IP Library Granted Patent US 8,895,071
Granted Patent B1
US 8,895,071 · App. 14/471,348 · Granted Nov 25, 2014

Thermal treatment of a pilosebaceous unit with coated metal nanoparticles

Inventors: Todd James Harris (San Clemente, CA); Alice Ann Chen Kim (San Francisco, CA)
Assignee: Sienna Labs, Inc.
A61B18/06A61B18/18A61B2018/068A61B2018/00577A61B2018/0047A61B2018/00476
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Quick Facts
Patent No.
US 8,895,071
App. No.
14/471,348
Granted
Nov 25, 2014
Kind
B1
Abstract

Treatment of skin tissue with photoactive materials and light, such as nanoparticles and formulations which are useful for cosmetic, diagnostic and therapeutic applications to mammals such as humans. In particular, embodiments of thermal treatment of a pilosebaceous unit with coated metal nanoparticles are disclosed.

Claims (77)

1. A method of localizing thermal damage to a pilosebaceous unit, comprising:

topically applying a solution of unassembled plasmonic nanoparticles to a skin surface,

wherein the plasmonic nanoparticles comprise a conductive metal portion,

wherein the conductive metal portion comprises at least one of gold, silver, nickel, platinum, and titanium,

wherein the plasmonic nanoparticles comprise a coating that coats the conductive metal portion, wherein said coating is one of the group consisting of hydrophilic and hydrophobic;

wherein the plasmonic nanoparticles have a concentration of 10 9 to 10 16 particles per ml of the solution;

distributing the solution from the skin surface to a portion of a pilosebaceous unit;

removing the solution from the skin surface while leaving the solution localized within the portion of the pilosebaceous unit; and

irradiating the solution with an energy wavelength in a range of 750 nm to 1200 nm thereby inducing a surface plasmon in said plasmonic nanoparticles, thereby localizing thermal damage to said portion of the pilosebaceous unit.

2. The method of claim 1 ,

wherein the coating is a non-metal coating,

wherein the conductive metal portion comprises at least one of gold, silver, and platinum, and

wherein the plasmonic nanoparticles have a concentration of 10 9 to 10 12 particles per ml of the solution.

3. The method of claim 1 , wherein the plasmonic nanoparticles comprise an optical density of 10 O.D. to 5,000 O.D. at an infrared peak absorption wavelength of between 750 nm and 1200 nm.

4. The method of claim 1 ,

wherein the conductive metal portion is a nanoplate,

wherein the coating is less conductive than the conductive metal portion,

wherein the coating is a non-metal coating, and

wherein the plasmonic nanoparticles comprise an optical density of 10 O.D. to 5,000 O.D. at an infrared peak absorption wavelength of between 750 nm and 1200 nm.

5. The method of claim 1 , further comprising:

pre-treating the skin surface, prior to irradiating, to increase distribution from the skin surface to the pilosebaceous unit, wherein pre-treating the skin surface comprises at least one of the group consisting of: hair removal, fractionated photothermolysis laser treatment, mechanical exfoliation, and chemical exfoliation.

6. The method of claim 1 , wherein distributing the solution of plasmonic nanoparticles comprises distribution with a mechanical vibration device, wherein the mechanical vibration device comprises at least one of the group consisting of an ultrasound device and a massage device.

7. The method of claim 1 , wherein the conductive metal portion is a nanoplate, and wherein the nanoplate has a peak absorption wavelength in a range of 750 nm to 1200 nm.

8. The method of claim 1 , wherein the conductive metal portion is a nanoplate, wherein the coating comprises any one of silica and polyethylene glycol (PEG).

9. The method of claim 1 , wherein the portion of the pilosebaceous unit comprises one or more structures consisting of: a hair shaft, a hair follicle, a sebaceous gland, and a hair follicle infundibulum.

10. A method of localizing thermal damage to a pilosebaceous unit, comprising:

topically applying a solution of unassembled plasmonic nanoparticles to a skin surface;

wherein the solution of plasmonic nanoparticles has at least one peak absorption wavelength between 750 nm and 1200 nm,

wherein the concentration of the plasmonic nanoparticles is 10 9 to 10 16 particles per ml of the solution,

wherein the plasmonic nanoparticles comprise a conductive metal portion,

wherein the conductive metal portion comprises at least one of gold, silver, nickel, platinum, and titanium,

wherein the plasmonic nanoparticles comprise a coating that coats the conductive metal portion, wherein said coating is one of the group consisting of hydrophilic and hydrophobic;

targeting a pilosebaceous unit by redistributing the solution of plasmonic nanoparticles from the skin surface to the pilosebaceous unit, wherein redistributing solution of plasmonic nanoparticles comprises distribution with a mechanical vibration device;

removing the solution from the skin surface while leaving the solution localized within the pilosebaceous unit; and

exposing the solution of plasmonic nanoparticles to an energy source to induce a surface plasmon in said plasmonic nanoparticles, thereby localizing thermal damage to said pilosebaceous unit.

11. The method of claim 10 , wherein the concentration of the plasmonic nanoparticles is 10 9 to 10 14 particles per ml of the solution.

12. The method of claim 10 ,

wherein the coating is semiconductive,

wherein the conductive metal portion is inside the coating, and

wherein the coating is less conductive than the conductive metal portion.

13. The method of claim 10 ,

wherein the mechanical vibration device comprises at least one of a massage device and an ultrasound device configured for bubble formation or liquid micro streaming.

14. The method of claim 10 ,

wherein the conductive metal portion is a nanoplate comprising silver,

wherein the coating comprises any one of silica and polyethylene glycol (PEG), and

wherein the coating is less conductive than the conductive metal portion.

15. The method of claim 10 ,

wherein the plasmonic nanoparticles have an optical density of 10 O.D. to 5,000 O.D. within an infrared light range,

wherein the coating is less conductive than the conductive metal portion,

wherein the coating is a non-metal coating, and

wherein the mechanical vibration device comprises at least one of a massage device and an ultrasound device.

16. A method of treating a pilosebaceous unit, comprising:

pre-treating a skin surface to increase delivery of a solution of unassembled plasmonic nanoparticles to a portion of a pilosebaceous unit,

applying the solution of unassembled plasmonic nanoparticles to the skin surface,

wherein the plasmonic nanoparticles comprise at least one of gold, silver, nickel, platinum, and titanium,

distributing the solution of from the skin surface to the portion of the pilosebaceous unit;

wherein the plasmonic nanoparticles have a concentration of 10 9 to 10 16 particles per ml of the solution,

wherein the plasmonic nanoparticles comprise a coating, wherein said coating is one of the group consisting of hydrophilic and hydrophobic,

removing the solution from the skin surface while leaving the solution localized within the portion of the pilosebaceous unit, and

exposing the solution of plasmonic nanoparticles to an energy wavelength in a range of 750 nm to 1200 nm to induce a surface plasmon in said plasmonic nanoparticles, thereby localizing thermal damage to said portion of the pilosebaceous unit.

17. The method of claim 16 ,

wherein pre-treating the skin surface to increase delivery of the plasmonic nanoparticles to the portion of the pilosebaceous unit comprises at least one of the group consisting of hair removal, shaving, waxing, peeling, a fractionated photothermolysis laser treatment, cyanoacrylate surface peeling, a calcium thioglycolate treatment, a surface exfoliation, a mechanical exfoliation, a salt glow, a microdermabrasion, a chemical exfoliation, a chemical exfoliation with an enzyme, a chemical exfoliation with alphahydroxy acid, and a chemical exfoliation with betahydroxy acid;

wherein distributing the solution of plasmonic nanoparticles in contact with the skin surface comprises distribution with a mechanical vibration device; and

wherein exposing the solution of plasmonic nanoparticles to the energy wavelength induces a surface plasmon in said plasmonic nanoparticles.

18. The method of claim 16 ,

wherein distributing the solution of plasmonic nanoparticles in contact with the skin surface comprises distribution with a mechanical vibration device,

wherein the mechanical vibration device comprises at least one of the group consisting of an ultrasound device and a massage device;

wherein the plasmonic nanoparticles have an optical density of 10 O.D. to 5,000 O.D. within an infrared light range and the concentration is 10 9 to 10 12 particles per ml of the solution,

wherein exposing the solution of plasmonic nanoparticles to the energy wavelength induces a plurality of surface plasmons in said plasmonic nanoparticles.

19. The method of claim 16 ,

wherein the plasmonic nanoparticles are nanoplates,

wherein the plasmonic nanoparticles have an optical density of 10 O.D. to 5,000 O.D. within an infrared light range and the concentration is 10 9 to 10 14 particles per ml of the solution; and

wherein exposing the solution of plasmonic nanoparticles to the energy wavelength induces a surface plasmon in said plasmonic nanoparticles.

20. The method of claim 16 ,

wherein distributing the solution of plasmonic nanoparticles comprises distribution with a mechanical vibration device;

wherein the mechanical vibration device comprises at least one of the group consisting of an ultrasound device, a sonic force device, a massage device, a high pressure air flow device, a high pressure liquid flow device, and a vacuum device, and a dermabrasion device, and

wherein removing the solution from the skin surface comprises using water or alcohol to remove the solution from the skin surface while leaving the solution localized at the portion of the pilosebaceous unit.

Assignments (7)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 28, 2022
From: HERCULES TECHNOLOGY MANAGEMENT CO IV, LLC
To: CORONADO AESTHETICS, LLC
Reel/Frame 059763/0794 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 27, 2022
From: SEBACIA, INC.
To: HERCULES TECHNOLOGY MANAGEMENT CO IV, LLC
Reel/Frame 059750/0939 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 17, 2020
From: SIENNA BIOPHARMACEUTICALS, INC.
To: SEBACIA, INC.
Reel/Frame 052138/0380 →
ASSIGNEE CHANGE OF ADDRESS Recorded Feb 17, 2017
From: SIENNA BIOPHARMACEUTICALS, INC.
To: SIENNA BIOPHARMACEUTICALS, INC.
Reel/Frame 041746/0955 →
CHANGE OF NAME Recorded Mar 2, 2016
From: SIENNA LABS, INC.
To: SIENNA BIOPHARMACEUTICALS, INC.
Reel/Frame 037977/0634 →
ASSIGNEE CHANGE OF ADDRESS Recorded Oct 8, 2015
From: SIENNA LABS, INC.
To: SIENNA LABS, INC.
Reel/Frame 036819/0344 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 10, 2014
From: HARRIS, TODD JAMES; CHEN, ALICE ANN
To: SIENNA LABS, INC.
Reel/Frame 033930/0310 →
Continuity (5)
Continuation 14020387 · Sep 6, 2013
Continuation 13219514 · Aug 26, 2011
Provisional Application 61402305 · Aug 27, 2010
Provisional Application 61422612 · Dec 13, 2010
Provisional Application 61516308 · Apr 1, 2011