Claims
- 1. A composition for delivery of naltrexone consisting of a condensation aerosol
a. formed by volatilizing a thin layer of naltrexone on a solid support, having the surface texture of a metal foil, to a temperature sufficient to produce a heated vapor of naltrexone and condensing the heated vapor of naltrexone to form condensation aerosol particles, b. wherein said condensation aerosol particles are characterized by less than 5% naltrexone degradation products, and c. the condensation aerosol has an MMAD of less than 3 microns.
- 2. The composition according to claim 1, wherein the aerosol particles are formed at a rate of at least 109 particles per second.
- 3. The composition according to claim 2, wherein the aerosol particles are formed at a rate of at least 1010 particles per second.
- 4. A composition for delivery of buprenorphine consisting of a condensation aerosol
a. formed by volatilizing a thin layer of buprenorphine on a solid support, having the surface texture of a metal foil, to a temperature sufficient to produce a heated vapor of buprenorphine and condensing the heated vapor of buprenorphine to form condensation aerosol particles, b. wherein said condensation aerosol particles are characterized by less than 5% buprenorphine degradation products, and c. the condensation aerosol has an MMAD of less than 3 microns.
- 5. The composition according to claim 4, wherein the aerosol particles are formed at a rate of at least 109 particles per second.
- 6. The composition according to claim 5, wherein the aerosol particles are formed at a rate of at least 1010 particles per second.
- 7. A composition for delivery of naloxone consisting of a condensation aerosol
a. formed by volatilizing a thin layer of naloxone on a solid support, having the surface texture of a metal foil, to a temperature sufficient to produce a heated vapor of naloxone and condensing the heated vapor of naloxone to form condensation aerosol particles, b. wherein said condensation aerosol particles are characterized by less than 5% naloxone degradation products, and c. the condensation aerosol has an MMAD of less than 3 microns.
- 8. The composition according to claim 7, wherein the aerosol particles are formed at a rate of at least 109 particles per second.
- 9. The composition according to claim 8, wherein the aerosol particles are formed at a rate of at least 1010 particles per second.
- 10. A composition for delivery of butorphanol consisting of a condensation aerosol
a. formed by volatilizing a thin layer of butorphanol on a solid support, having the surface texture of a metal foil, to a temperature sufficient to produce a heated vapor of butorphanol and condensing the heated vapor of butorphanol to form condensation aerosol particles, b. wherein said condensation aerosol particles are characterized by less than 5% butorphanol degradation products, and c. the condensation aerosol has an MMAD of less than 3 microns.
- 11. The composition according to claim 10, wherein the aerosol particles are formed at a rate of at least 109 particles per second.
- 12. The composition according to claim 11, wherein the aerosol particles are formed at a rate of at least 1010 particles per second.
- 13. A composition for delivery of hydromorphone consisting of a condensation aerosol
a. formed by volatilizing a thin layer of hydromorphone on a solid support, having the surface texture of a metal foil, to a temperature sufficient to produce a heated vapor of hydromorphone and condensing the heated vapor of hydromorphone to form condensation aerosol particles, b. wherein said condensation aerosol particles are characterized by less than 5% hydromorphone degradation products, and c. the condensation aerosol has an MMAD of less than 3 microns.
- 14. The composition according to claim 13, wherein the aerosol particles are formed at a rate of at least 109 particles per second.
- 15. The composition according to claim 14, wherein the aerosol particles are formed at a rate of at least 1010 particles per second.
- 16. A composition for delivery of oxycodone consisting of a condensation aerosol
a. formed by volatilizing a thin layer of oxycodone on a solid support, having the surface texture of a metal foil, to a temperature sufficient to produce a heated vapor of oxycodone and condensing the heated vapor of oxycodone to form condensation aerosol particles, b. wherein said condensation aerosol particles are characterized by less than 5% oxycodone degradation products, and c. the condensation aerosol has an MMAD of less than 3 microns.
- 17. The composition according to claim 16, wherein the aerosol particles are formed at a rate of at least 109 particles per second.
- 18. The composition according to claim 17, wherein the aerosol particles are formed at a rate of at least 1010 particles per second.
- 19. A composition for delivery of methadone consisting of a condensation aerosol
a. formed by volatilizing a thin layer of methadone on a solid support, having the surface texture of a metal foil, to a temperature sufficient to produce a heated vapor of methadone and condensing the heated vapor of methadone to form condensation aerosol particles, b. wherein said condensation aerosol particles are characterized by less than 5% methadone degradation products, and c. the condensation aerosol has an MMAD of less than 3 microns.
- 20. The composition according to claim 19, wherein the aerosol particles are formed at a rate of at least 109 particles per second.
- 21. The composition according to claim 20, wherein the aerosol particles are formed at a rate of at least 1010 particles per second.
- 22. A composition for delivery of remifentanil consisting of a condensation aerosol
a. formed by volatilizing a thin layer of remifentanil on a solid support, having the surface texture of a metal foil, to a temperature sufficient to produce a heated vapor of remifentanil and condensing the heated vapor of remifentanil to form condensation aerosol particles, b. wherein said condensation aerosol particles are characterized by less than 5% remifentanil degradation products, and c. the condensation aerosol has an MMAD of less than 3 microns.
- 23. The composition according to claim 22, wherein the aerosol particles are formed at a rate of at least 109 particles per second.
- 24. The composition according to claim 23, wherein the aerosol particles are formed at a rate of at least 1010 particles per second.
- 25. A composition for delivery of sufentanil consisting of a condensation aerosol
a. formed by volatilizing a thin layer of sufentanil on a solid support, having the surface texture of a metal foil, to a temperature sufficient to produce a heated vapor of sufentanil and condensing the heated vapor of sufentanil to form condensation aerosol particles, b. wherein said condensation aerosol particles are characterized by less than 5% sufentanil degradation products, and c. the condensation aerosol has an MMAD of less than 3 microns.
- 26. The composition according to claim 25, wherein the aerosol particles are formed at a rate of at least 109 particles per second.
- 27. The composition according to claim 26, wherein the aerosol particles are formed at a rate of at least 1010 particles per second.
- 28. A composition for delivery of nalbuphine consisting of a condensation aerosol
a. formed by volatilizing a thin layer of nalbuphine on a solid support, having the surface texture of a metal foil, to a temperature sufficient to produce a heated vapor of nalbuphine and condensing the heated vapor of nalbuphine to form condensation aerosol particles, b. wherein said condensation aerosol particles are characterized by less than 5% flurbiprofen degradation products, and c. the condensation aerosol has an MMAD of less than 3 microns.
- 29. The composition according to claim 28, wherein the aerosol particles are formed at a rate of at least 109 particles per second.
- 30. The composition according to claim 29, wherein the aerosol particles are formed at a rate of at least 1010 particles per second.
- 31. A composition for delivery of fentanyl consisting of a condensation aerosol
a. formed by volatilizing a thin layer of fentanyl on a solid support, having the surface texture of a metal foil, to a temperature sufficient to produce a heated vapor of fentanyl and condensing the heated vapor of fentanyl to form condensation aerosol particles, b. wherein said condensation aerosol particles are characterized by less than 5% fentanyl degradation products, and c. the condensation aerosol has an MMAD of less than 3 microns.
- 32. The composition according to claim 31, wherein the aerosol particles are formed at a rate of at least 109 particles per second.
- 33. The composition according to claim 32 wherein the aerosol particles are formed at a rate of at least 1010 particles per second.
- 34. A method of producing naltrexone in an aerosol form comprising:
a. heating a thin layer of naltrexone on a solid support, having the surface texture of a metal foil, to a temperature sufficient to volatilize the naltrexone to form a heated vapor of the naltrexone, and b. during said heating, passing air through the heated vapor to produce aerosol particles of the naltrexone comprising less than 5% naltrexone degradation products, and an aerosol having an MMAD of less than 3 microns.
- 35. The method according to claim 34, wherein the aerosol particles are formed at a rate of greater than 109 particles per second.
- 36. The method according to claim 35, wherein the aerosol particles are formed at a rate of greater than 1010 particles per second.
- 37. A method of producing buprenorphine in an aerosol form comprising:
a. heating a thin layer of buprenorphine on a solid support, having the surface texture of a metal foil, to a temperature sufficient to volatilize the buprenorphine to form a heated vapor of the buprenorphine, and b. during said heating, passing air through the heated vapor to produce aerosol particles of the buprenorphine comprising less than 5% buprenorphine degradation products, and an aerosol having an MMAD of less than 3 microns.
- 38. The method according to claim 37, wherein the aerosol particles are formed at a rate of greater than 109 particles per second.
- 39. The method according to claim 38, wherein the aerosol particles are formed at a rate of greater than 1010 particles per second.
- 40. A method of producing naloxone in an aerosol form comprising:
a. heating a thin layer of naloxone on a solid support, having the surface texture of a metal foil, to a temperature sufficient to volatilize the naloxone to form a heated vapor of the naloxone, and b. during said heating, passing air through the heated vapor to produce aerosol particles of the naloxone comprising less than 5% naloxone degradation products, and an aerosol having an MMAD of less than 3 microns.
- 41. The method according to claim 40, wherein the aerosol particles are formed at a rate of greater than 109 particles per second.
- 42. The method according to claim 41, wherein the aerosol particles are formed at a rate of greater than 1010 particles per second.
- 43. A method of producing butorphanol in an aerosol form comprising:
a. heating a thin layer of butorphanol on a solid support, having the surface texture of a metal foil, to a temperature sufficient to volatilize the butorphanol to form a heated vapor of the butorphanol, and b. during said heating, passing air through the heated vapor to produce aerosol particles of the butorphanol comprising less than 5% butorphanol degradation products, and an aerosol having an MMAD of less than 3 microns.
- 44. The method according to claim 43, wherein the aerosol particles are formed at a rate of greater than 109 particles per second.
- 45. The method according to claim 44, wherein the aerosol particles are formed at a rate of greater than 1010 particles per second.
- 46. A method of producing hydromorphone in an aerosol form comprising:
a. heating a thin layer of hydromorphone on a solid support, having the surface texture of a metal foil, to a temperature sufficient to volatilize the hydromorphone to form a heated vapor of the hydromorphone, and b. during said heating, passing air through the heated vapor to produce aerosol particles of the hydromorphone comprising less than 5% hydromorphone degradation products, and an aerosol having an MMAD of less than 3 microns.
- 47. The method according to claim 46, wherein the aerosol particles are formed at a rate of greater than 109 particles per second.
- 48. The method according to claim 47, wherein the aerosol particles are formed at a rate of greater than 1010particles per second.
- 49. A method of producing oxycodone in an aerosol form comprising:
a. heating a thin layer of oxycodone on a solid support, having the surface texture of a metal foil, to a temperature sufficient to volatilize the oxycodone to form a heated vapor of the oxycodone, and b. during said heating, passing air through the heated vapor to produce aerosol particles of the oxycodone comprising less than 5% oxycodone degradation products, and an aerosol having an MMAD of less than 3 microns.
- 50. The method according to claim 49, wherein the aerosol particles are formed at a rate of greater than 109 particles per second.
- 51. The method according to claim 50, wherein the aerosol particles are formed at a rate of greater than 1010 particles per second.
- 52. A method of producing methadone in an aerosol form comprising:
a. heating a thin layer of methadone on a solid support, having the surface texture of a metal foil, to a temperature sufficient to volatilize the methadone to form a heated vapor of the methadone, and b. during said heating, passing air through the heated vapor to produce aerosol particles of the methadone comprising less than 5% methadone degradation products, and an aerosol having an MMAD of less than 3 microns.
- 53. The method according to claim 52, wherein the aerosol particles are formed at a rate of greater than 109 particles per second.
- 54. The method according to claim 53, wherein the aerosol particles are formed at a rate of greater than 1010 particles per second.
- 55. A method of producing remifentanil in an aerosol form comprising:
a. heating a thin layer of remifentanil on a solid support, having the surface texture of a metal foil, to a temperature sufficient to volatilize the remifentanil to form a heated vapor of the remifentanil, and b. during said heating, passing air through the heated vapor to produce aerosol particles of the remifentanil comprising less than 5% remifentanil degradation products, and an aerosol having an MMAD of less than 3 microns.
- 56. The method according to claim 55, wherein the aerosol particles are formed at a rate of greater than 109 particles per second.
- 57. The method according to claim 56, wherein the aerosol particles are formed at a rate of greater than 1010 particles per second.
- 58 A method of producing sufentanil in an aerosol form comprising:
a. heating a thin layer of sufentanil on a solid support, having the surface texture of a metal foil, to a temperature sufficient to volatilize the sufentanil to form a heated vapor of the sufentanil, and b. during said heating, passing air through the heated vapor to produce aerosol particles of the sufentanil comprising less than 5% sufentanil degradation products, and an aerosol having an MMAD of less than 3 microns.
- 59. The method according to claim 59, wherein the aerosol particles are formed at a rate of greater than 109 particles per second.
- 60. The method according to claim 60, wherein the aerosol particles are formed at a rate of greater than 1010 particles per second.
- 61. A method of producing fentanyl in an aerosol form comprising:
a. heating a thin layer of fentanyl on a solid support, having the surface texture of a metal foil, to a temperature sufficient to volatilize the fentanyl to form a heated vapor of the fentanyl, and b. during said heating, passing air through the heated vapor to produce aerosol particles of the fentanyl comprising less than 5% fentanyl degradation products, and an aerosol having an MMAD of less than 3 microns.
- 62. The method according to claim 61, wherein the aerosol particles are formed at a rate of greater than 109 particles per second.
- 63. The method according to claim 62, wherein the aerosol particles are formed at a rate of greater than 1010 particles per second.
- 64. A method of producing morphine in an aerosol form comprising:
a. heating a thin layer of morphine on a solid support, having the surface texture of a metal foil, to a temperature sufficient to volatilize the morphine to form a heated vapor of the morphine, and b. during said heating, passing air through the heated vapor to produce aerosol particles of the morphine comprising less than 5% morphine degradation products, and an aerosol having an MMAD of less than 3 microns.
- 65. The method according to claim 65, wherein the aerosol particles are formed at a rate of greater than 109 particles per second.
- 66. The method according to claim 65, wherein the aerosol particles are formed at a rate of greater than 1010 particles per second.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation of U.S. patent application Ser. Nos. 10/153,839 and 10/749,539, entitled “Delivery of Opioids Through an Inhalation Route,” filed May 21, 2002 and Dec. 30, 2003, respectively Rabinowitz and Zaffaroni, which claims priority to U.S. provisional application Ser. No. 60/294,203 entitled “Thermal Vapor Delivery of Drugs,” filed May 24, 2001, Rabinowitz and Zaffaroni, and to U.S. provisional application Ser. No. 60/317,479 entitled “Aerosol Drug Delivery,” filed Sep. 5, 2001, Rabinowitz and Zaffaroni, the entire disclosures of which are hereby incorporated by reference.
Provisional Applications (4)
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Number |
Date |
Country |
|
60294203 |
May 2001 |
US |
|
60317479 |
Sep 2001 |
US |
|
60294203 |
May 2001 |
US |
|
60317479 |
Sep 2001 |
US |
Continuations (3)
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Number |
Date |
Country |
Parent |
10153839 |
May 2002 |
US |
Child |
10768281 |
Jan 2004 |
US |
Parent |
10749539 |
Dec 2003 |
US |
Child |
10768281 |
Jan 2004 |
US |
Parent |
10153839 |
May 2002 |
US |
Child |
10749539 |
Dec 2003 |
US |