IP Library Granted Patent US 12,642,985
Granted Patent B2
US 12,642,985 · App. 17/551,135 · Granted Jun 2, 2026

Dermatological laser systems and methods with pressure sensing handpiece

Inventors: Michael A. Karavitis (San Pedro, CA); Wytze E. van der Veer (San Bruno, CA); Amogh Kothare (Fremont, CA); Soenke A. Moeller (Berkeley, CA); Shawn M. Gilliam (Daly City, CA)
Assignee: Cutera, Inc.
A61N5/0616A61N5/067A61N2005/007A61N2005/0626A61N2005/0644
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Quick Facts
Patent No.
US 12,642,985
App. No.
17/551,135
Granted
Jun 2, 2026
Kind
B2
Abstract

Dermatological systems and methods for providing a therapeutic laser treatment using a handpiece providing contact cooling of the skin and contact sensing to ensure proper contact between therapeutic laser and the contact cooling element and skin of the patient.

Claims (96)

1 . A system for treating the skin of a patient, the system comprising:

a) a laser source for providing a plurality of therapeutic laser pulses for application to one or more locations within a first skin area of the patient;

b) a handpiece comprising:

1) a handpiece body comprising an aperture, the handpiece body optically coupled to the laser source and having a pulse delivery region adapted to deliver the therapeutic laser pulses to the one or more locations within the first skin area through the aperture;

2) a contact sensing unit, comprising:

A) a frame surrounding at least a portion of the aperture;

B) an arm fixedly connected to the handpiece body;

C) a spring extending between the arm and a distal end of the handpiece, the spring configured to urge the distal end of the handpiece counterclockwise; and

D) a plurality of sensing elements adjacent the frame at spaced-apart locations, wherein a force applied to the contact sensing unit urges the distal end of the handpiece to rotate clockwise when the force applied to the contact sensing unit exceeds the force of the spring, causing separation of components of one or more the plurality of sensing elements and producing an electrical signal, each sensing element being capable of providing an indication of contact between the handpiece and the skin of the patient at one of the spaced-apart locations based on production of the electrical signal;

c) a contact indicator for providing a first parameter in the form of a first visual indication to a system user based on less than a predetermined number of the plurality of contact sensing elements detecting contact between the handpiece and the skin of the patient; and

d) a controller operably connected to the plurality of sensing elements, the controller configured to prevent the delivery of the plurality of laser pulses in response to less than a predetermined number of the plurality of contact sensing elements providing an indication of contact between the handpiece and the skin of the patient to the controller, the controller further configured to activate the contact indicator to provide the first visual indication in response to less than the predetermined number of the plurality of contact sensing elements providing an indication of contact between the handpiece and the skin of the patient to the controller.

2 . The system of claim 1 , wherein the contact sensing unit further comprises a force sensor for sensing one of a force and a pressure between the handpiece and the skin of the patient.

3 . The system of claim 1 , wherein the aperture comprises a contact window adapted to contact the first skin area, and each sensing element is capable of providing an indication of contact between a portion of the contact window and the skin of the patient adjacent one of the spaced-apart locations.

4 . The system of claim 1 , wherein the contact sensing unit senses contact based on detecting an optical condition of the patient's skin adjacent each sensing element.

5 . The system of claim 1 , wherein the contact window is a contact cooling window adapted to cool the first skin area.

6 . The system of claim 1 wherein controller is configured to activate the contact indicator to provide a second visual indication to a system user based on all of the plurality of contact sensing elements detecting contact between the contact sensing unit and the skin of a patient.

7 . The system of claim 1 , wherein the plurality of sensing elements each comprises:

a light transmitter for directing light onto the target skin area of the patient source; and

a light receiver capable of providing a signal indicative of the magnitude of the light reflected from the target skin area of the patient, wherein the controller is capable of identifying contact between each of the sensing elements and the skin of the patient based on the magnitude of the light reflected from the target skin area.

8 . The system of claim 1 , wherein the contact sensing unit further comprises a force sensor for sensing one of a force and a pressure between the handpiece and the skin of the patient.

9 . A system for treating the skin of a patient with a therapeutic laser pulse, the system comprising:

a) a laser source for generating a plurality of therapeutic laser pulses for application to a first skin area of the patient;

b) a handpiece comprising:

1) a handpiece body optically coupled to the laser source and having a pulse delivery region adapted to deliver the therapeutic laser pulses to one or more locations within the first skin area;

2) a contact window adapted to contact the first skin area, wherein the therapeutic laser pulses are delivered to the one or more locations through the contact window;

3) a contact sensing unit, comprising:

A) a frame surrounding at least a portion of the contact window;

B) an arm fixedly connected to the handpiece body;

C) a spring extending between the arm and a distal end of the handpiece, the spring configured to urge the distal end of the handpiece counterclockwise; and

D) a plurality of sensing elements coupled to the frame at spaced-apart locations, wherein a force applied to the contact window urges the distal end of the handpiece to rotate clockwise when the force applied to the contact window exceeds the force of the spring, causing separation of components of one or more of the plurality of sensing elements and producing an electrical signal, each sensing element being capable of producing a signal indicating contact between a portion of the contact window and the skin of the patient adjacent one of the spaced-apart locations based on production of the electrical signal;

c) a contact indicator for providing a first visual indication of a first parameter to a system user based on less than all of the plurality of contact sensing elements detecting contact between the portion of the contact window and the skin of the patient; and

d) a controller operably connected to the plurality of sensing elements, the controller configured to prevent the delivery of the plurality of laser pulses in response to determining the first parameter from the plurality of contact sensing elements, the controller further configured to activate the contact indicator to provide the first visual indication in response to less than all of the plurality of contact sensing elements detecting contact between the portion of the contact window and the skin of the patient.

10 . The system of claim 9 , wherein the controller is configured to activate contact indicator to provide a second visual indication of a second parameter to a system user based on all of the plurality of contact sensing elements detecting contact between a portion of the contact window and the skin of the patient, wherein the controller permits delivery of the laser pulses in response to determining the second parameter.

11 . The system of claim 9 , wherein the plurality of sensing elements each comprises:

a light transmitter for directing light onto the skin of the patient at one of the spaced-apart locations; and

a light receiver capable of providing a signal indicative of the magnitude of the light reflected from the skin of the patient at said one of the spaced-apart locations, wherein the controller is capable of identifying contact between a portion of the contact window and the skin of the patient at said one of the spaced-apart locations based on the magnitude of the light reflected from the skin at said one of the spaced-apart locations.

12 . The system of claim 9 , wherein the controller provides at least one feedback parameter selected from:

1) an indication of whether or not each of the plurality of contact sensing elements is in contact with the skin;

2) an indication of one of the pressure and the force at each of the spaced apart locations;

3) an indication of one of a variation in pressure and a variation in force between two or more of the spaced apart locations;

4) an indication of a variation in reflected light between two or more of the spaced apart locations

5) an indication that the pressure at each of the plurality of spaced apart locations exceeds a minimum pressure threshold;

6) an indication that the pressure at each of the plurality of spaced apart locations is less than a maximum pressure threshold;

7) an indication of the force at each of the spaced apart locations;

8) an indication of the variation in force between two or more of the spaced apart locations;

9) an indication that the force at each of the plurality of spaced apart locations exceeds a minimum pressure threshold;

10) an indication that the force at each of the plurality of spaced apart locations is less than a maximum pressure threshold; and

11) an indication that the total force between handpiece and the skin of the patient exceeds a minimum pressure threshold.

13 . The system of claim 9 , wherein the plurality of contact sensing elements comprises from two to eight contact sensing elements.

14 . The system of claim 9 , wherein the handpiece body comprises a proximal end optically coupled to the laser source and a distal end comprising the pulse delivery region, and wherein the contact window comprises a contact cooling window having a contact surface to contact and cool a first skin area comprising the one or more locations to which the plurality of laser pulses are delivered.

15 . The system of claim 9 , wherein the handpiece further comprises at least one of:

3) a contact cooling unit comprising the contact window and located at the pulse delivery region of the handpiece body, the contact window having

A) a contact surface adapted to contact and cool a first skin area comprising the one or more locations, and

B) a periphery;

wherein the handpiece comprises the contact cooling unit and the contact sensing unit comprises:

A) a frame comprising one of a ring and a partial ring surrounding at least a portion of the contact cooling window periphery;

B) two contact sensing elements on the frame to sense force or pressure; and

C) an indicator to provide a force or pressure parameter.

16 . A system for treating the skin of a patient with a therapeutic laser pulse, the system comprising:

a) a laser source for generating therapeutic laser pulses for application to a target skin area;

b) a handpiece comprising:

1) a handpiece body having a first region optically coupled to the laser source and a second region adapted to deliver the therapeutic laser pulses to the target skin area;

2) a contact cooling unit located at the second region of the handpiece body, the contact cooling unit comprising a contact cooling window having:

A) a contact surface adapted to contact and cool a first skin area comprising the target skin area, and

B) a periphery; and

3) a contact sensing unit for contacting the skin of the patient, comprising:

A) a frame surrounding at least a portion of the contact cooling window periphery;

B) an arm fixedly connected to the handpiece body;

C) a spring extending between the arm and a distal end of the handpiece, the spring configured to urge the distal end of the handpiece counterclockwise; and

D) a first contact sensing element at a first location on the frame, wherein a force applied to the contact cooling window urges the distal end of the handpiece to rotate clockwise when the force applied to the contact cooling window exceeds the force of the spring, causing separation of components of the first contact sensing element and producing a first electrical signal, the first contact sensing element being capable of producing a signal indicating contact between a portion of the contact window and the skin of the patient adjacent to the first location based on production of the first electrical signal; and

E) at least a second contact sensing element at a second location on the frame, wherein a force applied to the contact cooling window urges the distal end of the handpiece to rotate clockwise when the force applied to the contact cooling window exceeds the force of the spring, causing separation of components of one or more of the at least a second contact sensing element and producing a second electrical signal, the at least a second contact sensing element being capable of producing a signal indicating contact between a portion of the contact window and the skin of the patient adjacent to the second location based on production of the second electrical signal; and

c) a contact indicator for providing a first visual indication of at least one first parameter to a system user based on the first contact sensing element and the at least a second contact sensing element indicating contact between the contact window and the skin of the patient, the contact indicator comprising an LED comprising a part of the handpiece.

17 . The system of claim 16 , wherein the contact indicator provides at least one of a contact feedback parameter, a force feedback parameter, and a pressure feedback parameter selected from:

1) an indication of whether or not the first contact sensing element and the at least a second contact sensing element are in contact with the skin;

2) an indication of the pressure at the first location and the second location;

3) an indication of the pressure difference between the pressure at the first location and the pressure at the second location;

4) an indication that the pressure at each of the first and second locations exceeds a minimum pressure threshold;

5) an indication that the pressure at each of the first and second locations is less than a maximum pressure threshold;

6) an indication that the pressure difference between the pressure at the first location and the pressure at the second location is less than a maximum pressure difference threshold;

7) an indication of the applied force at the first location and the second location;

8) an indication of the difference in the applied force at the first location and the applied force at the second location;

9) an indication that the total applied force at the first and second locations exceeds a minimum force threshold;

10) an indication that the total applied force at the first and second locations is less than a maximum force threshold;

11) an indication that the difference in the applied force at the first location and the applied force at the second location is less than a maximum force difference threshold.

18 . The system of claim 16 wherein the at least a second contact sensing element comprises at least one contact sensing elements ranging from one to seven contact sensing elements, each located at a different location than the first location.

19 . The system of claim 16 , wherein the contact sensing unit comprises:

A) a frame comprising one of a ring and a partial ring surrounding at least a portion of the contact cooling window periphery, the frame comprising at least one groove therein;

B) a first contact sensing element at a first location in the at least one groove of the frame to sense one of the applied force at the first location when contact sensing unit is placed in contact with the skin, the first contact sensing element comprising:

1) a flexible material having a changing electrical resistivity based on the force applied thereto;

2) circuitry to sense changes in the electrical resistivity of the flexible material; and

3) a first cover element covering the flexible material;

C) at least a second contact sensing element at a second location in the at least one groove of the frame to sense the applied force at the second location when the contact sensing unit is placed in contact with the skin, the second contact sensing element comprising:

1) a flexible material having a changing electrical resistivity based on the force applied thereto;

2) circuitry to sense changes in the electrical resistivity of the flexible material;

3) a first cover element covering the flexible material.

20 . The system of claim 16 , wherein the contact sensing unit further comprises a force sensor for sensing one of a force and a pressure between the handpiece and the skin of the patient.

Assignments (4)
SECURITY INTEREST Recorded May 5, 2025
From: CUTERA, INC.
To: WILMINGTON SAVINGS FUND SOCIETY, FSB
Reel/Frame 071019/0980 →
RELEASE OF SECURITY INTEREST Recorded May 5, 2025
From: WILMINGTON SAVINGS FUND SOCIETY, FSB
To: CUTERA, INC.
Reel/Frame 071020/0001 →
SECURITY INTEREST Recorded Mar 13, 2025
From: CUTERA, INC.
To: WILMINGTON SAVINGS FUND SOCIETY, FSB, AS COLLATERAL AGENT
Reel/Frame 070505/0728 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 11, 2022
From: KARAVITIS, MICHAEL A.; VAN DER VEER, WYTZE E.; KOTHARE, AMOGH; MOELLER, SOENKE A.; GILLIAM, SHAWN M.
To: CUTERA, INC.
Reel/Frame 059555/0061 →
Continuity (4)
Continuation In Part 17120237 · Dec 13, 2020
Continuation In Part 16805761 · Feb 29, 2020
Provisional Application 63125354 · Dec 14, 2020
Related Publication 20220212026A1 · Jul 7, 2022
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