IP Library › Granted Patent US 12,029,565
Granted Patent B2
US 12,029,565 · App. 17/223,332 · Granted Jul 9, 2024

Systems and methods for nerve mapping and monitoring

Inventors: Jonathan D. Block (Walnut Creek, CA); Hieu T. Ball (Walnut Creek, CA)
Assignee: SidewayStrategies LLC
A61B5/24A61B1/32A61B5/4029A61B5/6847A61B5/742A61M29/00A61B5/296
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Quick Facts
Patent No.
US 12,029,565
App. No.
17/223,332
Granted
Jul 9, 2024
Kind
B2
Abstract

Embodiments can include a nerve mapping and monitoring system that can include a multi-polar stimulation unit, an electrical connector, an instrument having a grid array, where the grid array can comprise a plurality of electrodes, where each of the plurality of electrodes can be configured to be stimulated by the multi-polar stimulation unit, a recording element, where the recording element can be configured to detect a muscle response elicited by the grid array, and a computer, where the computer can be configured to monitor the muscle response elicited by the grid array such that neural structures can be identified and avoided.

Claims (43)

1. A nerve mapping system comprising:

a computer system configured to:

cause delivery of sequential variable multi-polar stimulation to electrodes of a grid array of electrodes according to a plurality of stimulation configurations to scan the grid array and elicit evoked potential responses, wherein the plurality of stimulation configurations include at least mono-polar, bi-polar, and tri-polar stimulation configurations of different electrodes of the grid array, and wherein the electrodes are positioned on a surface of an instrument configured to be inserted into a tissue site of a patient to map locations and proximities of neural structures in the tissue site; and

receive the evoked potential responses and combine information gathered based on the evoked potential responses to enable nerve mapping.

2. The nerve mapping system of claim 1 , wherein each of the electrodes is configured to be stimulated individually and independently, and wherein every one of the electrodes is configured to be stimulated as part of at least mono-polar, bi-polar, and tri-polar stimulation configurations.

3. The nerve mapping system of claim 1 , wherein the computer system is further configured to:

generate a virtual map of locations and proximities of neural structures in the tissue site based at least in part on the information gathered based on the evoked potential responses.

4. The nerve mapping system of claim 3 , wherein the virtual map includes:

a graphical representation of the instrument including a graphical representation of the grid array and positions of the electrodes of the grid array overlaid on the graphical representation of the instrument; and

one or more colors overlaid on the graphical representation of the instrument including the graphical representation of the grid array of electrodes, wherein the one or more colors indicate the locations and proximities of the neural structures in relation to the instrument and to each electrode of the grid array of electrodes on the surface of the instrument.

5. The nerve mapping system of claim 3 , wherein the computer system is further configured to:

output the virtual map for display on an electronic display.

6. The nerve mapping system of claim 1 , wherein the instrument comprises at least one of: a probe, a tissue dilator, or a retractor system.

7. The nerve mapping system of claim 1 , wherein the instrument comprises a probe for peripheral nerve mapping.

8. The nerve mapping system of claim 1 , wherein the instrument comprises a combination of a retractor system, a plurality of tissue dilators, and a probe, and wherein each of the retractor system, the plurality of tissue dilators, and the probe includes at least a portion of the grid array of electrodes.

9. The nerve mapping system of claim 1 , wherein the computer system is further configured to:

adjust one or more stimulation parameters when causing delivery of stimulation to electrodes of the grid array, wherein the one or more stimulation parameters include at least one of: current level, voltage level, or pulse width.

10. An apparatus for nerve mapping, the apparatus comprising:

an instrument configured to be inserted into a tissue site of a patient; and

a grid array of a plurality of electrodes positioned on a surface of the instrument and configured to enable mapping of locations and proximities of neural structures in the tissue site, wherein:

each of the plurality of electrodes is configured to be stimulated individually and independently according to a plurality of stimulation configurations to scan the grid array and elicit evoked potential responses, and

every one of the plurality of electrodes is configured to be stimulated as part of at least mono-polar, bi-polar, and tri-polar stimulation configurations of different electrodes of the grid array.

11. The apparatus of claim 10 , wherein the plurality of stimulation configurations involve delivery of sequential variable multi-polar stimulation to electrodes of the grid array.

12. The apparatus of claim 10 , wherein the instrument comprises at least one of: a surgical probe, a tissue dilator, or a retractor system.

13. The apparatus of claim 10 , wherein the instrument comprises a probe for peripheral nerve mapping.

14. The apparatus of claim 10 , wherein the instrument comprises a combination of a retractor system, a plurality of tissue dilators, and a surgical probe, and wherein each of the retractor system, the plurality of tissue dilators, and the surgical probe includes at least a portion of the grid array.

15. The apparatus of claim 10 , wherein the grid array comprises and arrangement of the plurality of electrodes on the surface of the instrument in a plurality of rows and a plurality of columns.

16. The apparatus of claim 10 further comprising:

one or more recording electrodes or needles configured to detect evoked potential responses elicited by stimulation of combinations of electrodes of the plurality of electrodes of the grid array according to the plurality of stimulation configurations.

17. A method of nerve mapping, the method comprising:

providing an apparatus for nerve mapping according to claim 10 ;

inserting the instrument, including the grid array, into a tissue site of a patient; and

initiating delivery of sequential variable multi-polar stimulation to electrodes of the plurality of electrodes of the grid array according to a plurality of stimulation configurations to scan the grid array and elicit evoked potential responses to provide nerve mapping.

18. The method of claim 17 further comprising:

causing display of a virtual map of locations and proximities of neural structures in the tissue site, wherein is virtual map is generated based at least in part on information gathered based on the evoked potential responses.

19. The method of claim 18 , wherein the virtual map includes:

a graphical representation of the instrument including a graphical representation of the grid array and positions of the plurality of electrodes of the grid array overlaid on the graphical representation of the instrument; and

one or more colors overlaid on the graphical representation of the instrument including the graphical representation of the grid array, wherein the one or more colors indicate the locations and proximities of the neural structures in relation to the instrument and to each electrode of the plurality of electrodes of the grid array on the surface of the instrument.

20. The method of claim 17 , wherein the instrument comprises at least one of:

a probe for peripheral nerve mapping,

a tissue dilator,

a retractor system, or

a combination of a retractor system, a plurality of tissue dilators, and a probe, and wherein each of the retractor system, the plurality of tissue dilators, and the probe of the combination includes at least a portion of the grid array.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 22, 2022
From: BLOCK, JONATHAN D.; BALL, HIEU T.
To: SIDEWAYSTRATEGIES LLC
Reel/Frame 061189/0104 →
Continuity (4)
Continuation 16025249 · Jul 2, 2018
Continuation 14059256 · Oct 21, 2013
Provisional Application 61715956 · Oct 19, 2012
Related Publication 20210361212A1 · Nov 25, 2021
Cited By (1)
US 12,471,832