IP Library Granted Patent US 12,263,341
Granted Patent B2
US 12,263,341 · App. 17/730,322 · Granted Apr 1, 2025

Neuronal communication system

Inventor: Bálint Várkuti (Munich, DE)
Assignee: CereGate GmbH
A61N1/36057A61B5/055A61B5/377A61B6/032A61N1/0531A61N1/3606A61N5/0601A61N5/0622
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Quick Facts
Patent No.
US 12,263,341
App. No.
17/730,322
Granted
Apr 1, 2025
Kind
B2
Abstract

A system for providing neuronal stimulation signals configured to elicit sensory percepts in the cortex of an individual, comprising device for obtaining spatial information relating to the actual or planned position of a neuronal stimulation device relative to afferent axon(s) targeting sensory neuron(s) in the cortex of the individual and device for determining a neuronal stimulation signal to be applied to the afferent axon(s) via the neuronal stimulation device based at least in part on the obtained spatial information.

Claims (41)

1. A method for providing neuronal stimulation signals configured to elicit sensory percepts in the cortex of an individual, the method comprising:

by a processor coupled to a non-transitory memory medium:

obtaining spatial information relating to the actual or planned position of at least one neuronal stimulation device relative to at least one afferent axon targeting at least one sensory neuron in the cortex of the individual;

determining at least one neuronal stimulation signal to be applied to the at least one afferent axon via the at least one neuronal stimulation device based at least in part on the obtained spatial information, wherein determining the at least one neuronal stimulation signal is performed based at least in part on electrical properties of brain tissue of the individual surrounding the actual or planned position of the at least one neuronal stimulation device, and wherein determining the at least one neuronal stimulation signal comprises determining an excitation probability of one or more of the at least one afferent axon and the at least one sensory neuron based at least in part on the actual or planned position of the at least one neuronal stimulation device by using one or more of a finite element method and a neuronal compartment model; and

providing the at least one neuronal stimulation signal to the at least one neuronal stimulation device configured to apply the at least one neuronal stimulation signal to the at least one afferent axon.

2. The method of claim 1 , wherein obtaining the spatial information further comprises:

obtaining one or more of tractography information and neuronal connectivity information for the at least one afferent axon.

3. The method of claim 2 , wherein the tractography information and neuronal connectivity information comprise one or more of diffusion tensor imaging data and anatomic reference data.

4. The method of claim 1 , wherein obtaining the spatial information further comprises:

obtaining neuroimaging data of a volume of brain tissue surrounding at least a portion of the actual or planned position of the at least one neuronal stimulation device, wherein the neuroimaging data comprises one or more of computer tomography data and magnetic resonance imaging data.

5. The method of claim 1 , wherein determining the at least one neuronal stimulation signal is based at least in part on one or more of: at least one desired type of sensory percept to be elicited by the at least one neuronal stimulation signal, at least one desired target area of the cortex comprising the at least one targeted sensory neuron, and an optimization procedure based on optimizing the number of different sensory percepts that can be perceived by the individual when being stimulated by different neuronal stimulation signals via the at least one neuronal stimulation device.

6. The method of claim 1 , wherein the at least one afferent axon is a thalamocortical axon.

7. The method of claim 1 , wherein the at least one sensory neuron is located in at least one of: a somatosensory cortex area, an auditory cortex area, a visual cortex area, an olfactory cortex area, a gustatory cortex area, a somatosensory association cortex area, and a proprioception cortex area.

8. A system for providing neuronal stimulation signals configured to elicit sensory percepts in the cortex of an individual, the system comprising:

a processor coupled to a non-transitory memory medium storing instructions for carrying out the following steps when executed by the processor:

obtaining spatial information relating to the actual or planned position of at least one neuronal stimulation device relative to at least one afferent axon targeting at least one sensory neuron in the cortex of the individual;

determining at least one neuronal stimulation signal to be applied to the at least one afferent axon via the at least one neuronal stimulation device based at least in part on the obtained spatial information, wherein determining the at least one neuronal stimulation signal is performed based at least in part on electrical properties of brain tissue of the individual surrounding the actual or planned position of the at least one neuronal stimulation device, and wherein determining the at least one neuronal stimulation signal comprises determining an excitation probability of one or more of the at least one afferent axon and the at least one sensory neuron based at least in part on the actual or planned position of the at least one neuronal stimulation device by using one or more of a finite element method and a neuronal compartment model; and

providing the at least one neuronal stimulation signal to the at least one neuronal stimulation device configured to apply the at least one neuronal stimulation signal to the at least one afferent axon.

9. The system of claim 8 , wherein obtaining the spatial information further comprises:

obtaining or more of tractography information and neuronal connectivity information for the at least one afferent axon.

10. The system of claim 9 , wherein the tractography information and neuronal connectivity information comprise one or more of: diffusion tensor imaging data and anatomic reference data.

11. The system of claim 8 , wherein obtaining the spatial information further comprises:

obtaining neuroimaging data of a volume of brain tissue surrounding at least a portion of the actual or planned position of the at least one neuronal stimulation device, wherein the neuroimaging data comprises one or more of computer tomography data and magnetic resonance imaging data.

12. The system of claim 8 , wherein determining the at least one neuronal stimulation signal is based at least in part on one or more of: at least one desired type of sensory percept to be elicited by the at least one neuronal stimulation signal, at least one desired target area of the cortex comprising the at least one targeted sensory neuron, and an optimization procedure based on optimizing the number of different sensory percepts that can be perceived by the individual when being stimulated by different neuronal stimulation signals via the at least one neuronal stimulation device.

13. The system of claim 8 , wherein the at least one afferent axon is a thalamocortical axon.

14. The system of claim 8 , wherein the at least one sensory neuron is located in at least one of: a somatosensory cortex area, an auditory cortex area, a visual cortex area, an olfactory cortex area, a gustatory cortex area, a somatosensory association cortex area, and a proprioception cortex area.

15. A non-transitory memory medium storing instructions when executed by a processor of a computing system cause the computing system to:

obtain spatial information relating to the actual or planned position of at least one neuronal stimulation device relative to at least one afferent axon targeting at least one sensory neuron in the cortex of the individual;

determine at least one neuronal stimulation signal to be applied to the at least one afferent axon via the at least one neuronal stimulation device based at least in part on the obtained spatial information, wherein determining the at least one neuronal stimulation signal is performed based at least in part on electrical properties of brain tissue of the individual surrounding the actual or planned position of the at least one neuronal stimulation device, and wherein determining the at least one neuronal stimulation signal comprises determining an excitation probability of one or more of the at least one afferent axon and the at least one sensory neuron based at least in part on the actual or planned position of the at least one neuronal stimulation device by using one or more of a finite element method and a neuronal compartment model; and

provide the at least one neuronal stimulation signal to the at least one neuronal stimulation device configured to apply the at least one neuronal stimulation signal to the at least one afferent axon.

16. The non-transitory memory medium of claim 15 , wherein the instructions for obtaining the spatial information further comprises instructions for:

obtaining one or more of tractography information and neuronal connectivity information for the at least one afferent axon.

17. The non-transitory memory medium of claim 16 , wherein the tractography information and neuronal connectivity information comprise one or more of diffusion tensor imaging data and anatomic reference data.

18. The non-transitory memory medium of claim 15 , wherein the instructions for obtaining the spatial information further comprises instructions for:

obtaining neuroimaging data of a volume of brain tissue surrounding at least a portion of the actual or planned position of the at least one neuronal stimulation device, wherein the neuroimaging data comprises one or more of computer tomography data and magnetic resonance imaging data.

19. The non-transitory memory medium of claim 15 , wherein the instructions for determining the at least one neuronal stimulation signal cause the processor to

determine the at least one neuronal stimulation signal based at least in part on one or more of: at least one desired type of sensory percept to be elicited by the at least one neuronal stimulation signal, at least one desired target area of the cortex comprising the at least one targeted sensory neuron, and an optimization procedure based on optimizing the number of different sensory percepts that can be perceived by the individual when being stimulated by different neuronal stimulation signals via the at least one neuronal stimulation device.

20. The non-transitory memory medium of claim 15 , wherein the at least one afferent axon is a thalamocortical axon.

21. The non-transitory memory medium of claim 15 , wherein the at least one sensory neuron is located in at least one of: a somatosensory cortex area, an auditory cortex area, a visual cortex area, an olfactory cortex area, a gustatory cortex area, a somatosensory association cortex area, and a proprioception cortex area.

22. The non-transitory memory medium of claim 15 ,

wherein the at least one afferent axon targets the at least one sensory neuron via one or more synapse neural connections.

Assignments (3)
CHANGE OF ADDRESS OF ASSIGNEE Recorded Mar 17, 2023
From: CEREGATE GMBH
To: CEREGATE GMBH
Reel/Frame 063115/0923 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 27, 2022
From: VÁRKUTI, BÁLINT
To: CORTICS GMBH
Reel/Frame 059753/0683 →
CHANGE OF NAME Recorded Apr 27, 2022
From: CORTICS GMBH
To: CEREGATE GMBH
Reel/Frame 059805/0859 →
Priority Claims (1)
DE 10 2019 202 666.4 · Feb 27, 2019 · national
Continuity (2)
Division 16380036 · Apr 10, 2019
Related Publication 20220249845A1 · Aug 11, 2022
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