Presbyopia treatment by lens alteration
This invention effects a change in the accommodation of the human lens affected by presbyopia through the use of various reducing agents that change accommodative abilities of the human lens, and/or by applying energy to affect a change in the accommodative abilities of the human lens. This invention both prevents the onset of presbyopia as well as treats it. By breaking and/or preventing the formation of bonds that adhere lens fibers together causing hardening of the lens, the present invention increases the elasticity and distensibility of the lens and/or lens capsule.
1. A method for increasing an accommodative amplitude of a lens comprising applying localized energy to an area to be treated and administering a pharmaceutically sufficient quantity of a biologically acceptable chemical substance to break chemical bonds between and/or within lens fibers.
2. The method of claim 1 , wherein said biologically acceptable chemical substance comprises glutathione, thiols and derivatives thereof.
3. A method for increasing an amplitude of accommodation of a human eye having a lens and a ciliary muscle comprising administering a pharmaceutically sufficient quantity of a biologically acceptable reducing agent to affect a change in an elasticity of the lens; and treating the human eye with applied energy.
4. The method of claim 3 , wherein the biologically acceptable reducing agent is selected from the group consisting of glutathione, thiols and derivatives thereof.
5. A method for increasing an accommodative amplitude of a lens comprising:
breaking interlenticular and/or intralenticular fiber adhesions to free the fibers to move relative to each other;
reducing a likelihood of formation of further interlenticular and/or intralenticular fiber adhesions; and
applying energy to the lens.
6. The method of claim 5 , wherein breaking and/or reducing a likelihood of formation of interlenticular and/or intralenticular fiber adhesions further comprises applying an enzyme capable of breaking and/or reducing a likelihood of formation of said interlenticular and/or intralenticular fiber adhesions.
7. The method of claim 5 , wherein breaking and/or reducing a likelihood of formation of interlenticular and/or intralenticular fiber adhesions further comprises applying a chemical catalyst capable of promoting a catalytic reaction.
8. A method for increasing an accommodative amplitude of a lens comprising applying localized energy to area to be treated and administering a pharmaceutically sufficient quantity of a biologically acceptable chemical substance to break and/or reduce a likelihood of formation of the chemical bonds between two sulfur groups lens fibers.
9. A pharmaceutical composition for increasing an accommodative amplitude of a lens comprising thiol transferase, glutathione, nicotine adenine dinucleotide phosphates wherein the composition's accommodative improvement effect is further adapted to be induced or increased by applying energy to the composition.
10. The pharmaceutical composition of claim 9 , further comprising a biocompatible carrier.
11. The pharmaceutical composition of claim 9 , further comprising a viral phage.
12. The pharmaceutical composition of claim 10 , wherein the composition is adapted to be administered topically.
13. The pharmaceutical composition of claim 9 , wherein the composition is adapted to be administered systematically.
14. The pharmaceutical composition of claim 9 , further comprising a photo reactive compound.
15. The pharmaceutical composition of claim 14 , wherein the composition is adapted to be activated by introduction of applied energy.
16. The pharmaceutical composition of claim 9 , wherein the thiol transferase is present in an amount of 0-20 wt%.
17. The pharmaceutical composition of claim 9 , wherein the glutathione is present in an amount of 0-20%.
18. The pharmaceutical composition of claim 9 , wherein nicotine adenine dinucleotide phosphate is present in an amount of 0-20%.
19. The pharmaceutical composition of claim 9 , wherein the glutathione is S-glutathione.
20. The method of claim 1 , wherein the chemical bonds are disulfide bonds.
21. The method of claim 1 , wherein applying comprises applying localized energy including at least one of radiation, sonic energy, electromagnetic energy, heat, chemical energy, particle beam energy, plasma beam energy, an enzyme, gene therapy, and nutrients.
22. The method of claim 3 , further comprising reducing a likelihood of formation of disulfide bonds in the human eye.