IP Library › Granted Patent US 9,821,161
Granted Patent B2
US 9,821,161 · App. 15/413,287 · Granted Nov 21, 2017

Apparatus and method using near infrared reflectometry to reduce the effect of positional changes during spinal cord stimulation

Inventor: Erich W. Wolf, II (Lake Charles, LA)
A61N1/36071A61N1/36139A61N1/36157A61N1/36175A61N1/37217A61N1/37235A61N1/37264
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Quick Facts
Patent No.
US 9,821,161
App. No.
15/413,287
Granted
Nov 21, 2017
Kind
B2
Abstract

A positionally sensitive spinal cord stimulation apparatus and method using near-infrared (NIR) reflectometry are provided for automatic adjustments of spinal cord stimulation. The system comprises an electrode assembly with an integrated optical fiber sensor for sensing spinal cord position. The integrated optical fiber sensor, comprising a pair of optical elements for emitting light from an IR emitter and for collecting reflected light into a photodetector, determines a set of measured photocurrents. As the spinal cord changes position, the angles of incidence for light from the IR emitter and the measured optical intensities change. Electrode pulse characteristics are adjusted in real time, based on the set of measured optical intensities, to minimize changes in stimulation perceived by the patient during motion. The system includes automatic calibration of the optical fiber sensor when the patient is at rest, and a patient orientation detection.

Claims (71)

1. A stimulator system comprising:

a controller;

a first lead connected to the controller;

a second lead connected to the controller;

a first optical element attached to the first lead;

a second optical element attached to the second lead;

a first set of electrodes, attached to the first lead, operatively connected to the controller;

a second set of electrodes, attached to the second lead, operatively connected to the controller;

an optical source, operatively connected to the controller;

an incident light beam, generated by the optical source;

an optical detector, operatively connected to the controller;

a photocurrent generated by the optical detector;

a first optical fiber, coupling the optical source to the first optical element;

a second optical fiber, coupling the optical detector to the second optical element;

wherein the incident light beam is adapted to be directed by the first optical fiber to the first optical element and emitted from the first optical element to interact with an external surface;

a reflected light beam adapted to be produced from the interaction of the incident light beam with the external surface;

wherein the reflected light beam is adapted to be collected by the second optical element, directed by the second optical fiber to the optical detector and received by the optical detector to generate the photocurrent;

wherein the controller generates and directs a set of electrode currents to the first set of electrodes and the second set of electrodes, based on the photocurrent;

the controller including a processor and a memory, operatively connected to the processor;

a set of programmed instructions stored in the memory;

a set of calibration parameters stored in the memory;

wherein the processor, when executing the set of programmed instructions, causes the controller to:

determine a set of current amplitudes for the set of electrode currents based on the set of calibration parameters;

store a set of historical photocurrent levels in the memory; and,

derive the set of electrode current amplitudes based on the photocurrent and the set of historical photocurrent levels.

2. The system of claim 1 wherein the set of programmed instructions further causes the controller to:

derive a set of electrode current pulse widths for the set of electrode currents based on the set of historical photocurrent levels.

3. The system of claim 1 wherein the set of programmed instructions further causes the controller to:

derive a set of electrode current pulse frequencies for the set of electrode currents based on the set of historical photocurrent levels.

4. The system of claim 1 further comprising a calibration unit, operatively connected to the controller, configured to generate the set of calibration parameters.

5. The stimulator system of claim 1 wherein the first optical element further comprises a first mirror and a first lens and the second optical element further comprises a second mirror and a second lens.

6. The stimulator system of claim 1 wherein the first optical element further comprises a first negative axicon and the second optical element further comprises a second negative axicon.

7. The stimulator system of claim 1 wherein the first lead and the second lead are percutaneous leads.

8. A stimulator system comprising:

a controller;

an orientation sensor operatively connected to the controller;

a first lead connected to the controller;

a second lead connected to the controller;

a first optical element attached to the first lead;

a second optical element attached to the second lead;

a first set of electrodes, attached to the first lead, operatively connected to the controller;

a second set of electrodes, attached to the second lead, operatively connected to the controller;

an optical source, operatively connected to the controller;

an incident light beam, generated by the optical source;

an optical detector, operatively connected to the controller;

a photocurrent generated by the optical detector;

a first optical fiber, coupling the optical source to the first optical element;

a second optical fiber, coupling the optical detector to the second optical element;

wherein the incident light beam is adapted to be directed by the first optical fiber to the first optical element and emitted from the first optical element to interact with an external surface;

a reflected light beam adapted to be produced from the interaction of the incident light beam with the external surface;

wherein the reflected light beam is adapted to be collected by the second optical element, directed by the second optical fiber to the optical detector and received by the optical detector to generate the photocurrent;

wherein the controller generates and directs a set of electrode currents to the first set of electrodes and the second set of electrodes, based on the photocurrent;

the controller including a processor and a memory, operatively connected to the processor;

a set of programmed instructions stored in the memory;

a set of calibration parameters stored in the memory;

wherein the processor, when executing the set of programmed instructions, causes the controller to:

detect and store a set of orientation positions from the sensor in the set of calibration parameters; and,

determine a set of current amplitudes for the set of electrode currents based on the set of calibration parameters.

9. The system of claim 8 wherein the processor, when executing the set of programmed instructions, causes the controller to:

detect an orientation in the set of orientation positions;

detect the photocurrent for the orientation; and,

adjust the set of calibration parameters based on the photocurrent.

10. The system of claim 9 wherein the processor, when executing the set of programmed instructions, causes the controller to:

determine when a patient is in a rest position based on changes in values of one or more of the group of roll, pitch, and yaw from the orientation sensor;

detect the photocurrent for the rest position; and,

adjust the set of calibration parameters based on the rest position and the photocurrent.

11. The system of claim 10 wherein the processor, when executing the set of programmed instructions, causes the controller to:

adjust an optical source intensity for the optical source in the set of calibration parameters based on the rest position and the photocurrent.

12. The stimulator system of claim 8 wherein the first optical element further comprises a first mirror and a first lens and the second optical element further comprises a second mirror and a second lens.

13. The stimulator system of claim 8 wherein the first optical element further comprises a first negative axicon and the second optical element further comprises a second negative axicon.

14. The stimulator system of claim 8 wherein the first lead and the second lead are percutaneous leads.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 23, 2020
From: WAVEGATE TECHNOLOGIES, LLC
To: WAVEGATE CORPORATION
Reel/Frame 052481/0211 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 14, 2019
From: WOLF, ERICH W., II
To: WAVEGATE TECHNOLOGIES, LLC
Reel/Frame 051286/0260 →
Continuity (7)
Division 14336796 · Jul 21, 2014
Continuation In Part 14019240 · Sep 5, 2013
Continuation In Part 13780470 · Feb 28, 2013
Continuation In Part 13567966 · Aug 6, 2012
Continuation 12925231 · Oct 14, 2010
Provisional Application 61867413 · Aug 19, 2013
Related Publication 20170128726A1 · May 11, 2017