Thermal treatment of a pilosebaceous unit with nanoparticles
Provided are nanoparticles and formulations which are useful for cosmetic, diagnostic and therapeutic applications to mammals such as humans.
1. A method of localizing thermal damage to a pilosebaceous unit, comprising:
providing a composition comprising a plurality of unassembled plasmonic nanoparticles and a cosmetically acceptable carrier configured for topical administration to a skin surface,
wherein the plurality of unassembled plasmonic nanoparticles are not bound to each other through a physical force or chemical bond either directly or indirectly through an intermediary,
wherein the unassembled plasmonic nanoparticles comprise a conductive metal portion,
wherein the unassembled plasmonic nanoparticles have a size in a range of 10 nm to 300 nm,
wherein the unassembled plasmonic nanoparticles comprise a coating that coats the conductive metal portion,
wherein said coating facilitates selective removal from the skin surface;
wherein the coating is less conductive than the conductive metal portion,
wherein the coating comprises silica or polyethylene glycol (PEG),
wherein the conductive metal portion and the coating form a metal/dielectric interface,
wherein the conductive metal portion comprises at least one of gold or silver,
wherein the unassembled plasmonic nanoparticles have a concentration of 10 9 to 10 23 particles per ml of a solution in the composition, wherein said concentration of the unassembled plasmonic nanoparticles is sufficient to, after exposure to irradiation and activation of a surface plasmon, induce thermal damage in the pilosebaceous unit;
topically applying the composition to the skin surface;
targeting the pilosebaceous unit by redistributing the composition from the skin surface to a portion of the pilosebaceous unit;
wherein the portion of the pilosebaceous unit comprises one or more structures consisting of: a hair shaft, a hair follicle, a sebaceous gland, an arrector pili muscle, sebum, and a hair follicle infundibulum;
selectively removing the composition from the skin surface, while leaving the composition localized within the pilosebaceous unit; and
irradiating the composition with an infrared light source in a range of 750 nm to 1200 nm thereby inducing the surface plasmon in said unassembled plasmonic nanoparticles,
wherein the surface plasmon comprises an electromagnetic wave at the metal/dielectric interface,
thereby inducing heat radiation from the unassembled plasmonic nanoparticle,
thereby localizing thermal damage to said pilosebaceous unit.
2. The method of claim 1 ,
wherein the metal conductive portion is silver.
3. The method of claim 1 , wherein the unassembled plasmonic nanoparticles comprise an optical density of 10 O.D. to 5,000 O.D. at infrared.
4. The method of claim 1 , further comprising:
treating the skin surface, prior to irradiating, to remove a hair shaft or a hair plug from an orifice of a hair follicle to increase redistribution from the skin surface to the portion of the pilosebaceous unit.
5. A method of localizing thermal damage to a pilosebaceous unit, comprising:
providing a solution of unassembled plasmonic nanoparticles,
topically applying the solution of unassembled plasmonic nanoparticles to a skin surface,
wherein the unassembled plasmonic nanoparticles are not bound to each other through a physical force or chemical bond either directly or indirectly through an intermediary,
wherein the unassembled plasmonic nanoparticles have a dimension in the range of 10 nm to 300 nm,
wherein the unassembled plasmonic nanoparticles have a concentration of 10 9 to 10 23 particles per ml of the solution,
wherein the unassembled plasmonic nanoparticles comprise a conductive metal portion,
wherein the conductive metal portion comprises at least one of gold or silver,
wherein the unassembled plasmonic nanoparticles comprise a coating that coats the conductive metal portion,
wherein the coating is less conductive than the conductive metal portion,
wherein the coating comprises silica or polyethylene glycol (PEG),
wherein the conductive metal portion and the coating form a metal/dielectric interface,
wherein said coating facilitates selective removal from the skin surface;
targeting the pilosebaceous unit by redistributing the solution of unassembled plasmonic nanoparticles from the skin surface to a portion of the pilosebaceous unit;
wherein the portion of the pilosebaceous unit comprises one or more structures consisting of: a hair shaft, a hair follicle, a sebaceous gland, an arrector pili muscle and a hair follicle infundibulum;
selectively removing the solution from the skin surface, while leaving the solution localized within the pilosebaceous unit; and
irradiating the solution of unassembled plasmonic nanoparticles with an energy wavelength in the range of 750 nm to 1200 nm to induce a surface plasmon in said unassembled plasmonic nanoparticles,
wherein the surface plasmon comprises an electromagnetic wave at the metal/dielectric interface,
thereby localizing thermal damage to said pilosebaceous unit.
6. The method of claim 5 , wherein the unassembled plasmonic nanoparticles have a concentration of 10 9 to 10 16 particles per ml of the solution.
7. The method of claim 5 , wherein the unassembled plasmonic nanoparticles have an optical density of 10 O.D. to 5,000 O.D. within the infrared to induce thermal damage in the pilosebaceous unit with which the solution is topically contacted when exposed to the energy wavelength in the range of 750 nm to 1200 nm.
8. The method of claim 5 , wherein the coating is semiconductive, wherein the conductive metal portion is inside the coating.
9. A method of localizing thermal damage to a pilosebaceous unit, comprising:
providing a solution of unassembled plasmonic silver nanoplates configured for application to a skin surface,
wherein the unassembled plasmonic silver nanoplates are not bound to each other through a physical force or chemical bond either directly or indirectly through an intermediary,
applying the solution of plasmonic silver nanoplates to a skin surface,
targeting the pilosebaceous unit by redistributing the solution of plasmonic silver nanoplates from the skin surface to the pilosebaceous unit,
wherein the plasmonic silver nanoplates induce a surface plasmon upon exposure to an infrared light source for localizing thermal damage to said pilosebaceous unit,
wherein the plasmonic silver nanoplates have a size in a range of 10 nm to 300 nm,
wherein the plasmonic silver nanoplates have a peak absorption wavelength of between 750 nm and 1200 nm,
wherein the plasmonic silver nanoplates have a concentration of 10 9 to 10 23 particles per ml of the solution,
wherein the plasmonic silver nanoplates have a coating that is less conductive than the silver,
wherein the coating comprises silica or polyethylene glycol (PEG),
wherein the silver and the coating form a metal/dielectric interface,
selectively removing the solution from the skin surface while leaving the solution localized within the pilosebaceous unit, and
irradiating the solution of plasmonic silver nanoplates with an energy to induce the surface plasmon in said plasmonic silver nanoplates for localizing thermal damage to said pilosebaceous unit.
10. The method of claim 9 , further comprising:
treating the skin surface with at least one of the group consisting of shaving, waxing, peeling, 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;
targeting the pilosebaceous unit by redistributing the solution of plasmonic silver nanoplates in contact with the pilosebaceous unit with a mechanical vibration device; and
wherein irradiating the solution of plasmonic silver nanoplates with the energy comprises exposing the solution of plasmonic silver nanoplates to an infrared light source wavelength of between 750 nm and 1200 nm to induce the surface plasmon in said plasmonic silver nanoplates, thereby treating said pilosebaceous unit.
11. The method of claim 9 ,
wherein targeting the pilosebaceous unit by redistributing the solution of unassembled plasmonic silver nanoplates in contact with the pilosebaceous unit comprises redistribution 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;
and
wherein irradiating the solution of unassembled plasmonic silver nanoplates with the energy comprises an infrared light source wavelength of between 750 nm and 1200 nm to induce the surface plasmon in said unassembled plasmonic silver nanoplates, thereby localizing thermal damage to said pilosebaceous unit.
12. The method of claim 9 ,
wherein targeting the pilosebaceous unit by redistributing the solution of plasmonic silver nanoplates in contact with the pilosebaceous unit comprises redistribution with a mechanical vibration device;
wherein irradiating the solution of plasmonic silver nanoplates with the energy comprises an infrared light source wavelength of between 750 nm and 1200 nm to induce the surface plasmon in said plasmonic silver nanoplates, thereby localizing thermal damage to said pilosebaceous unit,
wherein the plasmonic silver nanoplates have an optical density of 10 O.D. to 5,000 O.D. within the infrared,
wherein localizing thermal damage to said pilosebaceous unit comprises at least one of the group consisting of heating, damaging, ablating, lysing, denaturing, inducing inflammation, activating heat shock proteins, perturbing cell-signaling, disrupting a cell microenvironment, and thermomodulation of said pilosebaceous unit.
13. The method of claim 9 ,
wherein targeting the pilosebaceous unit comprises redistributing the composition 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 selectively 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 within the pilosebaceous unit.
14. The method of claim 9 , wherein the plasmonic silver nanoplates have a concentration of 10 9 to 10 16 particles per ml of solution.
15. The method of claim 1 , wherein targeting the pilosebaceous unit comprises redistributing the composition with a mechanical vibration device from the skin surface to the portion of the pilosebaceous unit, wherein the mechanical vibration device comprises at least one of the group consisting of an ultrasound device and a massage device.
16. The method of claim 1 , wherein the conductive metal portion is a nanoplate, wherein the nanoplate comprises silver, and wherein the nanoplate has a peak absorption wavelength in the range of 750 nm to 1200 nm.
17. The method of claim 1 , wherein the conductive metal portion is a silver nanoplate, and wherein the coating comprises silica.
18. The method of claim 1 , wherein the coating comprises silica.
19. The method of claim 5 , wherein targeting the pilosebaceous unit comprises redistributing the composition with a mechanical vibration device from the skin surface to the portion of the pilosebaceous unit, wherein the mechanical vibration device comprises at least one of a massage device and an ultrasound device for bubble formation or liquid microstreaming.
20. The method of claim 5 , wherein the conductive metal portion is a nanoplate.