IP Library › Granted Patent US 10,688,040
Granted Patent B2
US 10,688,040 · App. 16/291,774 · Granted Jun 23, 2020

Encapsulation of microbubbles within the aqueous core of microcapsules

Inventors: Steven P. Wrenn (Swarthmore, PA); Stephen Dicker (Philadelphia, PA)
Assignee: Drexel University
A61K9/0009
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Quick Facts
Patent No.
US 10,688,040
App. No.
16/291,774
Granted
Jun 23, 2020
Kind
B2
Abstract

The present invention includes a construct that comprises at least one microbubble encapsulated within the aqueous core of a microcapsule. The present invention also includes a pharmaceutical composition comprising a construct comprising at least one microbubble encapsulated within the aqueous core of a microcapsule. The present invention further includes a method of imaging a tissue or organ in a subject, a method of delivering a therapeutic cargo to a tissue or organ in a subject, and a method of treating a disease or disorder in a subject.

Claims (75)

1. A construct comprising an echogenic microcapsule comprising:

a contiguous first shell uninterrupted by gas, the shell comprising a self-assembling molecule;

an aqueous core surrounded by the first shell;

at least one microbubble encapsulated by a second shell;

wherein the at least one encapsulated microbubble comprises a gas and is within

the aqueous core of the echogenic microcapsule; and

wherein the first shell becomes permeable to the aqueous core when the microcapsule is irradiated with an ultrasound intensity that is equal to or higher than the leakage threshold intensity of the microcapsule.

2. The construct of claim 1 , wherein the self-assembling molecule comprises a polymer or phospholipid.

3. The construct of claim 2 , wherein the polymer is a di-block copolymer.

4. The construct of claim 2 , wherein the first shell comprises a liposome, unilamellar vesicle, or giant unilamellar vesicle (GUV).

5. The construct of claim 1 , wherein the first shell further comprises from about 0.001% to about 10% of an oil.

6. The construct of claim 1 , wherein a therapeutic agent is in the aqueous core or is dispersed in the first shell.

7. The construct of claim 1 , wherein the at least one encapsulated microbubble is free-floating in the aqueous core or is tethered to the inner surface of the microcapsule.

8. The construct of claim 1 , wherein the gas comprises a chemical selected from the group consisting of air, octafluoropropane, perfluorobutane, and sulfur hexafluoride.

9. The construct of claim 1 , wherein the diameter of the first shell is about 0.5 μm to about 10 μm.

10. The construct of claim 1 , wherein the diameter of the first shell is about 0.5 μm to about 5 μm.

11. The construct of claim 1 , wherein the diameter of the first shell is about 0.2 μm to about 4 μm.

12. The construct of claim 1 , wherein the diameter of the microbubble is about 25 nm to about 1 μm.

13. The construct of claim 1 , wherein the diameter of the microbubble is about 0.2 μm to about 4 μm.

14. The construct of claim 1 , wherein the second shell comprises a gel-phase lipid.

15. The construct of claim 14 , wherein the gel-phase lipid comprises a gel-phase phospholipid.

16. The construct of claim 1 , wherein the second shell comprises at least one compound selected from the group consisting of PEGylated phospholipid, DMPC (dimyristoylphosphatidylcholine), DSPC (di stearoylphosphatidylcholine), and egg PC (egg phosphatidylcholine).

17. A construct comprising an echogenic microcapsule comprising:

a contiguous first shell uninterrupted by gas the shell comprising a self-assembling molecule;

an aqueous core surrounded by the first shell; and

at least one microbubble encapsulated by a second shell, wherein the encapsulated microbubble comprises a gas and is within the aqueous core of the echogenic microcapsule;

wherein the contiguous first shell protects the at least one encapsulated microbubble and yields increased ultrasound longevity relative to an identical microbubble that is not encapsulated by the contiguous first shell; and

wherein the contiguous first shell is ruptured upon cavitation of the at least one encapsulated microbubble.

18. The construct of claim 17 , wherein the self-assembling molecule comprises a polymer or phospholipid.

19. The construct of claim 18 , wherein the polymer is a di-block copolymer.

20. The construct of claim 18 , wherein the first shell comprises a liposome, unilamellar vesicle, or giant unilamellar vesicle (GUV).

21. The construct of claim 17 , wherein the first shell further comprises from about 0.001% to about 10% of an oil.

22. The construct of claim 17 , wherein a therapeutic agent is in the aqueous core or is dispersed in the first shell.

23. The construct of claim 17 , wherein the at least one encapsulated microbubble is free-floating in the aqueous core or is tethered to the inner surface of the microcapsule.

24. The construct of claim 17 , wherein the gas comprises a chemical selected from the group consisting of air, octafluoropropane, perfluorobutane, and sulfur hexafluoride.

25. The construct of claim 17 , wherein the diameter of the first shell is about 0.5 μm to about 10 μm.

26. The construct of claim 17 , wherein the diameter of the first shell is about 0.5 μm to about 5 μm.

27. The construct of claim 17 , wherein the diameter of the first shell is about 0.2 μm to about 4 μm.

28. The construct of claim 17 , wherein the diameter of the microbubble is about 25 nm to about 1 μm.

29. The construct of claim 17 , wherein the diameter of the microbubble is about 0.2 μm to about 4 μm.

30. The construct of claim 17 , wherein the second shell comprises a gel-phase lipid.

31. The construct of claim 30 , wherein the gel-phase lipid comprises a gel-phase phospholipid.

32. The construct of claim 17 , wherein the second shell comprises at least one compound selected from the group consisting of PEGylated phospholipid, DMPC (dimyristoylphosphatidylcholine), DSPC (di stearoylphosphatidylcholine), and egg PC (egg phosphatidylcholine).

33. The construct of claim 17 , wherein the construct can withstand ultrasound contrast imaging at ultrasound intensities below the leakage threshold of the microcapsule.

34. The construct of claim 17 , wherein the construct is produced using a water/oil/water emulsion technique.

35. A method of imaging a tissue or an organ in a subject, wherein the method comprises:

administering to the subject a pharmaceutical composition comprising a construct comprising an echogenic microcapsule comprising:

a contiguous first shell uninterrupted by gas, the shell comprising a self-assembling molecule;

an aqueous core surrounded by the first shell;

at least one microbubble encapsulated by a second shell;

wherein the at least one encapsulated microbubble comprises a gas and is within the aqueous core of the echogenic microcapsule; and

wherein the first shell becomes permeable to the aqueous core when the microcapsule is irradiated with an ultrasound intensity that is equal to or higher than the leakage threshold intensity of the microcapsule;

and,

monitoring the location of the construct within the subject by ultrasound techniques using a first ultrasound intensity, wherein the first ultrasound intensity is lower than the leakage threshold intensity of the microcapsule.

36. A method of delivering a therapeutic cargo to a tissue or organ in a subject, wherein the method comprises:

administering to the subject a pharmaceutical composition comprising a construct comprising an echogenic microcapsule, wherein a therapeutic cargo is associated with the construct, wherein the echogenic microcapsule comprises:

a contiguous first shell uninterrupted by gas, the shell comprising a self-assembling molecule;

an aqueous core surrounded by the first shell;

at least one microbubble encapsulated by a second shell;

wherein the at least one encapsulated microbubble comprises a gas and is within the aqueous core of the echogenic microcapsule;

wherein the first shell becomes permeable to the aqueous core when the microcapsule is irradiated with an ultrasound intensity that is equal to or higher than the leakage threshold intensity of the microcapsule;

monitoring the location of the construct within the subject by ultrasound techniques using a first ultrasound intensity, wherein the first ultrasound intensity is lower than the leakage threshold intensity of the microcapsule;

detecting presence of the construct in the vicinity of the organ or tissue based on ultrasound monitoring;

and,

releasing the therapeutic cargo from the construct by applying a second ultrasound intensity to the construct, wherein the second ultrasound intensity is: equal to or higher than the leakage threshold of the microcapsule, and equal to or lower than the maximum ultrasound intensity that can be safely applied to the tissue or organ.

37. A method of treating a disease or disorder in a subject in need thereof, the method comprising:

administering to the subject an effective amount of a pharmaceutical composition comprising a construct comprising an echogenic microcapsule, wherein a therapeutic cargo that treats the disease or disorder is associated with the construct, wherein the echogenic microcapsule comprises:

a contiguous first shell uninterrupted by gas, the shell comprising a self-assembling molecule;

an aqueous core surrounded by the first shell;

at least one microbubble encapsulated by a second shell;

wherein the at least one encapsulated microbubble comprises a gas and is within the aqueous core of the echogenic microcapsule;

wherein the first shell becomes permeable to the aqueous core when the microcapsule is irradiated with an ultrasound intensity that is equal to or higher than the leakage threshold intensity of the microcapsule;

monitoring the location of the construct within the subject by ultrasound methods using a first ultrasound intensity, wherein the first ultrasound intensity is lower than the leakage threshold intensity of the microcapsule;

detecting presence of the construct in the vicinity of an organ or tissue that is associated with the disease or disorder, based on ultrasound monitoring; and,

releasing the therapeutic cargo from the construct by applying a second ultrasound intensity to the construct, wherein the second ultrasound intensity is: equal to or higher than the leakage threshold of the microcapsule, and equal to or lower than the maximum ultrasound intensity that can be safely applied to the tissue or organ.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 18, 2022
From: WRENN, STEVEN P.; DICKER, STEPHEN
To: DREXEL UNIVERSITY
Reel/Frame 060848/0161 →
Continuity (3)
Continuation 13264335
Provisional Application 61170830 · Apr 20, 2009
Related Publication 20190262260A1 · Aug 29, 2019