IP Library Granted Patent US 8,409,182
Granted Patent B2
US 8,409,182 · App. 12/286,020 · Granted Apr 2, 2013

Laser-assisted thermal separation of tissue

Inventor: David H. Mordaunt (Los Gatos, CA)
Assignee: EOS Holdings, LLC
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,409,182
App. No.
12/286,020
Granted
Apr 2, 2013
Kind
B2
Abstract

A laser-assisted method for fully or partially separating tissue such as collagen-containing tissue is provided. In one embodiment, the method pertains to a capsolurorhexis whereby the laser-assisted method is applied to the lens capsule. A light-absorbing agent is added into or onto the tissue. A light beam with a wavelength capable of being absorbed by the light absorbing agent is then directed at the tissue to cause a thermal effect at the tissue following a predetermined closed curve with the goal to avoid irregularity or potential tears in the resulting rim of the tissue.

Claims (34)

1. A method of thermally separating tissue, comprising:

a. defining a predetermined closed curve at a tissue containing collagen, wherein said predetermined closed curve defines an interior and an exterior;

b. adding a light-absorbing agent to said tissue;

c. selecting a light beam to be directed at said tissue, wherein said light beam is selected with the intent that said light beam is absorbed by said light-absorbed agent to cause a local thermal effect at said tissue and therewith said light beam parameters are characterized to: (i) remain at a sub-ablation level for said tissue, and (ii) transition the collagen in said tissue from a crystalline helixcal structure to an amorphous structure resulting in shrinkage or contraction of said tissue;

d. directing said selected light beam at an initial and interior point of said predetermined closed curve; and

e. continuing and further directing said selected light beam starting from said initial and interior point of said predetermined closed curve along a remaining path of said predetermined closed curve until at least the curve is closed,

wherein said tissue is thermally separated as a result of said directed light beam.

2. The method as set forth in claim 1 , wherein the continued light beam ends at a final and interior point of said predetermined closed curve.

3. The method as set forth in claim 1 , wherein the continuing light beam is a continuous light beam continued in a single pass.

4. The method as set forth in claim 1 , wherein said light beam is a continuous wave during the duration of said direction of said continuing light beam.

5. The method as set forth in claim 1 , wherein an exterior path of said predetermined closed curve is substantially circular or ellipsoidal.

6. The method as set forth in claim 1 , further comprising directing a visualization pattern to focus said directed light beam at said tissue, wherein the visualization pattern (i) is different from said predetermined closed curve or (ii) comprises of at least 3 set of dots, wherein each of said set of dots is distributed along an interior-exterior border of said prederermined closed curve.

7. A method of performing a capsulotomy, comprising:

a. adding a light-absorbing agent into or onto an anterior lens capsule wherein said anterior lens capsule contains collagen;

b. defining a predetermined closed curve at said anterior lens capsule, wherein said predetermined closed curve defines an interior and an exterior;

c. selecting a light beam to be directed at said tissue, wherein said light beam is selected with the intent that said light beam is absorbed by said light-absorbed agent to cause a local thermal effect at said tissue and therewith said light beam parameters are characterized to: (i) remain at a sub-ablation level for said tissue, and (ii) transition the collagen in said tissue from a crystalline helixcal structure to an amorphous structure resulting in shrinkage or contraction of said tissue;

d. directing said selected light beam at an initial and interior point of said predetermined closed curve; and

e. continuing and further directing said selected light beam starting from said initial and interior point of said predetermined closed curve along a remaining path of said predetermined closed curve until at least the curve is closed,

wherein said tissue is thermally separated as a result of said directed light beam.

8. The method as set forth in claim 7 , wherein the continued light beam ends at a final and interior point of said predetermined closed curve.

9. The method as set forth in claim 7 , wherein the continuing light beam is a continuous light beam continued in a single pass.

10. The method as set forth in claim 7 , wherein said light beam is a continuous wave during the duration of said direction of said continuing light beam.

11. The method as set forth in claim 7 , wherein an exterior path of said predetermined closed curve is substantially circular or ellipsoidal.

12. The method as set forth in claim 7 , further comprising directing a visualization pattern to focus said directed light beam at said tissue, wherein the visualization pattern (i) is different from said predetermined closed curve or (ii) comprises of at least 3 set of dots, wherein each of said set of dots is distributed along an interior-exterior border of said prederermined closed curve.

13. The method as set forth in claim 1 , wherein said light beam is delivered by a laser with a laser scanning speed less than 10 mm/s, a light beam diameter of 50 to 600 microns, and a light beam power of less than 1000 mW.

14. The method as set forth in claim 1 , wherein said light beam is delivered by a laser with a laser scanning speed between 0.5 and 3 mm/s, a light beam diameter of 100 to 300 microns, and a light beam power of less than 600 mW.

15. The method as set forth in claim 1 , wherein said directed light beam causes a temperature increase at said tissue in a range between 50 and 150 degrees Celsius.

16. The method as set forth in claim 1 , wherein said directed light beam causes a temperature increase at said tissue in a range between 100 and 120 degrees Celsius.

17. The method as set forth in claim 1 , wherein said visualization pattern has a visualization beam with a speed greater than 450 mm/s.

18. The method as set forth in claim 7 , wherein said light beam is delivered by a laser with a laser scanning speed less than 10 mm/s, a light beam diameter of 50 to 600 microns, and a light beam power of less than 1000 mW.

19. The method as set forth in claim 7 , wherein said light beam is delivered by a laser with a laser scanning speed between 0.5 and 3 mm/s, a light beam diameter of 100 to 300 microns, and a light beam power of less than 600 mW.

20. The method as set forth in claim 7 , wherein said directed light beam causes a temperature increase at said tissue in a range between 50 and 150 degrees Celsius.

21. The method as set forth in claim 7 , wherein said directed light beam causes a temperature increase at said tissue in a range between 100 and 120 degrees Celsius.

22. The method as set forth in claim 7 , wherein said visualization pattern has a visualization beam with a speed greater than 450 mm/s.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 26, 2016
From: EOS HOLDINGS LLC
To: LASERX LLC
Reel/Frame 038731/0053 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 26, 2016
From: LASERX LLC
To: EXCEL-LENS, INC.
Reel/Frame 038731/0391 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 26, 2008
From: MORDAUNT, DAVID H.
To: EOS HOLDINGS, LLC
Reel/Frame 021675/0556 →
Continuity (2)
Provisional Application 60995792 · Sep 28, 2007
Related Publication 20090088734A1 · Apr 2, 2009