IP Library Patent Application 11206853
Patent Application
App. No. 11/206,853

Method and system for non-invasive treatment of hyperopia, presbyopia and glaucoma

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Quick Facts
Patent No.
US None
App. No.
11/206,853
Abstract

Laser and non-laser means for selective thermal shrinkage of ocular tissue (including cornea, sclera, choroids and ciliary-body) for the treatment of hyperopia, presbyopia and glaucoma are disclosed. The preferred system includes lasers in visible (0.48 to 0.78 micron) and IR (1.4 to 2.2 micron), and non-laser device of radio frequency wave including electrode device, bipolar device and plasma-assisted device. Two predetermined treated area having a circle diameter of about (6 to 8) mm and about (10 to 14) mm are defined. A revised Beer's law is introduced, Bexp(−dA), to relate the focusing factor (B), penetration depth (d) and the absorption coefficient (A) at a given laser spectra. An optimal focal length about 0.8 to 1.4 times of (InB*)/A is formulated for lens design. The effective thermal penetration depth, d*=(0.3−1.0) mm, may be achieved by choosing an optimal focal length laser, or by the length of the conductor tip (about 0.45 to 1.2 mm) of the radio frequency device.

Claims (31)

1 . A method of thermal shrinkage of ocular tissue comprising the steps of:

(a) selecting a thermal energy beam having a predetermined power, spot size, penetration depth and wavelength; and

(b) delivering said thermal energy beam to said ocular tissue in a predetermined pattern and area of an eye, whereby patient's hyperopia is corrected, or accommodation for near vision is improved.

2 . A method of claim 1 , wherein said ocular tissue includes cornea, sclera, choroids or ciliary-body of an eye within a circle area having a diameter of about 6 to 8 mm defined as zone-1, or about 10 to 14 mm defined as zone-2.

3 . A method of claim 1 , wherein said accommodation is improved by the change of the elastic property or the available spacing of the sclera-ciliary-zonule complex resulted from said thermal shrinkage of said ocular tissue in zone-2 defined in claim 2 .

4 . A method of claim 1 , wherein said accommodation is caused by the combined effect of axial movement and surface curvatures change of the crystalline lens of an eye.

5 . A method of claim 1 , wherein hyperopia is corrected via the shrinkage of corneal stroma in zone-1 and enhanced by the shrinkage of said ocular tissue in zone-2.

6 . A method of claim 1 , wherein said energy beam includes a laser having a wavelength of about (0.48-2.2) micron, a spot size about R 1 =(0.8-2.0) mm on the treated ocular surface, and a focused minimal spot size about R 2 =(0.08-0.5) mm inside said ocular tissue.

7 . A method of claim 1 , wherein said predetermined penetration depth (d) of said energy beam is governed by a normalized laser power density equation P=Bexp(−dA), where the absorption coefficient of said ocular tissue at said predetermined laser wavelength and includes a preferred value of A=(20-70) cm −1 , most preferable (20-55) cm −1 ; B is a focusing factor having a maximum value at the focal point about B*=(7-16) given by the square of (R 1 /R 2 ) with R 1 and R 2 defined in claim 6 .

8 . A method of claim 1 , wherein said energy beam is delivered to the predetermined area zone-1 or zone-2 defined in claim 2 by an optical fiber which is further connected to a hand piece and coupled to at least one focusing optics including spherical, aspherical, cylindrical or graded-index (GRIN) lens.

9 . A method of claim 8 , wherein said focusing optics includes a focal length (f 1 ) about 0.8 to 1.4 times of f*, when it is contacted to said ocular tissue surface; or a focal length of f 1 +S, when it is used in a non-contact mode having a distance S away from the ocular surface; where f*=(lnB*)/A is an optimal focal length about 0.4 to 1.4 mm for the preferred A=(20-70) cm −1 and B*=16.

10 . A method of claim 6 , wherein said laser includes visible laser of argon ion laser at (488-514) nm, frequency-doubled YAG laser at 526 and 532 nm, He—Ne laser at 633 nm, krypton-ion laser at 647 nm, dye laser at (0.6-0.7) micron, or diode lasers at about (0.63-0.78) micron, where said visible laser is used to cause thermal shrinkage of choroids or ciliary body in the predetermined area of zone-2 defined in claim 2 for the treatment of presbyopia.

11 . A method of claim 1 , wherein said laser includes infrared laser having an ocular tissue absorption coefficient (A) about (20-70) cm −1 or a wavelength of about (1.4-2.2) microns, most preferable of A=(20-55) cm −1 or a wavelength of about (1400-1500) nm, (1860-1890) nm or (2050-2150) nm, where said infrared laser is used to cause thermal shrinkage of the corneal stroma in zone-1 or sclera in zone-2, the predetermined area defined in claim 2 for the treatment of hyperopia or mono-vision presbyopia.

12 . A method of claim 11 , wherein said laser includes semiconductor diode laser at (1.4-1.9) microns, Ho:YAG laser at about 2.1 microns, Nd:YAG laser at about 1.4 micron, diode-pumped fiber laser at about (1.4-1.5) micron or Nd:glass laser at about 1.54 micron, operated at free running long pulse (longer than 500 microseconds) or continuous wave (CW) and power of about (0.05-2.0) W at said predetermined area of an eye.

13 . A method of claim 1 , wherein said energy beam includes a radio frequency wave at about (200-500) KHz and power of about (0.5-5.0) W.

14 . A method of claim 1 , wherein said energy beam includes radio frequency wave generated from an electrode device, a bipolar device, or a plasma assisted electrode device, having a hand-piece connected to an insulator and a conductor tip, where the conductor tip includes a length of about (0.45-1.2) mm penetrated to corneal stroma in zone-1 area for hyperopia correction, or to sclera choroids or ciliary body in zone-2 area for hyperopia enhancement or presbyopia correction.

15 . A method of claim 1 , wherein said predetermined pattern includes radial ring spots or any non-specific shapes, generated manually or by a computer software, where the preferred number of spot includes about (8-32) spots in each of the predetermined zone-1 or zone-2 area.

16 . A method of claim 1 , wherein said energy beam is delivered to said predetermined area to cause a localized temperature preferred to be about (55-85) degree Celsius, most preferable about (58-75) degree Celsius, and an effective penetration depth of about (0.3-1.0) mm defined by a depth range in which the ocular tissue temperature is above the shrinkage threshold, about 58 degree Celsius.

17 . A system for the treatment of presbyopia or hyperopia consisting of

(a) a thermal energy beam having a predetermined power, spot size, penetration depth and wavelength; and

(b) a delivering means to deliver said energy beam to the ocular tissue in a predetermined pattern and area of an eye.

18 . A system of claim 17 , wherein said ocular tissue includes cornea, sclera, choroids or ciliary-body of an eye within the region defined by a circle having a diameter of about 6 to 8 mm (zone-1) or about 10 to 14 mm (zone-2).

19 . A system of claim 17 , wherein said presbyopia is treated by the increase of accommodation due to lens axial movement or lens curvatures change caused by the thermal shrinkage of said ocular tissue in zone-2 defined in claim 18; and said hyperopia is corrected via the corneal stroma shrinkage in zone-1 and enhanced by said ocular tissue shrinkage in zone-2.

20 . A system of claim 1 , wherein said energy beam includes a laser having a wavelength of about (0.48-2.2) micron, a spot size about R 1 =(0.8-2.0) mm on the treated ocular surface, and a focused minimal spot size about R 2 =(0.08-0.5) mm inside said ocular tissue.

21 . A system of claim 17 , wherein said energy beam is delivered to the predetermined area zone-1 or zone-2 defined in claim 19 by an optical fiber which is further connected to a hand piece and coupled to at least one focusing optics including spherical, aspherical, cylindrical or graded-index (GRIN) lens.

22 . A system of claim 21 , wherein said focusing optics includes a preferred focal length (f 1 ) about 0.8 to 1.4 times of f*, when it is contacted to the surface of said ocular tissue; or about f 1 +S, when it is used in a non-contact mode having a distance S away from the ocular surface; where f*=(lnB*)/A is an optimal focal length about 0.4 to 1.4 mm for the preferred absorption coefficient A=(20-70) cm −1 and B*=16.

23 . A system of claim 20 , wherein said laser includes visible laser of argon ion laser at about (488-514) nm, frequency-doubled YAG laser at 532 and 526 nm, He—Ne laser at 633 nm, krypton-ion laser at 647 nm, dye laser at (0.6-0.7) micron, or diode lasers at about (0.63-0.78) micron, where the visible laser is used to cause thermal shrinkage of choroids or ciliary body in the predetermined area of zone-2 defined in claim 18 for the treatment of presbyopia.

24 . A system of claim 20 , wherein said laser includes infrared laser having an ocular tissue absorption coefficient (A) about (20-70) cm −1 or a wavelength of about (1.4-2.2) microns, most preferable of A=(20-55) cm −1 or a wavelength of about (1400-1500) nm, (1860-1890) nm or (2050-2150) nm, where said infrared laser is used to cause thermal shrinkage of the corneal stroma in zone-1 or sclera in zone-2, the predetermined area defined in claim 18 for the treatment of hyperopia or mono-vision presbyopia.

25 . A system of claim 20 , wherein said laser includes semiconductor diode laser at (1.4-1.9) microns, Ho:YAG laser at about 2.1 microns, Nd:YAG laser at about 1.4 micron, diode-pumped fiber laser at about (1.4-1.5) micron, or Nd:glass laser at about 1.54 micron, operated at free running long pulse (longer than 500 microseconds) or continuous wave (CW) and power of about (0.05-2.0) W at said predetermined area of an eye.

26 . A system of claim 17 , wherein said energy beam includes a radio frequency wave at about (200-500) KHz and power of about (0.5-5.0) W.

27 . A system of claim 17 wherein said energy beam includes radio frequency wave generated from an electrode device, a bipolar device, or a plasma assisted electrode device, having a hand-piece connected to an insulator and a conductor tip, where the conductor tip includes a length of about (0.45-1.2) mm penetrated to corneal stroma in zone-1 area for hyperopia correction, or to sclera choroids or ciliary body in zone-2 area for hyperopia enhancement or presbyopia correction.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 7, 2026
From: GAIA USA, INC.
To: AQUADEI, LLC
Reel/Frame 074294/0134 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 16, 2005
From: LIN, J. T.
To: NEW VISION, INC.
Reel/Frame 017024/0987 →