hemophilia B in need thereof, the method comprising ... 52) The method comprising administering the reconstituted formulation to a patient, wherein said administration prevents or reduces the frequency or severity of bleeding episodes in the patient. (Item 64) 53. A method for preventing, treating, ameliorating, or managing hemophilia B in a patient in need thereof by administering the reconstituted formulation of any one of items 46 to 52. (Item 65) 29. A method for producing a lyophilized powder comprising a FIX polypeptide, the method comprising lyophilizing the pre-lyophilization formulation according to any one of items 1 to 28. (Item 66) (a) a "freezing step" comprising freezing a pre-lyophilized formulation comprising the FIX polypeptide and an aqueous solvent; (b) a "vacuum step" comprising reducing the pressure of the frozen pre-lyophilized formulation by an amount effective to remove the aqueous solvent from the frozen pre-lyophilized formulation; and (c) a single "drying step" comprising increasing the temperature of the frozen pre-lyophilized formulation above the collapse temperature, thereby producing a lyophilized powder; A method for freeze-drying a FIX polypeptide, comprising: (Item 67) 67. The method of claim 66, wherein the collapse temperature is about −1.5° C. (Item 68) Item 68. The method according to item 66 or 67, wherein the pre-lyophilized formulation is frozen at a freezing temperature of about −65 to about −40° C. during the freezing step. (Item 69) 69. The method according to any one of items 66 to 68, wherein the pre-lyophilized formulation is frozen at a freezing temperature of about −55° C. during the freezing step. (Item 70) 70. The method according to any one of items 66 to 69, wherein the freezing temperature is reduced from about 5°C to about -55°C during the freezing step. (Item 71) 71. The method according to any one of items 66 to 70, wherein the freezing temperature is maintained for from about 30 minutes to about 5 hours during the freezing step. (Item 72) 72. The method according to any one of items 66 to 71, wherein the freezing temperature is maintained for about 2 hours during the freezing step. (Item 73) 73. The method according to any one of items 66 to 72, wherein the frozen pre-lyophilized formulation of step (a) is further subjected to an "annealing step" (a') before the "vacuum step" (b). (Item 74) Item 74. The method of item 73, wherein the temperature of the frozen pre-lyophilized formulation of step (a) is raised to an annealing temperature of about −15° C. to about −2° C. during the annealing step. (Item 75) 75. The method of claim 74, wherein the temperature of the frozen pre-lyophilized formulation of step (a) is raised to an annealing temperature of about −6° C. during the annealing step. (Item 76) 76. The method according to any one of items 73 to 75, wherein the annealing temperature is maintained for about 30 minutes to about 5 hours during the annealing step. (Item 77) Item 77. The method of item 76, wherein the annealing temperature is maintained for about 3 hours during the annealing step. (Item 78) 78. The method of any one of items 73 to 77, wherein the temperature of the frozen pre-lyophilized formulation is reduced from the annealing temperature to a temperature of about -65°C to about -40°C during the annealing step. (Item 79) 79. The method of claim 78, wherein the temperature of the frozen pre-lyophilized formulation is reduced from the annealing temperature to a temperature of −55° C. during the annealing step. (Item 80) 80. The method according to any one of items 66 to 79, wherein the "vacuum step" comprises subjecting the frozen pre-lyophilized formulation to a vacuum of between about 0.05 and about 1 mbar. (Item 81) Item 82. The method according to Item 80, wherein the vacuum in the "vacuum step" is about 0.33 mbar. 82. The method according to any one of items 66 to 81, wherein the vacuum is maintained in the "vacuum step" for about 2 hours. (Item 83) 83. The method according to any one of items 66 to 82, wherein the "drying step" comprises increasing the temperature of the frozen pre-lyophilized formulation to a drying temperature of about -55°C to about 40°C. (Item 84) 84. The method according to any one of items 66 to 83, wherein the drying step further comprises maintaining the drying temperature for about 10 hours to about 40 hours. (Item 85) Item 85. The method of item 84, wherein the drying temperature is maintained for about 25 hours. (Item 86) 86. The method according to any one of items 66 to 85, wherein the drying step is carried out at a pressure of from about 0.05 mbar to about 1 mbar. (Item 87) 87. The method of claim 86, wherein the pressure is maintained at about 0.33 mbar during the drying step. (Item 88) 1. A method of making a lyophilized powder comprising a FIX polypeptide, comprising: (a) a "freezing step" comprising freezing the pre-lyophilized formulation comprising the FIX polypeptide by lowering the temperature to a freezing temperature of about -55°C for about 2 hours and maintaining the freezing temperature for about 2 hours; (a') an "annealing step" comprising raising the temperature of the frozen pre-lyophilized formulation of step (a) to an annealing temperature of about -6°C for about 1.5 hours, holding the annealing temperature for about 3 hours, and lowering the temperature to about -55°C for about 1.5 hours; (b) a "vacuum step" comprising holding the frozen pre-lyophilized formulation of step (a') at about -55°C for 2 hours at ambient pressure and reducing the pressure to about 0.33 mbar for about 2 hours; and (c) a single "drying step" comprising: raising the temperature of the frozen pre-lyophilized formulation of step (b) to about 40°C for 3 hours while maintaining the pressure at about 0.33 mbar; and holding the temperature of the frozen pre-lyophilized formulation at about 40°C for about 25 hours while maintaining the pressure at about 0.33 mbar, thereby producing a lyophilized powder; The method comprising: (Item 89) 89. The method according to any one of items 66 to 88, wherein the pre-lyophilized formulation is the formulation according to any one of items 1 to 28. (Item 90) The freeze-dried powder is (1) improving the stability of the FIX polypeptide upon lyophilization; (2) Reduced reconstitution time during freeze-drying; (3) reducing splashing onto stoppers containing the formulation; (4) reduced freeze-drying cycle time; (5) increasing the shelf life of a lyophilisate prepared from said pre-lyophilised formulation at room temperature; or (6) any combination thereof; 89. The method according to any one of items 65 to 89, having one or more features selected from the group consisting of: (Item 91) 91. The method according to any one of items 65 to 90, wherein the pre-lyophilized formulation has a fill volume of less than 5 mL. (Item 92) 92. The method of claim 91, wherein the fill volume of the pre-lyophilized formulation is about 4 mL, about 3.5 mL, about 3.0 mL, about 2.9 mL, about 2.8 mL, about 2.7 mL, about 2.65 mL, about 2.6 mL, about 2.5 mL, about 2.4 mL, about 2.3 mL, about 2.2 mL, about 2.1 mL, or about 2.0 mL. (Item 93) 93. The method of claim 91 or 92, wherein the fill volume of the pre-lyophilized formulation is about 2.65 mL. (Item 94) 94. The method of any one of items 90 to 93, wherein the reduced reconstitution time is less than 1.5 minutes, less than 1 minute, less than 50 seconds, less than 40 seconds, less than 30 seconds, less than 20 seconds, or less than 10 seconds. (Item 95) 95. The method of any one of items 90 to 94, wherein the reduced reconstitution time is less than 30 seconds. (Item 96) 96. The method of any one of items 90-95, wherein the reduced lyophilization cycle time is about 4 days or less, about 3 days or less, about 2 days or less, or about 1 day or less. (Item 97) 97. The method according to any one of items 66 to 96, wherein the pre-lyophilized formulation is sterile filtered and sterile filled into vials prior to step (a). (Item 98) 98. The method of any one of items 65 to 97, wherein the lyophilized powder is produced from the pre-lyophilized formulation in about 45 hours or less. (Item 99) 99. The method according to any one of items 65 to 98, wherein the residual moisture in the lyophilized powder is less than 0.7%. (Item 100) 99. The method according to any one of items 65 to 99, wherein the residual moisture in the lyophilized powder is about 0.5%. (Item 101) 101. A method for stabilizing a lyophilized powder comprising a FIX polypeptide, comprising lyophilizing a pre-lyophilization formulation according to the method of any one of items 65 to 100, wherein for the lyophilized powder prepared using a lyophilization method comprising multiple drying steps, the lyophilized powder is stabilized as measured by size exclusion chromatography (SEC). (Item 102) 101. A method for increasing the shelf life of a lyophilized powder comprising a FIX polypeptide, comprising lyophilizing a pre-lyophilized formulation according to the method of any one of items 65 to 100, wherein the shelf life of the lyophilized powder prepared using a lyophilization method comprising multiple drying steps is increased as measured by SEC and / or FIX clotting activity assay. (Item 103) 101. A method for reducing the reconstitution time of a lyophilized powder comprising a FIX polypeptide, the method comprising lyophilizing a pre-lyophilized formulation according to the method of any one of items 65 to 100, wherein the reconstitution time of the lyophilized powder is reduced relative to the reconstitution time of a lyophilized powder prepared by using a lyophilization method comprising multiple drying steps. (Item 104) 101. A method for reducing a lyophilization process time for producing a lyophilized powder comprising a FIX polypeptide, the method comprising lyophilizing a pre-lyophilized formulation according to the method of any one of Items 65 to 100, wherein the lyophilization process time for the pre-lyophilized formulation is reduced for a lyophilization process producing a lyophilized powder using a lyophilization method comprising multiple drying steps. [Brief explanation of the drawings]
[0037] [Figure 1] The vial loading pattern for each lyophilization cycle is shown. Numbers 1, 2, and 3 indicate the thermocouple locations. [Figure 2] 1 shows predicted profilers from a DOE analysis of residual moisture as a function of freeze-drying parameters—temperature, vacuum, and time. [Figure 3] 1 shows predicted profilers from a DOE analysis of product temperature during sublimation as a function of freeze-drying parameters—temperature and vacuum. [Figure 4] 1 shows predicted profilers from DOE analysis of vial mass flow during sublimation as a function of freeze-drying parameters—temperature and vacuum conditions. [Figure 5] 1 shows lyophilization data from DOE Run 8 of Example 2 (40° C. shelf temperature, 250 mTorr (0.33 mBar) chamber vacuum, and 25 hours drying time) similar to the proposed rFIXFc-2G lyophilization cycle. DETAILED DESCRIPTION OF THE INVENTION
[0038] The present disclosure provides, inter alia, pre-lyophilized formulations, reconstituted formulations, and lyophilized powder compositions comprising a factor IX (FIX) polypeptide. The present disclosure also provides lyophilization methods for producing lyophilized powders comprising a FIX polypeptide. Also provided are methods for stabilizing lyophilized powders comprising a FIX polypeptide, increasing the shelf life of lyophilized powders comprising a FIX polypeptide, reducing the reconstitution time of lyophilized powders comprising a FIX polypeptide, and reducing the lyophilization process time of pre-lyophilized formulations comprising a FIX polypeptide. Additionally, the present disclosure provides methods for preventing, treating, ameliorating, or managing hemophilia B in patients in need thereof by administering a reconstituted formulation comprising a FIX polypeptide.
[0039] definition It is understood that, in this disclosure, the terms "a" or "an" refer to one or more of that thing, e.g., "a polynucleotide" refers to one or more polynucleotides. As such, the terms "a" (or "an"), "one or more," and "at least one" can be used interchangeably herein.
[0040] Furthermore, when used herein, "and / or" should be construed as a specific disclosure of each of two particular features or components, with or without the other. Thus, the term "and / or" used herein in phrases such as "A and / or B" is intended to include "A and B," "A or B," "A" (alone), and "B" (alone). Similarly, the term "and / or" used in phrases such as "A, B, and / or C" is intended to encompass each of the following aspects: A, B, and C; A, B, or C; A or C; A or B; B, or C; A and C; A and B; B and C; A (alone); B (alone); and C (alone).
[0041] Where an embodiment is described herein with the phrase "comprising," it is understood that similar embodiments separately described with the terms "consisting of" and / or "consisting essentially of" are also provided.
[0042] Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure pertains. Dictionary of Biomedicine and Molecular The Dictionary of Cell and Molecular Biology, Juo, Pei-Show, 2nd Edition, 2002, CRC Press; The Dictionary of Cell and Molecular Biology, 3rd Edition, 1999, Academic Press; and the Oxford Dictionary of Biochemistry And Molecular Biology, Revised, 2000, Oxford University Press, provide those of skill in the art with a general dictionary of many of the terms used in this disclosure.
[0043] Units, prefixes, and symbols are expressed in the format accepted by the System International de Unites (SI). Numerical ranges are inclusive of the numbers defining the range. Unless otherwise indicated, amino acid sequences are written left to right in amino to carboxy orientation. The headings provided herein are not intended to limit the various aspects of this disclosure, which can be had by reference to the specification as a whole. Accordingly, the terms defined immediately below are more fully defined by reference to the specification as a whole.
[0044] The term "about" is used herein to mean approximately, roughly, around, or in the regions of, where the values will be determined to some extent by the limitations of the measurement system. When used in conjunction with a numerical range, the term "about" modifies that range by extending the boundaries above and below the set numerical values. In general, the term "about" can modify a numerical value above and below the stated value, for example, by a variance of 10 percent or 20 percent above or below (higher or lower). Unless otherwise specified, the meaning of "about" should be considered within the acceptable error range for a particular value for a formulation or composition.
[0045] The terms "polypeptide," "peptide," and "protein" are used interchangeably to refer to polymeric compounds made of covalently linked amino acid residues.
[0046] The terms "polynucleotide" and "nucleic acid" are used interchangeably to refer to a polymeric compound composed of covalently linked nucleotide residues. A polynucleotide can be DNA, cDNA, RNA, single-stranded or double-stranded, a vector, a plasmid, a phage, or a virus.
[0047] The term "administering" as used herein means, for example, prescribing or giving a pharmaceutical composition comprising a FIX polypeptide to a subject. Examples of routes of administration include, but are not limited to, intravenous, e.g., intravenous injection and intravenous infusion, e.g., via central venous access. Additional routes of administration include subcutaneous, intramuscular, oral, nasal, and pulmonary administration. Pharmaceutical compositions comprising a FIX polypeptide can include one or more excipients as described herein. Advantages of the methods, compositions, and pharmaceutical kits provided herein include improved regimen compliance, reduced breakthrough bleeding, increased protection from joint bleeding, prevention of joint damage, reduced morbidity, reduced mortality, extended protection from bleeding, reduced thrombotic events, and improved quality of life. Administering includes parenteral administration. In some embodiments, parenteral administration is intravenous or subcutaneous administration.
[0048] As used herein, the term "treatment" or "treating" refers to the amelioration or reduction of one or more symptoms of a bleeding disease or disorder, including, but not limited to, hemophilia B. In one embodiment, "treatment" or "treating" of a bleeding disease or disorder includes preventing one or more symptoms of the bleeding disease or disorder. In bleeding diseases or disorders caused by FIX deficiency (e.g., low baseline FIX activity), the term "treatment" or "treating" can refer to FIX replacement therapy. By administering a FIXFc polypeptide to a subject, the subject can achieve and / or maintain a plasma trough concentration of FIX activity of about 1 IU / dL or greater than 1 IU / dL. In other embodiments, "treatment" or "treating" refers to a reduction in the frequency of one or more symptoms of a bleeding disease or disorder, e.g., spontaneous or uncontrollable bleeding episodes. However, "treatment" need not be a cure.
[0049] As used herein, a "patient" includes individuals who are known to experience at least one uncontrolled bleeding episode, have been diagnosed with a disease or disorder associated with uncontrolled bleeding episodes, e.g., a bleeding disease or disorder, e.g., hemophilia B, are susceptible to uncontrolled bleeding episodes, e.g., hemophilia, or any combination thereof. Patients can also include individuals who are at risk of one or more uncontrolled bleeding episodes before a particular activity, e.g., surgery, sporting activity, or any strenuous activity. Patients can have baseline FIX activity of less than 1%, less than 0.5%, less than 2%, less than 2.5%, less than 3%, or less than 4%. Patients also include children. Pediatric patients are birth to 20 years of age, preferably birth to 18 years of age, birth to 16 years of age, birth to 15 years of age, birth to 12 years of age, birth to 11 years of age, birth to 6 years of age, birth to 5 years of age, birth to 2 years of age, and 2 to 11 years of age.
[0050] As used herein, a "baseline" is the lowest plasma factor IX concentration measured in a subject before administration of a dose. Factor IX plasma concentrations can be measured at two pre-dose time points: at a screening visit and immediately prior to administration. Alternatively, (a) the baseline for subjects with pre-treatment FIX activity <1%, no detectable FIX antigen, and a nonsense genotype can be defined as 0%; (b) the baseline for subjects with pre-treatment FIX activity <1% and detectable FIX antigen can be set at 0.5%; (c) the baseline for subjects with pre-treatment FIX activity between 1 and 2% is Cmin (the lowest activity across the PK study); and (d) the baseline for subjects with pre-treatment FIX activity ≥ 2% can be set at 2%. Activity above the pre-dose baseline can be considered residual drug from previous treatment, which can decline to baseline and be subtracted from the PK data following rFIXFBP administration.
[0051] As used herein, "trough" refers to the lowest plasma factor IX activity level reached after administration of a dose of a chimeric polypeptide of the invention or another factor IX molecule and before the next dose, if any, is administered. Trough is used interchangeably herein with "threshold." The baseline factor IX concentration is subtracted from the measured factor IX concentration to calculate the trough concentration.
[0052] As used herein, the term "half-life" refers to the biological half-life of a particular polypeptide in vivo. Half-life can be expressed as the time required for half of the dose administered to a patient to be cleared from the circulation and / or other tissues of the animal.
[0053] The terms "long-acting" and "long-lasting" are used interchangeably herein. In one embodiment, the term "long-acting" or "long-lasting" refers to FIX activity resulting from administration of an rFIXFBP polypeptide that is longer than the FIX activity of wild-type FIX (e.g., BENEFIX® or plasma-derived FIX ("pdFIX")). "Longer" FIX activity can be measured by any method known in the art, such as an aPTT assay, a chromogenic assay, ROTEM, TGA, etc. In one embodiment, "longer" FIX activity is measured by T 1 / 2ベータ In another embodiment, "longer" FIX activity can be expressed as a function of the concentration of FIX antigen present in plasma, e.g., T 1 / 2ベータ (antigen) can be used to predict the disease.
[0054] As used herein, the terms "lyophilisate", "lyophilised powder", "lyophilised product" or "product solid" refer to a formulation produced by freeze-drying. The solvent (e.g., water) is removed by sublimation under vacuum followed by freezing and desorption of residual water at high temperature. In the pharmaceutical field, lyophilisates exist as powders or physically stable solids. Lyophilisates are characterized by rapid dissolution after the addition of a reconstitution solvent.
[0055] As used herein, the term "pre-lyophilized formulation" or "lyophilized material" refers to a liquid formulation before the solvent (e.g., water) is removed by freeze-drying. The "fill volume" of a pre-lyophilized formulation is the total volume of the liquid formulation before lyophilization.
[0056] As used herein, "T 1 / 2β " or "T 1 / 2ベータ " or "beta HL" is the half-life associated with the elimination phase, t 1 / 2β = (In2) / elimination rate constant is the half-life associated with the terminal phase. T 1 / 2ベータ can be measured by plasma FIX activity or FIX antigen concentration. 1 / 2ベータ is T 1 / 2ベータ (activity) and T based on FIX antigen concentration 1 / 2ベータ is T1 / 2ベータ (antigen). 1 / 2ベータ (active) and T 1 / 2ベータ Both (antigens) can be presented as ranges or geometric means.
[0057] As used herein, the term "reconstituted formulation" or "post-reconstitution composition" refers to a formulation that has been lyophilized and reconstituted by the addition of a diluent. The diluent can include, without limitation, water for injection (WFI), bacteriostatic water for injection (BWFI), sodium chloride solution (e.g., 0.9% (w / v) NaCl), glucose solution (e.g., 5% glucose), surfactant-containing solution (e.g., 0.01% polysorbate 20 or polysorbate 80), pH buffer (e.g., phosphate buffer), and combinations thereof.
[0058] General freeze-drying process Lyophilization or freeze-drying is a process widely used in the pharmaceutical industry for the preservation of biological and pharmaceutical materials. The lyophilization process, also known as the lyophilization cycle, is traditionally divided into three distinct stages: freezing, primary drying, and secondary drying. As used herein, "lyophilizing" refers to the entire process of lyophilization, including both the freezing and drying steps.
[0059] In freeze-drying, water present in a material is converted to ice during the freezing step and then removed from the material by direct sublimation under low-pressure conditions during the primary drying step. However, not all water is converted to ice during freezing. Some water is trapped in the solid matrix containing, for example, formulation components and / or active ingredients. Excess water bound within the matrix can be reduced to a desired residual moisture level during the secondary drying step. All freeze-drying steps, including freezing, primary drying, and secondary drying, determine the properties of the final product. Primary drying is usually the longest step in the freeze-drying process, and therefore, optimizing this part of the process has a significant economic impact.
[0060] In certain embodiments of the present invention, the freeze-drying process comprises only a primary drying step.
[0061] In certain embodiments of the present invention, the freeze-drying process also includes a separate "vacuum step" between the freezing and primary drying steps.
[0062] In another embodiment of the invention, the freeze-drying process further comprises an "annealing step" between the freezing step and the primary drying step.
[0063] As used herein, the term "annealing step" refers to a step in the lyophilization process of a polypeptide formulation undergoing lyophilization, prior to the drying step of the formulation, in which the temperature of the formulation is increased from a lower temperature to a higher temperature and then cooled again after a period of time.
[0064] Cycle and formulation optimization is traditionally performed to ensure that the product temperature during primary drying never exceeds the collapse temperature. As used herein, the term "collapse temperature" refers to the product temperature during freeze-drying at which the product solids begin to lose their original structure. Above the collapse temperature, the product may exhibit slow and sporadic foaming, expansion, bubbling, cavitation, fenestration, total collapse, shrinkage, and beading, which can affect the product's appearance. As a result, collapse can lead to poor product stability, long drying times, uneven drying, and loss of texture. See, for example, U.S. Patent No. US2010 / 0041870.
[0065] The freeze-dried products of the present invention are characterized by product quality analysis, reconstitution time, reconstitution quality, high molecular weight, moisture content, glass transition temperature (T gThe quality of the product can be evaluated based on its bioavailability, bioavailability, and biological or biochemical activity. Typically, product quality analysis involves analyzing the degradation rate of the product using methods including, but not limited to, size exclusion chromatography (SEC), cation exchange HPLC (CEX-HPLC), X-ray diffraction (XRD), modulated differential scanning calorimetry (mDSC), reversed-phase HPLC (RP-HPLC), multi-angle light scattering detector (MALS), fluorescence, ultraviolet absorbance, turbidimetry, capillary electrophoresis (CE), SDS-PAGE, and combinations thereof. In some embodiments, lyophilized products according to the present invention include a step of evaluating the appearance of the solid. Additionally, lyophilized products may be evaluated based on the biological or biochemical activity of the product, typically after reconstitution.
[0066] Lyophilized factor IX preparation The present disclosure provides pre-lyophilized, lyophilized, and post-reconstitution formulations or pharmaceutical compositions comprising a FIX polypeptide.
[0067] In certain aspects of the invention, the formulations disclosed herein comprise a FIX polypeptide, a buffer, a stabilizer, a bulking agent, and a surfactant, or any combination thereof. The formulations can also contain any other agents useful in pharmaceutical formulations.
[0068] Factor IX (FIX) polypeptide A FIX polypeptide or FIX protein useful in the formulation is a functional FIX protein in its normal role in coagulation, unless otherwise specified. Thus, FIX polypeptides include functional variant polypeptides and polynucleotides encoding such functional variant polypeptides. In one embodiment, the FIX polypeptide is a human, bovine, porcine, canine, feline, or murine FIX polypeptide. The full-length polypeptide and polynucleotide sequences of FIX are known, as are many functional variants, e.g., fragments, mutants, and modified versions. FIX polypeptides include full-length FIX, full-length FIX minus an N-terminal Met, full-length FIX minus a signal sequence, mature FIX (minus a signal sequence and propeptide), and mature FIX with an additional Met at the N-terminus. FIX can be produced by recombinant means ("recombinant factor IX" or "rFIX"), i.e., it is not naturally or plasma-derived.
[0069] Numerous functional FIX variants are known. International Publication No. WO 02 / 040544 A3, incorporated herein by reference in its entirety, discloses mutants exhibiting increased resistance to heparin inhibition on page 4, lines 9-30 and page 15, lines 6-31. International Publication No. WO 03 / 020764 A2, incorporated herein by reference in its entirety, discloses FIX mutants with reduced T-cell immunogenicity in Tables 2 and 3 (on pages 14-24) and on page 12, lines 1-27. International Publication No. WO 2007 / 149406 A2, incorporated herein by reference in its entirety, discloses functional mutant FIX molecules exhibiting increased protein stability, increased in vivo and in vitro half-lives, and increased resistance to proteases on page 4, line 1 to page 19, line 11. WO 2007 / 149406 A2 also discloses chimeric and other mutant FIXs on page 19, line 12 to page 20, line 9. International Publication No. WO 08 / 118507 A2, incorporated herein by reference in its entirety, discloses FIX mutants exhibiting increased clotting activity on page 5, line 14 to page 6, line 5. International Publication No. WO 09 / 051717 A2, incorporated herein by reference in its entirety, discloses FIX mutants with an increased number of N-linked and / or O-linked glycosylation sites resulting in increased half-life and / or recovery on page 9, line 11 to page 20, line 2. International Publication No. WO 09 / 137254 A2, which is incorporated herein by reference in its entirety, also discloses, on page 2, paragraph
[0006] to page 5, paragraph
[0011] , and on page 16, paragraph
[0044] to page 24, paragraph
[0057] , Factor IX mutants with an increased number of glycosylation sites. International Publication No. WO 09 / 130198 A2, which is incorporated herein by reference in its entirety, discloses, on page 4, line 26 to page 12, line 6, functional mutant FIX molecules with an increased number of glycosylation sites. International Publication No. WO 09 / 140015 A2, which is incorporated herein by reference in its entirety, discloses, on page 11, paragraph
[0043] to page 13, paragraph
[0053] , functional mutant FIX molecules with an increased number of Cys residues available for polymer (e.g., PEG) conjugation.
[0003] Disclosed herein are functional FIX mutants with an increased number of Cys residues. The FIX polypeptides described in International Application No. PCT / US2011 / 043569, filed July 11, 2011, and published January 12, 2012 as WO2012 / 006624, are also incorporated herein by reference in their entirety.
[0070] In certain embodiments, the FIX polypeptide comprises wild-type FIX. In some embodiments, the FIX polypeptide further comprises a heterologous moiety linked to the wild-type FIX. In certain embodiments, the heterologous moiety is a moiety that extends the half-life of FIX. In certain embodiments, the heterologous moiety comprises a polypeptide or a non-polypeptide moiety.
[0071] In other embodiments, the FIX polypeptide is a long-acting FIX polypeptide. A long-acting FIX polypeptide can include a FIX moiety and a non-FIX moiety, such as a heterologous moiety that can extend the in vivo or in vitro half-life of the FIX polypeptide. Exemplary non-FIX moieties include, for example, Fc, albumin, a PAS sequence, transferrin, CTP (the 28-amino acid C-terminal peptide (CTP) of human chorionic gonadotropin (hCG) having four O-glycans), polyethylene glycol (PEG), hydroxyethyl starch (HES), an albumin-binding polypeptide, an albumin-binding small molecule, or any combination thereof. Exemplary long-acting FIX polypeptides of the invention include, for example, a Factor IX Fc polypeptide, a Factor IX albumin polypeptide, a Factor IX PAS polypeptide, a Factor IX transferrin polypeptide, a Factor IX CTP polypeptide, a Factor IX PEG polypeptide, a Factor IX HES polypeptide, a Factor IX-albumin binding polypeptide, or a Factor IX albumin binding small molecule polypeptide.
[0072] In one embodiment, the FIX polypeptide is rFIXFc, a recombinant fusion protein consisting of human coagulation factor IX (FIX) and the Fc domain of a human antibody (IgG1 isotype). See, e.g., PCT Application No. PCT / US2011 / 043569, filed July 11, 2011, and published as WO2012 / 006624, which is incorporated herein by reference in its entirety. The rFIXFc polypeptide is a heterodimeric protein in which a FIXFc single chain (FIXFc-sc) and an Fc single chain (Fc-sc) are linked to each other via two disulfide bonds within the hinge region of the Fc. rFIXFc requires two protein subunits, FIXFc-sc (642 amino acids, SEQ ID NO: 2) and Fc-sc (227 amino acids, SEQ ID NO: 4), to assemble in a transfected cell line to form the final protein product, rFIXFc. The polynucleotide sequences encoding FIXFc-sc and Fc-sc are presented as SEQ ID NO: 1 and SEQ ID NO: 3, respectively.
[0073] In certain embodiments, the Factor IX portion of rFIXFc has a primary amino acid sequence identical to the Thr148 allele of plasma-derived Factor IX and has structural and functional characteristics similar to endogenous Factor IX. The Fc domain of rFIXFc contains the hinge, CH2, and CH3 regions of IgG1. The assembled, dimeric mature form of rFIXFc contains 869 amino acids with a molecular weight of approximately 98 kilodaltons. In some embodiments, the rFIXFc polypeptide comprises an amino acid sequence at least 90%, 95%, or 100% identical to amino acids 1-642 of SEQ ID NO:2.
[0074] In one embodiment, the second moiety conjugated to FIX is an FcRn binding partner. In another embodiment, the FcRn binding partner conjugated to FIX is an Fc fragment. An FcRn binding partner is any molecule capable of specific binding to the FcRn receptor, resulting in active transport of the FcRn binding partner by the FcRn receptor. Thus, the term Fc includes any variant of IgG Fc that is functional. The region of the Fc portion of IgG that binds to the FcRn receptor has been described based on X-ray crystallography (Burmeister et al., Nature 372:379 (1994)), which is incorporated herein by reference in its entirety). The major contact area of Fc with FcRn is near the junction of the CH2 and CH3 domains. All Fc-FcRn contacts are within a single Ig heavy chain. FcRn binding partners include, for example, whole IgG, Fc fragments of IgG, and other fragments of IgG that contain the complete FcRn-binding region. The major contact sites include amino acid residues 248, 250-257, 272, 285, 288, 290-291, 308-311, and 314 of the CH2 domain, and amino acid residues 385-387, 428, and 433-436 of the CH3 domain. All references made to amino acid numbering of immunoglobulins or immunoglobulin fragments or regions are based on Kabat et al. 1991, Sequences of Proteins of Immunological Interest, US Department of Public Health, Bethesda, MD, which is incorporated herein by reference in its entirety. (FcRn receptors have been isolated from several mammalian species, including humans. The sequences of human FcRn, rat FcRn, and mouse FcRn are known (Story et al., J. Exp. Med. 180: 2377 (1994), incorporated herein by reference in their entireties). Fc can comprise the CH2 and CH3 domains of an immunoglobulin, with or without the immunoglobulin hinge region. Exemplary Fc variants are provided in WO2004 / 101740 and WO2006 / 074199, incorporated herein by reference in their entireties.
[0075] The Fc (or Fc portion of the chimeric polypeptide) can contain one or more mutations and combinations of mutations.
[0076] The Fc (or the Fc portion of the chimeric polypeptide) may be any of M252Y, S254T, T256E, and combinations thereof, as disclosed in Oganesyan et al., Mol. Immunol. 46:1750 (2009), which is incorporated by reference in its entirety; Vaccaro et al., Nat. Biotechnol. 23:1283 (2005); mutants disclosed in US2009 / 0264627A1, pages 1-2, paragraph
[0012] and Examples 9 and 10, which are incorporated herein by reference in their entirety; and mutants disclosed in US20090163699A1, page 2, paragraphs
[0014] -
[0021] , which are incorporated herein by reference in their entirety.
[0077] The Fc (or Fc portion of the chimeric polypeptide) can also include, for example, the following mutations: The Fc region of an IgG can be modified according to well-known procedures, such as site-directed mutagenesis and the like, to generate modified IgG or Fc fragments or portions thereof that will bind to FcRn. Such modifications include, for example, modifications away from the FcRn contact site and modifications within the contact site that maintain or even enhance binding to FcRn. For example, the Fc region of a human IgG1 The following single amino acid residues in Fc (Fcy1) are FcRn: P238A, S239A, K246A, K248A, D249A, M252A, T256A, E258A, T260A, D265A, S267A, H268A, E269A, D270A, E272A, L274A, N276A, Y278A, D280A, V282A, E283A, H285A, N286A, T289A, K290A , R292A, E293A, E294A, Q295A, Y296F, N297A, S298A, Y300F, R301A, V303A, V305A, T307A, L309A, Q311A, D312A , N315A, K317A, E318A, K320A, K322A, S324A, K326A, A327Q, P329A, A330Q, A330S, P331A, P331S, E333A, K334A , T335A, S337A, K338A, K340A, Q342A, R344A, E345A, Q347A, R355A, E356A, M358A, T359A, K360A, N361A, Q362A , Y373A, S375A, D376A, A378Q, E380A, E382A, S383A, N384A, Q386A, E388A, N389A, N390A, Y391F, K392A, L398A , S400A, D401A, D413A, K414A, R416A, Q418A, Q419A, N421A, V422A, S424A, E430A, N434A, T437A, Q438A, K439A, S440A, S444A, and K447A, where, for example, P238A represents the wild-type proline substituted with alanine at position 238. In addition to alanine, other amino acids can be substituted for the wild-type amino acid at the above-identified positions.Mutations can be introduced singly into the Fc to generate over 100 FcRn binding partners that differ from the native Fc. Furthermore, combinations of two, three, or more of these individual mutations can be introduced together to generate hundreds or more FcRn binding partners. Some of these mutations can confer new functionality to the FcRn binding partner. For example, one embodiment incorporates N297A, removing a highly conserved N-glycosylation site. The effect of this mutation is to reduce immunogenicity, thereby improving the circulating half-life of the FcRn binding partner, and to render the FcRn binding partner unable to bind to FcγRI, FcγRIIA, FcγRIIB, and FcγRIIIA (FcyRI, FcyRIIA, FcyRIIB, and FcyRIIIA) without compromising affinity for FcRn (Routledge et al. 1995, Transplantation 60:847, incorporated herein by reference in its entirety; Friend et al. 1999, Transplantation 68:1632, incorporated herein by reference in its entirety; Shields et al. 1995, J. Biol. Chem. 276:6591, incorporated herein by reference in its entirety). Furthermore, at least three human Fcγ receptors appear to recognize an IgG binding site within the lower hinge region, generally amino acids 234-237. Therefore, another example of new function and potential reduced immunogenicity could result from mutation of this region, for example, by replacing amino acids 233-236 of human IgG1, "ELLG," with the corresponding sequence from IgG2, "PVA." FcγRI, FcγRII, and FcγRIII (FcyRI, FcyRII, and FcyRIII), which mediate various effector functions, have been shown to fail to bind IgG1 when such mutations are introduced (Ward and Ghetie, Therapeutic Immunology 2:77 (1995), incorporated herein by reference in their entireties; and Armour et al., Eur. J. Immunol. 29:2613 (1999), incorporated herein by reference in their entireties).As a further example of new functionality resulting from the above mutations, affinity for FcRn can in some cases be increased above that of the wild-type. This increased affinity can reflect an increased "on" rate, a decreased "off" rate, or both. Mutations that are thought to result in increased affinity for FcRn include, for example, T256A, T307A, E380A, and N434A (Shields et al., J. Biol. Chem. 276:6591 (2001)), which is incorporated herein by reference in its entirety.
[0078] The Fc (or Fc portion of a chimeric polypeptide) can be at least about 60%, about 70%, about 80%, about 90%, about 95%, about 96%, about 97%, about 98%, about 99%, or about 100% identical to an Fc amino acid sequence shown in Table 14 (e.g., amino acids 21-247 of SEQ ID NO: 4). The Fc (or Fc portion of a chimeric polypeptide) can be identical to an Fc amino acid sequence shown in Table 14 (e.g., amino acids 21-247 of SEQ ID NO: 4).
[0079] As mentioned above, exemplary long-acting polypeptides also include FIX conjugated to one or more albumin polypeptides, albumin-binding polypeptides, or albumin-binding small molecules. In one embodiment, the albumin is human albumin. Albumin or albumin-binding proteins can be attached to either the N-terminus of FIX or the C-terminus of FIX, or inserted between two amino acids of FIX. Examples of albumins, e.g., fragments thereof, that can be used in the present invention are known, for example, from U.S. Patent No. 7,592,010; U.S. Patent No. 6,686,179; and Schulte, Thrombosis Res. 124 Suppl. 2:S6-S8 (2009) (each of which is incorporated herein by reference in its entirety).
[0080] Albumin-binding polypeptides can include, but are not limited to, bacterial albumin-binding domains, albumin-binding peptides, or albumin-binding antibody fragments capable of binding to albumin. Domain 3 of streptococcal protein G, disclosed by Kraulis et al., FEBS Lett. 378:190-194 (1996) and Linhult et al., Protein Sci. 11:206-213 (2002), is an example of a bacterial albumin-binding domain. An example of an albumin-binding peptide is a series of peptides having the core sequence DICLPRWGCLW (SEQ ID NO: 5). See, for example, Dennis et al., J. Biol. Chem. 2002, 277: 35035-35043 (2002). Examples of albumin-binding antibody fragments are disclosed in Muller and Kontermann, Curr. Opin. Mol. Ther. 9:319-326 (2007); Rooverset et al., Cancer Immunol. Immunother. 56:303-317 (2007), and Holt et al., Prot. Eng. Design Sci., 21:283-288 (2008), which are incorporated herein by reference.
[0081] In certain embodiments, the recombinant FIX polypeptide of the present invention comprises at least one binding site for a non-polypeptide small molecule, variant, or derivative thereof capable of binding to albumin. An example of such an albumin binding moiety is 2-(3-maleimidopropanamido)-6-(4-(4-iodophenyl)butanamido)hexanoate ("Albu" tag) disclosed by Trusselet et al., Bioconjugate Chem. 20:2286-2292 (2009).
[0082] As mentioned above, exemplary long-acting polypeptides also include FIX conjugated to at least one C-terminal peptide (CTP) of the β subunit of human chorionic gonadotropin, or a fragment, variant, or derivative thereof. The CTP can be conjugated to either the N-terminal end of FIX or the C-terminal end of FIX. One or more CTP peptides conjugated to or inserted into a recombinant protein are known to increase the in vivo half-life of the protein. See, e.g., U.S. Patent No. 5,712,122, incorporated herein by reference. Exemplary CTP peptides include DPRFQDSSSSKAPPPSLPSPSRLPGPSDTPIL (SEQ ID NO: 6) or SSSSKAPPPSLPSPSRLPGPSDTPILPQ (SEQ ID NO: 7). See, e.g., U.S. Patent Application Publication No. US2009 / 0087411A1, incorporated herein by reference.
[0083] As described above, exemplary long-acting polypeptides also include FIX conjugated to at least one PAS sequence, or a fragment, variant, or derivative thereof. The PAS sequence can be conjugated to either the N-terminus of FIX or the C-terminus of FIX. As used herein, PAS peptide or PAS sequence refers to an amino acid sequence containing primarily alanine and serine residues, or primarily alanine, serine, and proline residues, which amino acid sequence forms a random coil conformation under physiological conditions. Thus, PAS sequences are building blocks, amino acid polymers, or sequence cassettes containing, consisting essentially of, or consisting of alanine, serine, and proline, which can be used as part of a heterologous moiety in chimeric proteins. Amino acid polymers can also form a random coil conformation when residues other than alanine, serine, and proline are added as minor components in the PAS sequence. By "minor components" is meant that amino acids other than alanine, serine, and proline can be added to a certain extent in the PAS sequence, e.g., up to about 12% of the amino acids, i.e., about 12 of 100 amino acids in the PAS sequence, up to about 10%, up to about 9%, up to about 8%, about 6%, about 5%, about 4%, about 3%, i.e., about 2%, or about 1%. Amino acids other than alanine, serine, and proline can be selected from the group consisting of Arg, Asn, Asp, Cys, Gln, Glu, Gly, His, Ile, Leu, Lys, Met, Phe, Thr, Trp, Tyr, and Val. Under physiological conditions, the PAS peptide forms a random coil conformation, thereby providing the recombinant protein of the present invention with increased in vivo and / or in vitro stability and possessing procoagulant activity.
[0084] Non-limiting examples of PAS peptides include ASPAAPAPASPAAPAPSAPA (SEQ ID NO: 8), AAPASPAPAAPSAPAPAAPS (SEQ ID NO: 9), APSSPSPSAPSSPSPSPASPSS (SEQ ID NO: 10), APSSPSPSAPSSPSPSPASPS (SEQ ID NO: 11), SSPSAPSPSSPASPSPSSPA (SEQ ID NO: 12), AASPAAPSAPPAAASPAAPSAPPA (SEQ ID NO: 13), ASAAAAPAAASAAASAPSAAA (SEQ ID NO: 14), or any variant, derivative, fragment, or combination thereof. Further examples of PAS sequences are known, for example, from U.S. Patent Publication No. 2010 / 0292130A1, PCT Application Publication No. WO2008 / 155134A1, and European Patent Publication EP2173890.
[0085] As mentioned above, exemplary long-acting polypeptides also include FIX conjugated to at least one transferrin peptide, or a fragment, variant, or derivative thereof. The at least one transferrin peptide can be conjugated to either the N-terminus of FIX or the C-terminus of FIX, or inserted between two amino acids of FIX. Any transferrin can be conjugated to or inserted into the recombinant FIX protein of the present invention. As an example, wild-type human Tf (Tf) is a 679-amino acid protein of approximately 75 kDa (without considering glycosylation) with two major domains, N (approximately 330 amino acids) and C (approximately 340 amino acids), which appear to be derived from gene duplication. See GenBank Accession Nos. NM001063, XM002793, M12530, XM039845, XM039847, and S95936 (www.ncbi.nlm.nih.gov), all of which are incorporated herein by reference.
[0086] Transferrin transports iron through transferrin receptor (TfR)-mediated endocytosis. After iron is released into the endosomal compartment and the Tf-TfR complex is recycled to the cell surface, Tf is released back into the extracellular space for the next cycle of iron transport. Tf has a long half-life of over 14-17 days (Li et al., Trends Pharmacol. Sci. 23:206-209 (2002)). Transferrin fusion proteins have been investigated for half-life extension, targeted delivery for cancer therapy, oral delivery, and sustained activation of proinsulin (Brandsma et al., Biotechnol. Adv., 29: 230-238 (2011); Bai et al., Proc. Natl. Acad. Sci. USA 102:7292-7296 (2005); Kim et al., J. Pharmacol. Exp. Ther., 334:682-692 (2010); Wang et al., J. Controlled Release 155:386-392 (2011)).
[0087] As noted above, exemplary long-acting polypeptides also include FIX conjugated to at least one polyethylene glycol (PEG) moiety.
[0088] PEGylated FIX can refer to a conjugate formed between FIX and at least one polyethylene glycol (PEG) molecule. PEG is commercially available in a wide variety of molecular weights and average molecular weight ranges. Representative examples of average molecular weight ranges for PEG include, but are not limited to, about 200, about 300, about 400, about 600, about 1000, about 1300-1600, about 1450, about 2000, about 3000, about 3000-3750, about 3350, about 3000-7000, about 3500-4500, about 5000-7000, about 7000-9000, about 8000, about 10000, about 8500-11500, about 16000-24000, about 35000, about 40000, about 60000, and about 80000 daltons. These average molecular weights are provided by way of example only and are not intended to be limiting in any way.
[0089] The recombinant long-acting FIX protein of the present invention can be PEGylated to contain mono- or poly (e.g., 2-4) PEG moieties. PEGylation can be carried out by any PEGylation reaction known in the art. A method for preparing a PEGylated protein product generally involves (i) reacting a polypeptide with polyethylene glycol (e.g., a reactive ester or aldehyde derivative of PEG, etc.) under conditions in which the peptide of the present invention is conjugated to one or more PEG groups, and (ii) obtaining a reaction product(s). Generally, optimal reaction conditions for the reaction will be determined on a case-by-case basis based on known parameters and desired results.
[0090] Several PEG conjugation methods are available to those skilled in the art, such as those described in Malik F et al., Exp. Hematol. 20:1028-35 (1992); Francis, Focus on Growth Factors 3(2):4-10 (1992); European Patent Publication Nos. EP0401384, EP0154316, and EP0401384; and International Patent Application Publication Nos. WO92 / 16221 and WO95 / 34326. As a non-limiting example, FIX variants can contain cysteine substitutions at one or more insertion sites of FIX, and the cysteines can be further conjugated to PEG polymers. See Mei et al., Blood 116:270-279 (2010), and U.S. Patent No. 7,632,921.
[0091] As mentioned above, exemplary long-acting polypeptides also include FIX conjugated to at least one hydroxyethyl starch (HES) polymer. HES is a derivative of natural amylopectin and is degraded by α-amylase in the body. HES exhibits advantageous biological properties and is used in medical settings as a blood volume replacement agent and in hemodilution therapy. See, for example, Sommermeyer et al., Krankenhauspharmazie 8:271-278 (1987); and Weidler et al., Arzneim.-Forschung / Drug Res. 41: 494-498 (1991).
[0092] HES is primarily characterized by its molecular weight distribution and degree of substitution. HES has an average molecular weight (weight average) of 1 to 300 kD, 2 to 200 kD, 3 to 100 kD, or 4 to 70 kD. Hydroxyethyl starch can further exhibit a degree of substitution of 0.1 to 3, 0.1 to 2, 0.1 to 0.9, or 0.1 to 0.8, and a ratio of C2 to C6 substitutions with respect to the hydroxyethyl group ranging from 2 to 20. HES with an average molecular weight of approximately 130 kD is VOLUVEN® manufactured by Fresenius. VOLUVEN® is an artificial colloid for volume replenishment, used for therapeutic indications, such as the treatment and prevention of hypovolemia. Several HES conjugation methods are available to those skilled in the art, including the same PEG conjugation method described above.
[0093] Factor IX clotting activity is expressed as international units (IU). One IU of factor IX activity corresponds approximately to the amount of factor IX in one milliliter of normal human plasma. Several assays are available for measuring factor IX activity, including one-stage clotting assays (activated partial thromboplastin time; aPTT), thrombin generation time (TGA), and rotational thromboelastometry (ROTEM®).
[0094] buffering agents Buffers useful in the present invention can be weak acids or bases used to maintain the acidity (pH) of a solution near a selected value after the addition of another acid or base. A suitable buffer can maximize the stability of a pharmaceutical formulation by maintaining pH control of the formulation. A suitable buffer can also ensure physiological compatibility or optimize solubility. Rheology, viscosity, and other properties may also depend on the pH of the formulation. Common buffers include, but are not limited to, histidine, citrate, succinate, acetate, and phosphate. In some embodiments, the buffer comprises L-histidine or a mixture of L-histidine and L-histidine hydrochloride, along with an isotonicity agent, potentially adjusting the pH with an acid or base known in the art. In certain embodiments, the buffer is L-histidine. In certain embodiments, the pH of the formulation is maintained between about 6 and about 8, or between about 6.5 and about 7.5.
[0095] stabilizers Stabilizers are added to pharmaceutical products to stabilize the product. Such agents can stabilize proteins in several different ways. Common stabilizers include, but are not limited to, amino acids such as glycine, alanine, lysine, arginine, or threonine; carbohydrates such as glucose, sucrose, trehalose, raffinose, or maltose; polyols such as glycerol, mannitol, sorbitol, cyclodextrin, or destrans of any type and molecular weight; or PEG. In one aspect of the present invention, the stabilizer is selected to maximize the stability of the FIX polypeptide in the lyophilized formulation. In a specific embodiment, the stabilizer is sucrose.
[0096] Filler Fillers can be added to pharmaceutical products to add volume and mass to the product, facilitating accurate weighing and handling of the pharmaceutical product. Common fillers include, but are not limited to, lactose, sucrose, glucose, mannitol, sorbitol, calcium carbonate, or magnesium stearate. In certain embodiments, the filler is mannitol.
[0097] surfactants Surfactants are amphiphilic substances with lyophilic and lyophobic groups. Surfactants can be anionic, cationic, zwitterionic, or nonionic. Examples of nonionic surfactants include, but are not limited to, alkyl ethoxylates, nonylphenol ethoxylates, amine ethoxylates, polyethylene oxide, polypropylene oxide, fatty alcohols such as cetyl alcohol or oleyl alcohol, cocamide MEA, cocamide DEA, polysorbates, or dodecyldimethylamine oxide. In certain embodiments, the surfactant is polysorbate 20 or polysorbate 80.
[0098] Pre-lyophilized formulation In one aspect, the present disclosure provides a method for manufacturing a semiconductor device comprising: (a) a factor IX (FIX) polypeptide having FIX clotting activity; (b) buffering agents; (c) stabilizers; (d) fillers, and (e) surfactants, a pre-lyophilized formulation comprising the formulation has a fill volume of less than about 5 mL, less than about 4 mL, or less than about 3 mL, and each of (a) through (e) is, compared to a standard pre-lyophilized formulation: (1) improved stability of FIX polypeptides during lyophilization; (2) Reduced reconstitution time during freeze-drying; (3) Reduction of splashing onto the stopper, including the formulation; (4) reduced freeze-drying cycle time; (5) increasing the shelf life of lyophilisates prepared from the pre-lyophilised formulation at room temperature; or (6) any combination thereof; and the amount per vial (mg / vial) is sufficient to allow The standard formulation contains the same amounts of (a) through (e) per vial as the pre-lyophilized formulation and has a fill volume of at least 5 mL. In some embodiments, the standard formulation has a fill volume of 5.3 mL or a fill volume of 5 mL.
[0099] In other embodiments, the pre-lyophilized formulation enables at least two, at least three, at least four, or at least five properties selected from (1) improved stability of the FIX polypeptide upon lyophilization, (2) reduced reconstitution time upon lyophilization, (3) reduced splashing onto the stopper, including the formulation, (4) reduced lyophilization cycle time, and (5) increased shelf life of a lyophilizate prepared from the pre-lyophilized formulation at room temperature. In certain embodiments, the pre-lyophilized formulation enables (1) improved stability of the FIX polypeptide upon lyophilization. In certain embodiments, the pre-lyophilized formulation enables (2) reduced reconstitution time upon lyophilization. In certain embodiments, the pre-lyophilized formulation enables (3) reduced splashing onto the stopper, including the formulation. In certain embodiments, the pre-lyophilized formulation enables (4) reduced lyophilization cycle time. In certain embodiments, the pre-lyophilized formulation enables (5) increased shelf life of a lyophilizate prepared from the pre-lyophilized formulation at room temperature. In certain embodiments, the pre-lyophilized formulation enables (6) any combination of the properties described herein.
[0100] In certain embodiments, the pre-lyophilized formulation comprises at least about 100 IU / vial of FIX polypeptide, or at least about 200 IU / vial to about 10,000 IU / vial, about 200 IU / vial to about 6,000 IU / vial, or about 500 IU / vial to about 5,000 IU / vial of FIX polypeptide. In certain embodiments, the pre-lyophilized formulation comprises about 220 IU / vial, about 250 IU / vial, about 300 IU / vial, about 400 IU / vial, about 500 IU / vial, about 600 IU / vial, about 700 IU / vial, about 800 IU / vial, about 900 IU / vial, about 1,000 IU / vial, about 1,100 IU / vial, about 1,200 IU / vial, about 1,300 IU / vial, about 1,400 IU / vial, about 1,500 IU / vial, about 2,000 IU / vial. about 2,500 IU / vial, about 3,000 IU / vial, about 4,000 IU / vial, about 5,000 IU / vial, about 5,500 IU / vial, about 6,000 IU / vial, about 6,500 IU / vial, about 7,000 IU / vial, about 7,500 IU / vial, about 8,000 IU / vial, about 8,500 IU / vial, about 9,000 IU / vial, about 9,500 IU / vial, or about 10,000 IU / vial of FIX polypeptide.
[0101] In some embodiments, a higher concentration of the pre-lyophilized formulation is achieved by reducing the fill volume. In certain embodiments, the pre-lyophilized formulation has a fill volume of about 4.0 mL, about 3.5 mL, about 3.0 mL, about 2.9 mL, about 2.8 mL, about 2.7 mL, about 2.65 mL, about 2.6 mL, about 2.5 mL, about 2.4 mL, about 2.3 mL, about 2.2 mL, about 2.1 mL, or about 2.0 mL. In some embodiments, the fill volume of the pre-lyophilized formulation is about 2.65 mL. In some embodiments, the fill volume of the pre-lyophilized formulation is less than about 5 mL.
[0102] In some embodiments, the FIX polypeptide can be further concentrated by an additional purification step, for example, a second ultrafiltration step.
[0103] In certain embodiments, the reduced reconstitution time is less than 1.5 minutes, less than 1 minute, less than 50 seconds, less than 40 seconds, less than 30 seconds, less than 20 seconds, or less than 10 seconds. In certain embodiments, the reduced reconstitution time is less than 30 seconds.
[0104] In certain embodiments, the reduced lyophilization cycle time of the pre-lyophilized formulation is about 4 days or less, about 3 days or less, about 2 days or less, or about 1 day or less.
[0105] In certain embodiments, the concentration of the buffering agent in the pre-lyophilized formulation is between about 3 mg / mL and about 15 mg / mL, between 4 mg / mL and 12 mg / mL (between 4 mg / mL and between 12 mg / mL), between about 5 mg / mL and about 10 mg / mL, or between about 5.82 mg / mL and about 9.7 mg / mL. In one embodiment, the buffering agent is at a concentration between about 3.88 mg / mL and about 9.7 mg / mL. In one embodiment, the buffering agent is at a concentration of about 7.76 mg / mL. In some embodiments, the pre-lyophilized formulation contains L-histidine at a concentration of about 7.76 mg / mL.
[0106] In certain embodiments, the concentration of the stabilizer in the pre-lyophilized formulation is between 10 mg / mL and about 50 mg / mL, between about 13 mg / mL and about 40 mg / mL, between about 15 mg / mL and about 35 mg / mL, or between about 17.85 mg / mL and about 29.95 mg / mL. In one embodiment, the buffering agent is at a concentration of about 23.8 mg / mL. In some embodiments, the pre-lyophilized formulation contains sucrose at a concentration of 23.8 mg / mL.
[0107] In certain embodiments, the concentration of the bulking agent in the pre-lyophilized formulation is between about 20 mg / mL and about 100 mg / mL, between about 30 mg / mL and about 70 mg / mL, between about 30 mg / mL and about 60 mg / mL, or between about 35.7 mg / mL and about 59.5 mg / mL. In one embodiment, the bulking agent is at a concentration of about 47.6 mg / mL. In some embodiments, the pre-lyophilized formulation contains mannitol at a concentration of about 47.6 mg / mL.
[0108] In certain embodiments, the concentration of surfactant in the pre-lyophilized formulation is between about 0.01 mg / mL and about 5 mg / mL, between about 0.1 mg / mL and about 4 mg / mL, between about 0.1 mg / mL and about 3 mg / mL, between about 0.01 mg / mL and about 2 mg / mL, or between about 0.05 mg / mL and about 1 mg / mL.In one embodiment, the surfactant is at a concentration of about 0.2 mg / mL.In some embodiments, the pre-lyophilized formulation contains polysorbate 20 or polysorbate 80 at a concentration of about 0.2 mg / mL.
[0109] In certain embodiments, the concentration of the FIX polypeptide in the pre-lyophilized formulation is between about 80 IU / mL and about 2,750 IU / mL. In some embodiments, the concentration of the FIX polypeptide in the pre-lyophilized formulation is at least about 100 IU / mL, at least about 200 IU / mL, at least about 300 IU / mL, at least about 400 IU / mL, at least about 500 IU / mL, at least about 600 IU / mL, at least about 700 IU / mL, at least about 800 IU / mL, at least about 900 IU / mL, at least about 1000 IU / mL, at least about 1500 IU / mL, at least about 2000 IU / mL, or at least about 2500 IU / mL.
[0110] In one aspect, the present disclosure provides a method for manufacturing a semiconductor device comprising: (a) about 80 to about 2,750 IU / mL of rFIXFc; (b) about 7.76 mg / mL L-histidine; (c) about 47.6 mg / mL mannitol; (d) about 23.8 mg / mL sucrose, and (e) about 0.2 mg / mL polysorbate 20; The present invention further provides a pre-lyophilized formulation comprising:
[0111] In certain embodiments, the fill volume of such a pre-lyophilized formulation is about 3 mL, about 2.9 mL, about 2.8 mL, about 2.7 mL, about 2.65 mL, about 2.6 mL, about 2.5 mL, about 2.4 mL, about 2.3 mL, about 2.2 mL, about 2.1 mL, or about 2.0 mL. In one embodiment, the fill volume of such a pre-lyophilized formulation is about 2.65 mL.
[0112] In addition, the present disclosure provides lyophilized powders lyophilized from any of the pre-lyophilized formulations. In some embodiments, the pre-lyophilized formulation is any formulation described herein.
[0113] Lyophilized powder (lyophilate power) The present disclosure also provides a lyophilized powder comprising a FIX polypeptide, a buffer, a stabilizer, a bulking agent, a surfactant, or any combination thereof.
[0114] In certain embodiments, the lyophilized powder contains between about 8 mg and about 39 mg of buffering agent (e.g., L-histidine) per vial, between about 9 mg and about 35 mg per vial, between about 10 mg and about 30 mg per vial, between about 12 mg and about 25 mg per vial, or between about 15 mg and about 23 mg per vial. In one embodiment, the lyophilized powder contains about 25 mg per vial, about 24 mg per vial, about 23 mg per vial, about 22 mg per vial, about 21 mg per vial, about 20 mg per vial, about 19 mg per vial, about 18 mg per vial, about 17 mg per vial, about 16 mg per vial, or about 15 mg per vial. In another embodiment, the lyophilized powder contains about 20.6 mg of buffering agent per vial. In some embodiments, the buffering agent is L-histidine.
[0115] In certain embodiments, the lyophilized powder contains between about 27 mg and about 132 mg of stabilizer per vial, between about 30 mg and about 120 mg per vial, between about 40 mg and about 110 mg per vial, between about 50 mg and about 100 mg per vial, or between about 60 mg and about 90 mg per vial. In one embodiment, the lyophilized powder contains about 68 mg of stabilizer per vial, about 67 mg of stabilizer per vial, about 66 mg of stabilizer per vial, about 65 mg of stabilizer per vial, about 64 mg of stabilizer per vial, about 63 mg of stabilizer per vial, about 62 mg of stabilizer per vial, about 61 mg of stabilizer per vial, about 60 mg of stabilizer per vial, or about 59 mg of stabilizer per vial. In another embodiment, the lyophilized powder contains about 63.1 mg of stabilizer per vial. In some embodiments, the stabilizer is sucrose.
[0116] In certain embodiments, the lyophilized powder contains between about 50 mg and about 265 mg of bulking agent per vial, between about 53 mg and about 265 mg per vial, between about 50 mg and about 250 mg per vial, between about 53 mg and about 265 mg per vial, between about 80 mg and about 200 mg per vial, between about 100 mg and about 150 mg per vial, or between about 110 mg and about 140 mg per vial. In one embodiment, the lyophilized powder contains about 131 mg, about 130 mg, about 129 mg, about 128 mg, about 127 mg, about 126 mg, about 125 mg, about 124 mg, about 123 mg, or about 122 mg of bulking agent per vial. In another embodiment, the lyophilized powder contains about 126.1 mg of bulking agent per vial. In some embodiments, the bulking agent is mannitol.
[0117] In certain embodiments, the lyophilized powder contains between about 0.03 mg and about 13 mg of surfactant per vial, between about 0.05 mg and about 10 mg of surfactant per vial, between about 0.07 mg and about 8 mg of surfactant per vial, or between about 0.1 mg and about 2 mg of surfactant per vial. In one embodiment, the lyophilized powder contains about 1 mg of surfactant per vial, about 0.9 mg of surfactant per vial, about 0.8 mg of surfactant per vial, about 0.7 mg of surfactant per vial, about 0.6 mg of surfactant per vial, about 0.5 mg of surfactant per vial, about 0.4 mg of surfactant per vial, about 0.3 mg of surfactant per vial, about 0.2 mg of surfactant per vial, or about 0.1 mg of surfactant per vial. In another embodiment, the lyophilized powder contains about 0.5 mg of surfactant per vial. In one embodiment, the lyophilized powder contains about 0.53 mg of surfactant per vial. In some embodiments, the surfactant is polysorbate 20 or polysorbate 80.
[0118] In certain embodiments, the lyophilized powder comprises: (a) a FIX polypeptide in an amount between about 2 mg per vial and about 150 mg per vial; (b) a buffering agent in an amount between about 10 mg per vial and about 30 mg per vial; (c) a filler in an amount between about 70 milligrams per vial (mg vial) and about 200 mg per vial; (d) a stabilizer in an amount between about 30 mg per vial and 100 mg per vial; and (e) a surfactant in an amount between about 0.05 mg per vial and about 5 mg per vial; include.
[0119] In some embodiments, the lyophilized powder comprises: (a) a FIX polypeptide in an amount between about 2.2 mg per vial and about 125 mg per vial; (b) a buffering agent in an amount between about 8 mg per vial and about 39 mg per vial; (c) a filler in an amount between about 53 milligrams per vial (mg vial) and about 265 mg per vial; (d) a stabilizer in an amount between about 27 mg per vial and 132 mg per vial; and (e) a surfactant in an amount between about 0.03 mg per vial and about 13 mg per vial; include.
[0120] In certain embodiments, the lyophilized powder comprises: (a) lyophilized FIX polypeptide in an amount between about 2.2 mg per vial and about 125 mg per vial; (b) a buffering agent in an amount between about 12.5 mg per vial and 25 mg per vial; (c) a stabilizer in an amount between about 32.5 mg per vial and 80 mg per vial; (d) a filler in an amount between about 75 mg per vial and 150 mg per vial; and (e) a surfactant in an amount between about 0.1 mg / mL and about 2 mg / mL; include.
[0121] In one embodiment, the lyophilized powder comprises: (a) about 2.2 to about 125 mg / vial of a FIX polypeptide; (b) approximately 20.6 mg / vial of L-histidine; (c) approximately 126.1 mg / vial of mannitol; (d) about 63.1 mg / vial of sucrose, and (e) approximately 0.53 mg / vial of polysorbate 20; include.
[0122] Reconstituted formulation Additionally, the present disclosure provides a reconstituted formulation comprising any of the above lyophilized powders reconstituted with the above reconstitution buffer.
[0123] In certain embodiments, the reconstitution buffer is a NaCl solution. In some embodiments, the reconstitution buffer is 5 mL.
[0124] In certain embodiments, the reconstituted formulation comprises: (a) a FIX polypeptide at a concentration between about 0.9 mg / mL and about 50 mg / mL; (b) a buffering agent at a concentration between 2 mg / mL and about 5 mg / mL; (c) a bulking agent at a concentration between 20 mg / mL and about 30 mg / mL; (d) a stabilizer at a concentration between 8 mg / mL and 15 mg / mL per vial; and (e) a surfactant at a concentration between 0.05 mg / mL and about 0.4 mg / mL; include.
[0125] In certain embodiments, the reconstituted formulation comprises: (a) a FIX polypeptide at a concentration between about 0.9 mg / mL and about 50 mg / mL; (b) a buffering agent at a concentration of about 3.88 mg / mL; (c) a bulking agent at a concentration of about 23.8 mg / mL; (d) a stabilizer at a concentration of about 11.9 mg / mL; (e) a surfactant at a concentration of about 0.1 mg / mL, and (f) reconstitution buffer containing about 3.25 mg / mL NaCl; include.
[0126] In certain embodiments, the reconstituted formulation comprises: (a) a FIX polypeptide at a concentration between about 80 IU / mL and about 2,750 IU / mL; (b) a buffering agent at a concentration of about 25 mM; (c) a bulking agent at a concentration of about 131 mM; (d) a stabilizer at a concentration of about 35 mM; (e) a surfactant at a concentration of 0.01% (w / v), and (f) reconstitution buffer; include.
[0127] Examples of formulation compositions are further provided in Tables 2-4.
[0128] In one aspect, the present disclosure further provides a vial containing a pre-lyophilized formulation, lyophilized powder, or reconstituted formulation described herein.
[0129] In another aspect, the present disclosure provides a kit comprising a first container containing a lyophilized powder described herein and a second container containing a reconstitution buffer in a volume sufficient to produce a reconstituted formulation when combined with the lyophilized powder in the first container. In certain embodiments, the volume of the reconstitution buffer in the kit is about 5 mL. In some embodiments, the volume is about 5.3 mL. In certain embodiments, the reconstitution buffer in the kit comprises NaCl. In some embodiments, the kit is used to treat hemophilia B.
[0130] In yet another aspect, the present disclosure provides a method of administering a FIX polypeptide to a patient with hemophilia B in need thereof, comprising administering to the patient a reconstituted formulation described herein, wherein the administration prevents or reduces the frequency or severity of bleeding episodes in the patient.
[0131] The present disclosure further provides methods of preventing, treating, ameliorating, or managing hemophilia B in a patient in need thereof by administering a reconstituted formulation described herein.
[0132] Method for producing a lyophilized powder containing FIX polypeptide The present disclosure provides a method for producing a lyophilized powder comprising a FIX polypeptide. In one aspect, the present disclosure provides a lyophilization method comprising lyophilizing a pre-lyophilized formulation described herein. In another aspect, the present disclosure provides a lyophilization method comprising a single drying step.
[0133] In one aspect, the present disclosure provides a method for manufacturing a semiconductor device comprising: (a) a "freezing step" which comprises freezing a pre-lyophilized formulation comprising a FIX polypeptide and an aqueous solvent; (b) a "vacuum step" comprising reducing the pressure of the frozen pre-lyophilized formulation by an amount effective to remove aqueous solvent from the frozen pre-lyophilized formulation; and (c) a single "drying step" which involves increasing the temperature of the frozen pre-lyophilized formulation above the collapse temperature, thereby producing a lyophilized powder; In another embodiment, the freeze-drying process time is reduced compared to standard methods, e.g., freeze-drying processes having two or more drying steps.
[0134] In other aspects, the lyophilate powder produced by the methods of the present invention has one or more of the following characteristics: (1) improved stability of the FIX polypeptide, (2) reduced reconstitution time, (3) reduced splashing onto the stopper, including the formulation, or (4) increased shelf life of the lyophilized powder at room temperature.
[0135] In certain embodiments, the collapse temperature is -1.5°C.
[0136] In certain embodiments, the pre-lyophilized formulation is frozen during the freezing step at a freezing temperature of about −65 to about −40° C., about −65 to about −45° C., about −65 to about −55° C., about −60 to about −40° C., about −60 to about −50° C., or about −60 to about −55° C. In certain embodiments, the pre-lyophilized formulation is frozen during the freezing step at a freezing temperature of about −55° C. In certain embodiments, the freezing temperature is reduced from about 5° C. to about −55° C. during the freezing step.
[0137] In certain embodiments, the freezing temperature is maintained for about 30 minutes to about 5 hours, about 1 hour to about 5 hours, about 1.5 hours to about 5 hours, about 1.5 hours to about 4 hours, about 1.5 hours to about 3 hours, or about 1.5 hours to about 2.5 hours during the freezing step. In certain embodiments, the freezing temperature is maintained for about 2 hours during the freezing step.
[0138] In certain embodiments, the frozen pre-lyophilized formulation of step (a) is further subjected to an "annealing step" (a') prior to the "vacuum step" (b). In certain embodiments, the temperature of the frozen pre-lyophilized formulation of step (a) is increased during the annealing step to an annealing temperature of about -15°C to about -2°C. In certain embodiments, the temperature of the frozen pre-lyophilized formulation of step (a) is increased during the annealing step to an annealing temperature of about -6°C.
[0139] In certain embodiments, the annealing temperature is maintained for about 2 to about 4 hours during the annealing step. In certain embodiments, the annealing temperature is maintained for about 30 minutes to about 5 hours, about 1 hour to about 5 hours, about 2 hours to about 5 hours, about 2 hours to about 4 hours, or about 2.5 hours to about 3.5 hours during the annealing step. In certain embodiments, the annealing temperature is maintained for about 3 hours during the annealing step.
[0140] In certain embodiments, the temperature of the frozen pre-lyophilized formulation is reduced during the annealing step from the annealing temperature to a temperature of about −65° C. to about −40° C. In certain embodiments, the temperature of the frozen pre-lyophilized formulation is reduced during the annealing step from the annealing temperature to a temperature of −55° C.
[0141] In certain embodiments, the "vacuum step" comprises subjecting the frozen pre-lyophilized formulation to a vacuum of between about 0.05 and about 1 mbar, between about 0.05 and about 0.50 mbar, between about 0.10 and about 0.50 mbar, between about 0.15 and about 0.50 mbar, between about 0.20 and about 0.50 mbar, or between about 0.25 and about 0.50 mbar. In certain embodiments, the vacuum in the "vacuum step" is about 0.33 mbar.
[0142] In certain embodiments, the vacuum is held for about 5 hours, about 4 hours, about 3 hours, about 2 hours, or about 1 hour in the "vacuum step." In some embodiments, the vacuum is held for about 2 hours in the "vacuum step."
[0143] In certain embodiments, the "drying step" comprises raising the temperature of the frozen pre-lyophilized formulation to a drying temperature of about -55°C to about 40°C. In certain embodiments, the drying temperature is at least about 30°C, at least about 32°C, at least about 34°C, at least about 35°C, at least about 36°C, at least about 38°C, at least about 39°C, or at least about 40°C. In other embodiments, the drying temperature is about 35°C, about 40°C, about 32°C, or about 45°C.
[0144] In certain embodiments, the drying step further comprises maintaining the drying temperature for about 10 hours to about 40 hours, about 10 hours to about 30 hours, or about 20 hours to about 30 hours, hi certain embodiments, the drying temperature is maintained for about 25 hours.
[0145] In certain embodiments, the drying step is carried out at a pressure of about 0.05 mbar to about 1 mbar, between about 0.05 and about 0.50 mbar, between about 0.10 and about 0.50 mbar, between about 0.15 and about 0.50 mbar, between about 0.20 and about 0.50 mbar, or between about 0.20 mbar and about 0.45 mbar. In certain embodiments, the pressure is maintained at about 0.33 mbar during the drying step. Units of mbar can be converted to Torr or any other unit. For example, 1 mbar can be converted to 0.75006375541921 Torr.
[0146] In one aspect, the present disclosure provides a method for manufacturing a semiconductor device comprising: (a) a "freezing step" which involves freezing the pre-lyophilized formulation comprising the FIX polypeptide by lowering the temperature to a freezing temperature of about -55°C for about 2 hours and holding the freezing temperature for about 2 hours; (a') an "annealing step" comprising raising the temperature of the frozen pre-lyophilized formulation of step (a) to an annealing temperature of about -6°C for about 1.5 hours, holding the annealing temperature for about 3 hours, and lowering the temperature to about -55°C for about 1.5 hours; (b) a "vacuum step" comprising holding the frozen pre-lyophilized formulation of step (a') at about -55°C for 2 hours at ambient pressure and reducing the pressure to about 0.33 mbar for about 2 hours; and (c) increasing the temperature of the frozen pre-lyophilized formulation of step (b) to about 40° C. for 3 hours while maintaining the pressure at about 0.33 mbar, and maintaining the temperature of the frozen pre-lyophilized formulation at about 40° C. for about 25 hours while maintaining the pressure at about 0.33 mbar; The present invention provides a method for producing a lyophilized powder comprising a FIX polypeptide, the method comprising a single "drying step" whereby the lyophilized powder is produced. In some embodiments, the lyophilization process requires less cycle time.
[0147] In certain embodiments, the lyophilized powder produced by the methods described herein has the following characteristics: (1) improving the stability of the FIX polypeptide; (2) reduced reconfiguration time; (3) Reduction of splashing onto the stopper, including the formulation; (4) increasing the shelf life of the lyophilized powder at room temperature; or (5) any combination thereof; Has.
[0148] In some embodiments, the lyophilization cycle duration can be less than about 4.5 days, about 4 days, about 3.5 days, about 3 days, about 2.5 days, or about 2 days. In other embodiments, the lyophilization cycle duration is about 3 days or less. In certain embodiments, the fill volume of the pre-lyophilized formulation used in the lyophilization method is less than about 5 mL. In certain embodiments, the fill volume is about 4 mL, about 3.5 mL, about 3.0 mL, about 2.9 mL, about 2.8 mL, about 2.7 mL, about 2.65 mL, about 2.6 mL, about 2.5 mL, about 2.4 mL, about 2.3 mL, about 2.2 mL, about 2.1 mL, or about 2.0 mL. In one embodiment, the fill volume is about 2.65 mL.
[0149] In certain embodiments, the lyophilized powder produced by the lyophilization process has a reduced reconstitution time of less than about 1.5 minutes, less than about 1 minute, less than about 50 seconds, less than about 40 seconds, less than about 30 seconds, less than about 20 seconds, or less than about 10 seconds. In certain embodiments, the lyophilized powder produced by the lyophilization process has a reduced reconstitution time of less than about 30 seconds.
[0150] In certain embodiments, the pre-lyophilized formulation used in the lyophilization method has a reduced lyophilization cycle time of about 4 days or less, about 3 days or less, about 2 days or less, or about 1 day or less.
[0151] In some embodiments, the lyophilized powder is produced from the pre-lyophilized formulation in about 90 hours or less, about 80 hours or less, about 70 hours or less, about 60 hours or less, about 50 hours or less, about 45 hours or less, about 40 hours or less, or about 30 hours or less. In certain embodiments, the lyophilized powder is produced from the pre-lyophilized formulation in about 45 hours or less.
[0152] In certain embodiments, the residual moisture of the lyophilized powder is less than about 1.0%, about 0.7%, about 0.6%, about 0.5%, about 0.4%, or about 0.3%. In some embodiments, the residual moisture of the lyophilized powder is less than about 0.5%.
[0153] In one aspect, the present disclosure provides a method of stabilizing a lyophilized powder comprising a FIX peptide, comprising lyophilizing a pre-lyophilization formulation according to the methods described herein, wherein for lyophilized powders prepared using lyophilization methods comprising multiple drying steps, the lyophilized powder is stabilized as measured by size exclusion chromatography (SEC).
[0154] In another aspect, the present disclosure provides a method for increasing the shelf life of a lyophilized powder comprising a FIX polypeptide, comprising lyophilizing a pre-lyophilized formulation according to the methods described herein, wherein the shelf life of the lyophilized powder prepared using a lyophilization method comprising multiple drying steps is increased as measured by SEC and / or FIX clotting activity assays.
[0155] The present disclosure also provides a method of reducing the reconstitution time of a lyophilized powder comprising a FIX polypeptide, comprising lyophilizing a pre-lyophilized formulation according to the methods described herein, wherein the reconstitution time of the lyophilized powder is reduced relative to the reconstitution time of a lyophilized powder prepared by using a lyophilization method comprising multiple drying steps.
[0156] The present disclosure further provides a method of reducing the lyophilization process time of making a lyophilized powder comprising a FIX polypeptide, comprising lyophilizing a pre-lyophilized formulation according to the methods described herein, wherein the lyophilization process time of the pre-lyophilized formulation is reduced relative to the lyophilization process time of making a lyophilized powder using a lyophilization method comprising multiple drying steps.
[0157] Having now described the invention in detail, it will be more clearly understood by reference to the following examples. These examples are included herein for illustrative purposes only and are not intended to be limiting of the invention. All patents and publications mentioned herein are expressly incorporated by reference. [Example]
[0158] Example 1: Factor IX-Fc Drug Substance and Drug Product Composition rFIXFc Description rFIXFc is a long-acting, fully recombinant fusion protein consisting of human coagulation factor IX (FIX) covalently linked to the Fc domain of human immunoglobulin G1 (IgG1). The factor IX portion of rFIXFc is the Thr2 residue of plasma-derived factor IX. 148 It has a primary amino acid sequence identical to the allelic variant and has structural and functional characteristics similar to endogenous factor IX. The Fc domain of rFIXFc contains the hinge, CH2, and CH3 regions of IgG1. rFIXFc contains 869 amino acids with a molecular weight of approximately 98 kilodaltons.
[0159] rFIXFc is produced in a human embryonic kidney (HEK) cell line by recombinant DNA technology and then purified.
[0160] The rFIXFc drug product formulations of the present invention, which include rFIXFc, can enable the advancement of high-concentration drug product strengths, e.g., 4000+ IU / vial drug products. This requires higher concentrations of rFIXFc protein in the drug substance, as shown in Comparative Table 1 below. The rFIXFc drug product formulations of the present invention can increase the shelf life of 250 and 500 IU / vial drug product strengths to allow for increased room temperature stability. Development data suggests that the 250 and 500 IU / vial drug product strengths are significantly more stable under accelerated conditions than the standard drug product.
[0161] The rFIXFc drug product formulations of the present invention also allow for reduced reconstitution times upon lyophilization. Reconstitution times for standard drug products vary between 1 and 2 minutes. Development data suggest that LCM drug products can reduce reconstitution times to less than 30 seconds.
[0162] The rFIXFc drug product formulation of the present invention may also allow for a reduction in the lyophilization process time. Currently, the lyophilization cycle is ∼4.5 days. With smaller vial fill volumes, the lyophilization cycle could potentially be reduced to ∼3 days or less for more economical manufacturing.
[0163] Drug Substances (DS) The drug substance for the rFIXFc formulation of the present invention will use the same formulation excipients as the standard drug substance. Higher concentrations will be achieved using a second ultrafiltration step during drug substance manufacture. See Table 1.
[0164] [Table 1]
[0165] Drug Product (DP) To achieve the above objectives, a drug product was designed in which the vial fill volume was reduced and the concentration of all components (protein and excipients) was doubled compared to the standard drug product prior to lyophilization, ensuring that the dose of all components to the patient remained constant while improving the drug product performance parameters mentioned above.
[0166] Tables 2-4 below detail the composition of the lyophilized raw material, the content of the solid product in the vial after lyophilization, and the composition after reconstitution. It is important to note the wide variation in rFIXFc protein concentration. Due to the fact that each batch of Factor IX varies slightly in its activity, expressed in IU / mg, the raw material is formulated using a measured activity. This results in a wide range of protein concentrations, and this variation, added to the different strengths of the drug product, gives the ranges described below.
[0167] [Table 2]
[0168] [Table 3]
[0169] [Table 4]
[0170] Example 2: Development of Lyophilization Cycle Parameters for Second Generation rFIXFc Drug Product Abstract The goal of this study was to evaluate the range of process parameters for the drying stage of the lyophilization cycle for the rFIXFc drug product of the present invention.
[0171] This report summarizes a statistical design of experiments (DOE) study evaluating freeze-drying process parameters (drying shelf temperature, chamber vacuum level, and drying time) and their effect on product temperature during drying, resulting residual moisture, and drying rate of the drug product.
[0172] Preliminary lyophilization cycle design experiments for the second-generation rFIXFc drug product demonstrated that separate primary and secondary drying steps were not necessary due to the formulation's high collapse temperature of approximately -1.5°C. A 12-experiment design of experiments (DOE) study was developed to evaluate the effects of shelf temperature, vacuum level, and drying time on residual moisture concentration and product temperature during the placebo lyophilization process. Analysis of the data indicates that a minimum shelf temperature of 30°C is required during the drying stage to achieve a residual moisture concentration of less than 1%. The analysis also demonstrated that drying times longer than 25 hours did not further reduce residual moisture in the vials and that chamber vacuum level had only a small effect on residual moisture. Product temperature during drying was significantly affected by shelf temperature and chamber vacuum level, but the most aggressive drying conditions in the study (40°C shelf temperature with 1000 mTorr chamber vacuum) resulted in product temperatures 10°C below the collapse temperature. Vial mass flow is primarily a function of shelf temperature, and to maintain vacuum control, a commercial freeze-drying device would need to be able to handle a moisture flow rate of 0.7 g / hr / vial. A lyophilization cycle was proposed to yield a product with <0.5% residual moisture using a shelf temperature of 40°C, a chamber vacuum of 250 mTorr (0.33 mbar), and a drying time of 25 hours.
[0173] introduction A second-generation Factor IX Fc (rFIXFc-2G) drug product composition was designed to allow for improved protein stability during accelerated storage, improved reconstitution time, and a reduced fill volume to reduce splash onto the stopper. This was achieved by reducing the fill volume from 5.3 mL to 2.65 mL and doubling the protein and excipient concentrations in the formulation so that the reconstituted product was the same as the first-generation composition. Another benefit of reducing the fill volume was the reduced amount of water that needed to be removed during the freeze-drying process.
[0174] Because the new drug product plan required revalidation of the drug product process, the lyophilization cycle was redeveloped. The collapse temperature of the placebo formulation was measured to be approximately -1.5°C. This temperature would allow the lyophilization cycle to be shortened compared to that planned for the standard rFIXFc lyophilization process. It was determined through initial experimentation that a separate primary drying step was not required, as the product did not undergo collapse even at shelf temperatures above 40°C. The freezing profile from the standard drug product was used to plan a combined cycle with a direct step to the primary drying temperature after vacuum was applied. The placebo is a good surrogate for the active rFIXFc-2G because mannitol provides a crystalline structure to the solid, resulting in the same appearance as the active vial. Amorphous sugars are also more difficult to dry than proteins, and therefore the resulting residual moisture is slightly higher, providing a worst-case value for the process. Removing protein from the vial also reduces resistance to water vapor, providing a worst-case estimate for the vial mass flow rate.
[0175] A statistical design of experiments (DOE) study was conducted to evaluate the lyophilization process parameters (drying shelf temperature, chamber vacuum level, and drying time) and their effect on product temperature, resulting residual moisture, and drying rate during the drying process of a drug product.
[0176] Materials and Methods The goal of this study was to evaluate ranges for the drying stage process parameters of the lyophilization cycle for the second-generation rFIXFc drug product. The drying stage parameters and ranges used to design the JMP9 DOE study are shown in Table 5. The resulting DOE design of 12 experiments, showing the individual run parameter settings, is shown in Table 6.
[0177] [Table 5]
[0178] [Table 6]
[0179] For each lyophilization cycle in the study, eighty 10 mL shot vials (P / N: 68000320) were filled with 2.75 mL of second-generation rFIXFc placebo as shown in Table 7, providing a worst-case fill volume for residual moisture assessment. Filled vials were placed on a single shelf with three thermocouples for each experiment as shown in Figure 1.
[0180] [Table 7]
[0181] The lyophilization cycle used was a variation of the cycle shown in Table 8. The shelf drying temperature, drying process time, and drying vacuum level of the lyophilizer were varied based on the experimental design table shown in Table 6. A SP Industries Lyostar II was used for each lyophilization cycle, with the vials placed on the middle shelf.
[0182] [Table 8]
[0183] After each lyophilization cycle, five vials were selected from corner and center locations and measured for residual moisture using procedure TDMP-74, averaged across the shelf. Thermocouples were used to measure product temperature and vial mass flow rate during drying, with temperature measurements on the fluid pressure gauge in the Lyostar II software. To evaluate the impact of drying parameters on the second-generation rFIXFc lyophilization process, these outputs were analyzed using JMP 9 software. A JMP stepwise analysis was performed to determine the critical variables, which were then analyzed using a standard least-squares effect screening algorithm that shows how the process outputs (residual moisture, product temperature, and mass flow during drying) correspond to the input variables.
[0184] Results and Discussion The results of the 12 freeze-drying experiments are shown in Table 9.
[0185] [Table 9]
[0186] 1. Analysis of Freeze-Drying Cycle Parameters on Residual Moisture Because it is generally more difficult to remove residual moisture from sugars than proteins during secondary drying, the rFIXFc-2G placebo was used as a worst-case surrogate for the drug product. The resulting predictive profiler, showing the results of the DOE analysis, is shown in Figure 2. Several observations were made: shelf temperature clearly has the most significant effect on the drug product's residual moisture. This is expected based on the fact that secondary drying, which removes tightly bound water, is a diffusion- and adsorption-controlled process. The model predicts with high confidence that shelf temperatures greater than 30°C are required to achieve residual moisture concentrations below 1%. Vacuum level appears to have a small but measurable effect on the resulting residual moisture. Drying time appears to exhibit a point of diminishing returns beginning at 25 hours, where adding additional drying time does not continue to reduce the residual moisture concentration. This type of behavior is consistent with a kinetic approach to an equilibrium boundary determined by shelf temperature, with the residual moisture approaching an asymptote where further drying is not possible. Based on this residual moisture DOE analysis, the drying shelf temperature should be above 30°C, and the drying time should be fixed at 25 hours or less.
[0187] 2. Analysis of freeze-drying cycle parameters for product temperature during sublimation The freeze-drying collapse temperature of the rFIXFc-2G drug product placebo was measured as approximately −1.5°C. Practically, this means that when bulk water is removed from the vial during lyophilization, the drug product will maintain a well-defined solid structure as long as the product temperature is maintained below this collapse temperature. DOE analysis determined that both shelf temperature and chamber vacuum level had a significant effect on product temperature, as shown in Figure 3. Chamber vacuum has the greatest effect, with higher product temperatures translating to higher pressures during sublimation. Even at 1000 mTorr (1.33 mBar), the highest measured product temperature was −15.2°C, nearly 13°C below the product collapse temperature. Shelf temperature also had a modest effect on product temperature, but the results were less pronounced than the vacuum effect. This analysis indicates that even at a shelf temperature of 40°C and a chamber vacuum level of 1000 mTorr, there is little risk of collapse, virtually eliminating the possibility of collapse from any practical lyophilization cycle planning space.
[0188] 3. Analysis of Lyophilization Cycle Parameters in Vial Mass Flow Rate During Sublimation Vial mass flow rate (dm / dt) is a measure of the rate at which water is removed from the vial during the sublimation process. Fast drying is desirable to reduce the time required for the lyophilization cycle, but too much moisture can strain the condenser of a production-scale lyophilizer and result in reduced vacuum control of the product chamber. The placebo represents worst-case vial mass flow conditions. Because no protein is present in the formulation, the percentage of solids in the vial is minimized, resulting in reduced resistance to mass flow from the freeze-dried solid. Shelf temperature has a significant effect on vial mass flow, as shown in Figure 4, with increasing temperature causing faster sublimation. Chamber vacuum level was included in the DOE analysis model, but the p-value was 0.136, which is not significant at the 95% confidence level. The highest measured dm / dt in the study was 0.7 g / hr / vial.
[0189] 4. Proposed Second Generation rFIXFc Lyophilization Cycle Based on Placebo DOE Study Data from a placebo DOE study suggest that it is possible to design a lyophilization cycle to achieve a <0.5% residual moisture target while maintaining the product below its collapse temperature using a single drying step. The proposed lyophilization cycle is shown in Table 10, and data from DOE Run 8 under conditions similar to the proposed rFIXFc-2G lyophilization cycle is shown in Figure 5. The 0.5% residual moisture target was selected because it is the average value for the strength series of first-generation rFIXFc drug product. This moisture concentration provides a buffer so that product quality attributes are not affected if the product absorbs moisture during accelerated stability.
[0190] As developed for the standard rFIXFc drug product lyophilization cycle, the freezing and annealing portions of the lyophilization cycle are used, replacing separate primary and secondary drying steps with a single drying step of 25 hours at a shelf temperature of 40°C and a vacuum of 250 mTorr.
[0191] [Table 10]
[0192] Conclusion A 12-experiment DOE study was completed evaluating placebo, second-generation rFIXFc drug product lyophilization process parameters on residual moisture, product temperature, and vial mass flow rate. Analysis of the data indicates that a minimum shelf temperature of 30°C is required during the drying stage to achieve a residual moisture concentration of 1% or less. The analysis also demonstrated that drying times longer than 25 hours did not significantly reduce residual moisture in the vials, and that vacuum level had only a small effect on residual moisture. Product temperature during drying was significantly affected by shelf temperature and chamber vacuum level. The most aggressive conditions in the study (40°C shelf temperature, 1000 mTorr chamber vacuum) resulted in product temperatures more than 10°C below the collapse temperature.
[0193] A suggested freeze-drying cycle was used to obtain a product with <0.5% residual moisture using a shelf temperature of 40° C., a chamber vacuum of 250 mTorr (0.33 mbar), and a drying time of 25 hours.
[0194] The foregoing description of specific embodiments will sufficiently reveal the general nature of the present invention that others may readily modify and / or adapt such specific embodiments for various uses by applying knowledge within the skill of those skilled in the art without departing from the general concept of the invention and without undue experimentation. Such adaptations and modifications are therefore intended to be within the meaning and range of equivalents of the disclosed embodiments, based on the teaching and guidance presented herein. It is to be understood that the phraseology or terminology herein is for the purpose of description, rather than limitation, and consequently, the terminology or terminology herein should be interpreted by those of ordinary skill in the art in light of the teaching and guidance.
[0195] The breadth and scope of the present invention should not be limited by any of the above-described embodiments, but should be defined only in accordance with the following claims and their equivalents. Other embodiments of the present invention will be apparent to those skilled in the art from consideration of the specification and practice of the invention disclosed herein.
[0196] All documents, articles, publications, patents, and patent applications mentioned in this specification are herein incorporated by reference to the same extent as if each individual publication or patent application was specifically and individually indicated to be incorporated by reference.
[0197] This application claims priority to U.S. Provisional Patent Application No. 61 / 969,801, filed March 24, 2014, which is incorporated herein by reference in its entirety. (Sequence Listing)
[0198] [Table 11-1]
Table 11-2
Table 11-3
Table 11-4
Table 11-5
Table 11-6
[0199]
Table 12
[0200]
Table 13
[0201]
Table 14
Claims
1. A pre-lyophilized formulation in a vial, comprising: (a) about 220 IU / vial to about 10,000 IU / vial of a chimeric Factor IX (FIX) polypeptide; the chimeric FIX polypeptide (i) a FIXFc-sc polypeptide of SEQ ID NO: 2 that does not contain a C-terminal lysine; and (ii) an Fc single chain (Fc-sc) polypeptide of SEQ ID NO: 4 that does not contain a C-terminal lysine; a chimeric FIX polypeptide, wherein the FIXFc-sc polypeptide and the Fc-sc polypeptide are linked together via two disulfide bonds within the hinge region of Fc; (b) L-histidine at a concentration between 3 mg / mL and 15 mg / mL; (c) sucrose at a concentration between 10 mg / mL and 50 mg / mL; (d) mannitol at a concentration between 20 mg / mL and 100 mg / mL, and (e) Polysorbate 20 at a concentration between 0.01 mg / mL and 5 mg / mL Including, A pre-lyophilized formulation, wherein the formulation has a fill volume of between 2 mL and 3 mL.
2. 10. The pre-lyophilized formulation of claim 1, comprising about 220 IU / vial to about 1,000 IU / vial of the chimeric FIX polypeptide.
3. 2. The pre-lyophilized formulation of claim 1, wherein the fill volume is about 2.65 mL or about 2.5 mL.
4. 10. The pre-lyophilized formulation of claim 1, comprising about 220 IU, about 250 IU, about 500 IU, or about 1,000 IU of the chimeric FIX polypeptide.
5. 2. The pre-lyophilized formulation of claim 1, wherein the L-histidine is at a concentration between about 5.82 mg / mL and about 9.7 mg / mL.
6. 2. The pre-lyophilized formulation of claim 1, wherein the L-histidine is at a concentration of about 7.76 mg / mL.
7. 10. The pre-lyophilized formulation of claim 1, wherein the sucrose is at a concentration of between about 17.85 mg / mL and about 29.95 mg / mL.
8. 10. The pre-lyophilized formulation of claim 1, wherein the sucrose is at a concentration of about 23.8 mg / mL.
9. 10. The pre-lyophilized formulation of claim 1, wherein the mannitol is at a concentration of between about 35.7 mg / mL and about 59.5 mg / mL.
10. 10. The pre-lyophilized formulation of claim 1, wherein the mannitol is at a concentration of about 47.6 mg / mL.
11. 2. The pre-lyophilized formulation of claim 1, wherein the polysorbate 20 is at a concentration of between about 0.05 mg / mL and about 1 mg / mL.
12. 2. The pre-lyophilized formulation of claim 1, wherein the polysorbate 20 is at a concentration of about 0.2 mg / mL.
13. 10. The pre-lyophilized formulation of claim 1, wherein the chimeric FIX polypeptide is at a concentration of between about 80 IU / mL and about 2,750 IU / mL.
14. A pre-lyophilized formulation in a vial, comprising: (a) about 220 IU / vial to about 10,000 IU / vial of a chimeric Factor IX (FIX) polypeptide; the chimeric FIX polypeptide (i) a FIXFc-sc polypeptide of SEQ ID NO: 2 that does not contain a C-terminal lysine; and (ii) a heterodimeric protein comprising an Fc single chain (Fc-sc) polypeptide of SEQ ID NO: 4 that does not contain a C-terminal lysine; a chimeric FIX polypeptide, wherein the FIXFc-sc polypeptide and the Fc-sc polypeptide are linked together via two disulfide bonds within the hinge region of Fc; (b) about 7.76 mg / mL L-histidine; (c) about 47.6 mg / mL mannitol; (d) about 23.8 mg / mL sucrose, and (e) about 0.2 mg / mL polysorbate 20 Including, A pre-lyophilized formulation, wherein the formulation has a fill volume of between 2 mL and 3 mL.
15. 10. The pre-lyophilized formulation of claim 1, comprising about 220 IU / vial to about 1,000 IU / vial of the chimeric FIX polypeptide.
16. 15. The pre-lyophilized formulation of claim 14, having a fill volume per vial of about 2.65 mL or about 2.5 mL.
17. 17. The pre-lyophilized formulation of claim 16, having a fill volume per vial of about 2.65 mL.
18. 10. The pre-lyophilized formulation of claim 1, comprising 250 IU / vial of the FIX polypeptide.
19. 10. The pre-lyophilized formulation of claim 1, comprising 500 IU / vial of the FIX polypeptide.
20. 10. The pre-lyophilized formulation of claim 1, comprising 1,000 IU of the FIX polypeptide.
21. A lyophilized product obtained by lyophilization from a pre-lyophilization formulation, (a) about 220 IU / vial to about 10,000 IU / vial of a chimeric Factor IX (FIX) polypeptide; the chimeric FIX polypeptide (i) a FIXFc-sc polypeptide of SEQ ID NO: 2 that does not contain a C-terminal lysine; and (ii) a heterodimeric protein comprising an Fc single chain (Fc-sc) polypeptide of SEQ ID NO: 4 that does not contain a C-terminal lysine; a chimeric FIX polypeptide, wherein the FIXFc-sc polypeptide and the Fc-sc polypeptide are linked together via two disulfide bonds within the hinge region of Fc; (b) L-histidine at a concentration between 3 mg / mL and 15 mg / mL; (c) sucrose at a concentration between 10 mg / mL and 50 mg / mL; (d) mannitol at a concentration between 20 mg / mL and 100 mg / mL, and (e) Polysorbate 20 at a concentration between 0.01 mg / mL and 5 mg / mL Including, A lyophilisate wherein the formulation has a fill volume of between 2 mL and 3 mL.
22. 22. The lyophilizate of claim 21, comprising about 220 IU / vial to about 1,000 IU / vial of the chimeric FIX polypeptide.
23. A vial containing a lyophilisate lyophilised from a pre-lyophilisation formulation, (a) about 220 IU / vial to about 10,000 IU / vial of a chimeric Factor IX (FIX) polypeptide; the chimeric FIX polypeptide (i) a FIXFc-sc polypeptide of SEQ ID NO: 2 that does not contain a C-terminal lysine; and (ii) a heterodimeric protein comprising an Fc single chain (Fc-sc) polypeptide of SEQ ID NO: 4 that does not contain a C-terminal lysine; a chimeric FIX polypeptide, wherein the FIXFc-sc polypeptide and the Fc-sc polypeptide are linked together via two disulfide bonds within the hinge region of Fc; (b) L-histidine at a concentration between 3 mg / mL and 15 mg / mL; (c) sucrose at a concentration between 10 mg / mL and 50 mg / mL; (d) mannitol at a concentration between 20 mg / mL and 100 mg / mL, and (e) Polysorbate 20 at a concentration between 0.01 mg / mL and 5 mg / mL Including, A vial wherein the formulation has a fill volume of between 2 mL and 3 mL.
24. 24. The vial of claim 23, comprising about 220 IU / vial to about 1,000 IU / vial of the chimeric FIX polypeptide.
Citation Information
Patent Citations
Stable protein and nucleic acid formulations using non-aqueous, anhydrous, aprotic, hydrophobic, non-polar vehicles with low reactivity
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