IP Library Granted Patent US 10,744,035
Granted Patent B2
US 10,744,035 · App. 14/301,871 · Granted Aug 18, 2020

Methods for robotic assisted cataract surgery

Inventors: Jeffery B. Alvarez (Redwood City, CA); Greg Kintz (Santa Cruz, CA); David Mintz (Mountain View, CA); Serena Wong (Menlo Park, CA)
Assignee: Auris Health, Inc.
A61F9/008A61B34/30A61B34/37A61F9/00736A61F2009/0087A61F2009/00851A61F2009/00887A61F2009/00889
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 10,744,035
App. No.
14/301,871
Granted
Aug 18, 2020
Kind
B2
Abstract

Systems and processes for facilitating the removal of cataract material with a robotically assisted tool with laser, irrigation capabilities, aspiration capabilities. Tool guidance systems that make use of vision technologies, including optical coherence tomography (OCT), white light imaging, and structured light imaging. Emulsification patterns optimized to minimize risk to the patient and reduce procedure time. Robotic tools with articulation capabilities that allow for precise control during capsulorhexis and emulsification procedures. Robotic instrument drive mechanisms combined with pumps, flow meters, and valves regulate and control irrigation and aspiration functionalities during robotic ophthalmologic procedures.

Claims (41)

1. A method comprising:

inserting a first tool into a chamber of a patient, the first tool comprising a plurality of lumens, wherein at least one of the plurality of lumens houses a laser fiber, wherein the first tool is attached to a first robotic arm;

inserting a second tool into the chamber of the patient, the second tool comprising a flush and aspiration device, wherein the second tool is attached to a second robotic arm;

articulating, via bending, a tip of the laser fiber separately from a tip of the first tool and applying laser energy from the laser fiber to break up an undesired clump of material into smaller pieces within the chamber of the patient;

articulating, via bending, the second tool and aspirating and removing the smaller pieces from the chamber; and

gradually varying a pulse repetition rate of the laser energy between a first value and a second value based on a distance that the tip of the first tool has traveled along a tool path, wherein the gradual varying of the pulse repetition rate is based on a hardness of the undesired clump of material at the distance along the tool path.

2. The method of claim 1 , wherein the first tool comprises a fiber jacket that encloses the laser fiber.

3. The method of claim 2 , wherein the first tool comprises four control tendons.

4. The method of claim 1 , wherein the laser fiber is configured to extend beyond a length of a tip of the first tool.

5. The method of claim 1 , wherein the second tool is dedicated only to flush and aspiration.

6. The method of claim 1 , wherein the first tool and the second tool are articulated towards a same general location.

7. The method of claim 6 , wherein at least one of the first tool and the second tool is angled from the top down and the other of the first tool and second tool is angled to undercut the undesired clump of material.

8. The method of claim 1 , further comprising tracking the first tool to a computer generated map.

9. The method of claim 1 , wherein the first tool comprises an electromagnetic (EM) sensor.

10. The method of claim 1 , wherein the laser energy has a pulse energy, repetition rate and pulse duration that are controlled in real time.

11. The method of claim 1 , wherein the second tool deploys a membrane umbrella.

12. The method of claim 1 , further comprising articulating the tip of the first tool toward a nucleus of the undesired clump of material and slowing a speed of the tip of the first tool based on a distance between the tip of the first tool and the nucleus.

13. The method of claim 1 , further comprising varying the pulse repetition rate of the laser energy between a first pulse repetition rate and a second pulse repetition rate that is higher than the first pulse repetition rate based on a distance between the tip of the first tool and the undesired clump of material.

14. The method of claim 1 , wherein:

the second tool has a flush mechanism that operates via a pump that is controlled by a computer, and

the second tool has a flow rate meter that detects a velocity of liquid that exits the flush mechanism, wherein information regarding the velocity of the liquid can be sent to the computer, wherein the computer can change the velocity of the liquid.

15. The method of claim 1 , wherein the laser fiber is aligned with a neutral axis of the first tool.

16. The method of claim 1 , wherein the tool path traverses the undesired clump of material.

17. A method comprising:

inserting a first tool into a chamber of a patient, the first tool comprising a plurality of lumens, wherein at least one of the plurality of lumens houses a laser fiber, wherein the first tool is attached to a first robotic arm;

inserting a second tool into the chamber of the patient, the second tool comprising a flush and aspiration device, wherein the second tool is attached to a second robotic arm;

articulating, via bending, a tip of the laser fiber separately from a tip of the first tool and applying laser energy from the laser fiber to break up an undesired clump of material into smaller pieces within the chamber of the patient;

articulating, via bending, the second tool and aspirating and removing the smaller pieces from the chamber; and

gradually varying a pulse repetition rate of the laser energy between a first value and a second value based on a distance that the tip of the first tool has traveled along a tool path, wherein the gradual varying of the pulse repetition rate further comprises compensating for inconsistencies in a speed of the tip of the first tool and compensating for movement of an anatomical structure of the patient.

18. A method comprising:

inserting a first tool into a chamber of a patient, the first tool comprising a plurality of lumens, wherein at least one of the plurality of lumens houses a laser fiber, wherein the first tool is attached to a first robotic arm;

inserting a second tool into the chamber of the patient, the second tool comprising a flush and aspiration device, wherein the second tool is attached to a second robotic arm;

articulating, via bending, a tip of the laser fiber separately from a tip of the first tool and applying laser energy from the laser fiber to break up an undesired clump of material into smaller pieces within the chamber of the patient;

articulating, via bending, the second tool and aspirating and removing the smaller pieces from the chamber; and

gradually varying a pulse repetition rate of the laser energy between a first value and a second value based on a distance that the tip of the first tool has traveled along a tool path, wherein the gradual varying of the pulse repetition rate further comprises achieving an effective tool tip speed that is substantially equivalent to a speed of the tip of the first tool having a consistent pulse repetition rate.

19. A method comprising:

inserting a first tool into a chamber of a patient, the first tool comprising a plurality of lumens, wherein at least one of the plurality of lumens houses a laser fiber, wherein the first tool is attached to a first robotic arm;

inserting a second tool into the chamber of the patient, the second tool comprising a flush and aspiration device, wherein the second tool is attached to a second robotic arm;

bending a tip of the laser fiber separately from a tip of the first tool and applying laser energy from the laser fiber to break up an undesired clump of material into smaller pieces within the chamber of the patient;

bending the second tool and aspirating and removing the smaller pieces from the chamber; and

varying a pulse repetition rate of the laser energy based on a signal received from an optical sensor as the tip of the first tool has traveled along a tool path, wherein the pulse repetition rate is varied based on a speed of the tip of the first tool, movement of an anatomical structure of the patient, and a distance that the tip of the first tool has traveled along a tool path.

Assignments (2)
CHANGE OF NAME Recorded Nov 20, 2018
From: AURIS SURGICAL ROBOTICS, INC.
To: AURIS HEALTH, INC.
Reel/Frame 048154/0343 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 30, 2015
From: ALVAREZ, JEFFERY B.; KINTZ, GREG; MINTZ, DAVID; WONG, SERENA
To: AURIS SURGICAL ROBOTICS, INC.
Reel/Frame 035942/0520 →
Cited By (38)
US 1,095,845 US 1,121,033 US 12,193,769 US 12,226,175 US 12,268,460 US 12,290,239 US 12,295,672 US 12,310,804 US 12,311,530 US 12,318,102 US 12,324,645 US 12,329,485 US 12,357,405 US 12,357,409 US 12,364,557 US 12,370,002 US 12,390,286 US 12,396,810 US 12,402,962 US 12,415,269 US 12,433,696 US 12,447,308 US 12,458,533 US 12,478,444 US 12,514,659 US 12,515,318 US 12,521,277 US 12,544,167 US 12,564,459 US 12,569,307 US 12,575,901 US 12,611,266 US 12,616,534 US 12,623,341 US 12,653,374 US 12,672,793 US 12,697,253 US 12,702,515