IP Library Granted Patent US 12,728,037
Granted Patent B2
US 12,728,037 · App. 17/890,094 · Granted Sep 8, 2026

System and method for accessing different tissue targets of the eye

Inventors: Guy Holland (San Juan Capistrano, CA); Tibor Juhasz (San Clemente, CA); Reza Khazaeinezhad (Lake Forest, CA); Wesley W. Lummis (Rancho Santa Margarita, CA); Eric R. Mikula (Aliso Viejo, CA); Ferenc Raksi (Mission Viejo, CA); Manu Sharma (Ladera Ranch, CA); Hadi Srass (Yorba Linda, CA); Carlos G. Suarez (Tustin, CA)
Assignee: ViaLase, Inc.
A61F9/008A61F2009/0087A61F2009/00872A61F2009/00897
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Quick Facts
Patent No.
US 12,728,037
App. No.
17/890,094
Granted
Sep 8, 2026
Kind
B2
Abstract

An integrated surgical system for accessing one of a plurality of target volumes of ocular tissue in an eye includes a first optical transmission subsystem optically coupled to receive a first light beam, an optics assembly, and a control system. The optics assembly has an optical axis and is configured to couple to the eye to align its optical axis with the optical axis of the eye. The optics assembly is optically coupled with the first optical transmission subsystem to receive the first light beam along one of a plurality of first input axes and to direct the first light beam to a corresponding one of a plurality of first output axes aligned with a corresponding one of the plurality of target volumes of ocular tissue in the eye. The control system is configured to control the first optical transmission subsystem to direct the first light beam into alignment with a select one of the plurality of first input axes.

Claims (85)

1 . An integrated surgical system for accessing one of a plurality of target volumes of ocular tissue in an eye having an optical axis, the system comprising:

a first optical transmission subsystem optically coupled to receive a first light beam;

an optics assembly having an optical axis, the optics assembly configured to couple to the eye to align its optical axis with the optical axis of the eye, the optics assembly optically coupled with the first optical transmission subsystem to receive the first light beam along one of a plurality of first input axes and to direct the first light beam to a corresponding one of a plurality of first output axes aligned with a corresponding one of the plurality of target volumes of ocular tissue in the eye;

a control system configured to control the first optical transmission subsystem to direct the first light beam into alignment with a select one of the plurality of first input axes; and

a housing configured to rotate about the optical axis of the optics assembly, wherein:

the optics assembly comprises an exit lens having a convex surface to which the first light beam is incident, a concave surface opposite the convex surface, a side region that extends between the convex surface and the concave surface, and a reflecting surface associated with the side region, which receives the first light beam and redirects the first light beam through the concave surface along the corresponding first output axis,

one or more components of the first optical transmission subsystem are mechanically coupled to the housing,

the optics assembly is asymmetric and is mechanically coupled to the housing, and

the control system is configured to rotate the housing about the optical axis of the optics assembly such that the one or more components of the optics assembly rotates about the optical axis of the optics assembly and the one or more components of the first optical transmission subsystem revolve around the optical axis of the optics assembly.

2 . The integrated surgical system of claim 1 , wherein the first optical transmission subsystem comprises a means for aligning the first light beam with the one of the plurality of first input axes.

3 . The integrated surgical system of claim 2 , wherein the means for aligning the first light beam comprises at least one adjustable reflecting surface optically aligned to receive the first light beam along an angle of incidence and to reflect the first light beam at an angle of reflection into alignment with the corresponding one of the plurality of first input axes.

4 . The integrated surgical system of claim 3 , wherein the adjustable reflecting surface comprises an actuated flip mirror or an actuated angular deflector.

5 . The integrated surgical system of claim 1 , wherein the first optical transmission subsystem is optically coupled to receive a plurality of different types of light beams and comprises a means for colinearly combining the plurality of different types of light beams into the first light beam.

6 . The integrated surgical system of claim 5 , wherein the means for colinearly combining the plurality of different types of light beams into the first light beam comprises at least one beam splitter and fiber-optic equivalents thereof.

7 . The integrated surgical system of claim 6 , wherein the at least one beam splitter comprises at least one polarization beam splitter and fiber-optic equivalents thereof.

8 . The integrated surgical system of claim 6 , wherein the at least one beam splitter comprises at least one dichroic or multiple wavelengths beam splitter and fiber-optic equivalents thereof.

9 . The integrated surgical system of claim 1 , wherein the first optical transmission subsystem comprises a focusing objective and the control system is configured to control the focusing objective to focus the first light beam at the corresponding one of the plurality of target volumes of ocular tissue.

10 . The integrated surgical system of claim 1 , wherein the first light beam is a laser beam.

11 . The integrated surgical system of claim 1 , further comprising a laser source configured to output the first light beam.

12 . The integrated surgical system of claim 1 , wherein the first light beam is a colinear beam comprising a laser beam and at least one of an OCT beam, a visual observation beam, and a pair of dual aiming beams.

13 . The integrated surgical system of claim 1 , further comprising a second optical transmission subsystem optically coupled to receive a second light beam, wherein:

the optics assembly is optically coupled with the second optical transmission subsystem to receive the second light beam along one of a plurality of second input axes and to direct the second light beam to a corresponding one of a plurality of second output axes aligned with a corresponding one of the plurality of target volumes of ocular tissue in the eye; and

the control system is configured to control the second optical transmission subsystem to direct the second light beam into alignment with a select one of the plurality of second input axes.

14 . The integrated surgical system of claim 13 , wherein the second optical transmission subsystem comprises a means for aligning the second light beam with the one of the plurality of second input axes.

15 . The integrated surgical system of claim 13 , wherein the second optical transmission subsystem is optically coupled to receive a plurality of different types of light beams and comprises a means for combining the plurality of different types of light beams into the second light beam.

16 . The integrated surgical system of claim 13 , wherein the second light beam comprising at least one of a laser beam, an OCT beam, a visual observation beam, and a pair of dual aiming beams.

17 . The integrated surgical system of claim 13 , wherein the second optical transmission subsystem comprises a focusing objective and the control system is configured to control the focusing objective to focus the second light beam at the corresponding one of the plurality of target volumes of ocular tissue.

18 . The integrated surgical system of claim 13 , wherein one or more components of the second optical transmission subsystem is mechanically coupled to a structure configured to rotate a portion of the second optical transmission subsystem about the optical axis of the optics assembly.

19 . The integrated surgical system of claim 1 , wherein the plurality of target volumes of ocular tissue comprises an irido-corneal angle, a cornea, a lens capsule, and a crystalline lens.

20 . A method of accessing one of a plurality of target volumes of ocular tissue in an eye having an optical axis, the method comprising:

receiving a first light beam at a first optical transmission subsystem;

directing, by the first optical transmission subsystem, the first light beam to a select one of a plurality of first inputs axes of an optics assembly coupled to the eye, wherein the optics assembly has an optical axis and is configured to couple to the eye to align its optical axis with the optical axis of the eye;

directing, by the optics assembly, the first light beam along the select one of the plurality of first inputs axes to a corresponding one of a plurality of first output axes of the optics assembly aligned with a corresponding one of the plurality of target volumes of ocular tissue in the eye; and

rotating a housing about the optical axis of the optics assembly such that one or more components of the optics assembly rotate about the optical axis of the optics assembly and one or more components of the first optical transmission subsystem revolve around the optical axis of the optics assembly, wherein:

the optics assembly comprises an exit lens having a convex surface to which the first light beam is incident, a concave surface opposite the convex surface, a side region that extends between the convex surface and the concave surface, and a reflecting surface associated with the side region, which receives the first light beam and redirects the first light beam through the concave surface along the corresponding first output axis,

the one or more components of the first optical transmission subsystem are mechanically coupled to the housing, and

the optics assembly is asymmetric and is mechanically coupled to the housing.

21 . The method of claim 20 , wherein directing, by the first optical transmission subsystem, the first light beam to a select one of a plurality of first inputs axes of an optics assembly comprises controlling a position of an alignment mechanism of the first optical transmission subsystem.

22 . The method of claim 20 , wherein the first light beam is one of a laser beam, an OCT beam, a visual observation beam, and dual aiming beams.

23 . The method of claim 20 , wherein the first light beam is a colinear combination of two or more of a laser beam, an OCT beam, a visual observation beam, and dual aiming beams.

24 . The method of claim 20 , further comprising:

receiving a second light beam at a second optical transmission subsystem;

directing, by the first optical transmission subsystem, the second light beam to a select one of a plurality of second inputs axes of the optics assembly coupled to the eye; and

directing, by the optics assembly, the second light beam along the select one of the plurality of second inputs axes to a corresponding one of a plurality of second output axes of the optics assembly aligned with a corresponding one of the plurality of target volumes of ocular tissue in the eye.

25 . The method of claim 24 , wherein directing, by the second optical transmission subsystem, the second light beam to a select one of a plurality of second inputs axes of the optics assembly comprises controlling a position of an alignment mechanism of the second optical transmission subsystem.

26 . The method of claim 24 , wherein receiving the first light beam and receiving the second light beam occur simultaneously.

27 . The method of claim 24 , wherein the target volume of ocular tissue aligned with the first output axes of the optics assembly and the target volume of ocular tissue aligned with the second output axes of the optics assembly are the same target volume.

28 . The method of claim 24 , wherein the target volume of ocular tissue aligned with the first output axes of the optics assembly and the target volume of ocular tissue aligned with the second output axes of the optics assembly are different target volumes.

29 . An integrated surgical system for accessing one of a plurality of target volumes of ocular tissue in an eye having an optical axis, the system comprising:

a first optical transmission subsystem optically coupled to receive a first light beam;

an optics assembly having an optical axis, the optics assembly configured to couple to the eye to align its optical axis with the optical axis of the eye, the optics assembly optically coupled with the first optical transmission subsystem to receive the first light beam along one of a plurality of first input axes and to direct the first light beam to a corresponding one of a plurality of first output axes aligned with a corresponding one of the plurality of target volumes of ocular tissue in the eye;

a control system configured to control the first optical transmission subsystem to direct the first light beam into alignment with a select one of the plurality of first input axes; and

a housing having a non-rotatable portion and a rotatable portion configured to rotate about the optical axis of the optics assembly, wherein:

the optics assembly comprises an exit lens having a convex surface to which the first light beam is incident, a concave surface opposite the convex surface, a side region that extends between the convex surface and the concave surface, and a reflecting surface associated with the side region, which receives the first light beam and redirects the first light beam through the concave surface along the corresponding first output axis,

one or more components of the first optical transmission subsystem are mechanically coupled to the rotatable portion,

the optics assembly is symmetric and is mechanically coupled to the non-rotatable portion, and

the control system is configured to rotate the rotatable portion of the housing about the optical axis of the optics assembly such that the one or more components of the first optical transmission subsystem revolve around the optical axis of the optics assembly.

30 . The integrated surgical system of claim 29 , wherein the first optical transmission subsystem comprises a means for aligning the first light beam with the one of the plurality of first input axes.

31 . The integrated surgical system of claim 30 , wherein the means for aligning the first light beam comprises at least one adjustable reflecting surface optically aligned to receive the first light beam along an angle of incidence and to reflect the first light beam at an angle of reflection into alignment with the corresponding one of the plurality of first input axes.

32 . The integrated surgical system of claim 31 , wherein the adjustable reflecting surface comprises an actuated flip mirror or an actuated angular deflector.

33 . The integrated surgical system of claim 29 , wherein the first optical transmission subsystem is optically coupled to receive a plurality of different types of light beams and comprises a means for colinearly combining the plurality of different types of light beams into the first light beam.

34 . The integrated surgical system of claim 33 , wherein the means for colinearly combining the plurality of different types of light beams into the first light beam comprises at least one beam splitter and fiber-optic equivalents thereof.

35 . The integrated surgical system of claim 34 , wherein the at least one beam splitter comprises at least one polarization beam splitter and fiber-optic equivalents thereof.

36 . The integrated surgical system of claim 34 , wherein the at least one beam splitter comprises at least one dichroic or multiple wavelengths beam splitter and fiber-optic equivalents thereof.

37 . The integrated surgical system of claim 29 , wherein the first optical transmission subsystem comprises a focusing objective and the control system is configured to control the focusing objective to focus the first light beam at the corresponding one of the plurality of target volumes of ocular tissue.

38 . The integrated surgical system of claim 29 , wherein the first light beam is a laser beam.

39 . The integrated surgical system of claim 29 , further comprising a laser source configured to output the first light beam.

40 . The integrated surgical system of claim 29 , wherein the first light beam is a colinear beam comprising a laser beam and at least one of an OCT beam, a visual observation beam, and a pair of dual aiming beams.

41 . The integrated surgical system of claim 29 , further comprising a second optical transmission subsystem optically coupled to receive a second light beam, wherein:

the optics assembly is optically coupled with the second optical transmission subsystem to receive the second light beam along one of a plurality of second input axes and to direct the second light beam to a corresponding one of a plurality of second output axes aligned with a corresponding one of the plurality of target volumes of ocular tissue in the eye; and

the control system is configured to control the second optical transmission subsystem to direct the second light beam into alignment with a select one of the plurality of second input axes.

42 . The integrated surgical system of claim 41 , wherein the second optical transmission subsystem comprises a means for aligning the second light beam with the one of the plurality of second input axes.

43 . The integrated surgical system of claim 41 , wherein the second optical transmission subsystem is optically coupled to receive a plurality of different types of light beams and comprises a means for combining the plurality of different types of light beams into the second light beam.

44 . The integrated surgical system of claim 41 , wherein the second light beam comprising at least one of a laser beam, an OCT beam, a visual observation beam, and a pair of dual aiming beams.

45 . The integrated surgical system of claim 41 , wherein the second optical transmission subsystem comprises a focusing objective and the control system is configured to control the focusing objective to focus the second light beam at the corresponding one of the plurality of target volumes of ocular tissue.

46 . The integrated surgical system of claim 41 , wherein one or more components of the second optical transmission subsystem is mechanically coupled to a structure configured to rotate a portion of the second optical transmission subsystem about the optical axis of the optics assembly.

47 . The integrated surgical system of claim 29 , wherein the plurality of target volumes of ocular tissue comprises an irido-corneal angle, a cornea, a lens capsule, and a crystalline lens.

48 . A method of accessing one of a plurality of target volumes of ocular tissue in an eye having an optical axis, the method comprising:

receiving a first light beam at a first optical transmission subsystem;

directing, by the first optical transmission subsystem, the first light beam to a select one of a plurality of first inputs axes of an optics assembly coupled to the eye, wherein the optics assembly has an optical axis and is configured to couple to the eye to align its optical axis with the optical axis of the eye;

directing, by the optics assembly, the first light beam along the select one of the plurality of first inputs axes to a corresponding one of a plurality of first output axes of the optics assembly aligned with a corresponding one of the plurality of target volumes of ocular tissue in the eye; and

rotating a rotatable portion of a housing about the optical axis of the optics assembly such that one or more components of the first optical transmission subsystem revolve around the optical axis of the optics assembly, wherein:

the optics assembly comprises an exit lens having a convex surface to which the first light beam is incident, a concave surface opposite the convex surface, a side region that extends between the convex surface and the concave surface, and a reflecting surface associated with the side region, which receives the first light beam and redirects the first light beam through the concave surface along the corresponding first output axis,

the one or more components of the first optical transmission subsystem are mechanically coupled to the rotatable portion, and

the optics assembly is symmetric and is mechanically coupled to a non-rotatable portion of the housing.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 31, 2022
From: HOLLAND, GUY; JUHASZ, TIBOR; KHAZAEINEZHAD, REZA; LUMMIS, WESLEY W.; MIKULA, ERIC R.; RAKSI, FERENC; SHARMA, MANU; SRASS, HADI; SUAREZ, CARLOS G.
To: VIALASE, INC.
Reel/Frame 060959/0257 →
Continuity (1)
Related Publication 20240058169A1 · Feb 22, 2024
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