IP Library Granted Patent US 12,369,813
Granted Patent B2
US 12,369,813 · App. 18/501,441 · Granted Jul 29, 2025

MR spectroscopy system and method

Inventors: James Clayton Peacock, III (San Carlos, CA); John Patrick Claude (Redwood City, CA); Paul Henry Kane (Albuquerque, NM)
Assignee: Aclarion, Inc.
A61B5/055A61B5/4514A61B5/4566A61B5/4824A61B5/748G01R33/485A61B5/743A61B2576/02
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Quick Facts
Patent No.
US 12,369,813
App. No.
18/501,441
Granted
Jul 29, 2025
Kind
B2
Abstract

An MR Spectroscopy (MRS) system and approach is provided for diagnosing painful and non-painful discs in chronic, severe low back pain patients (DDD-MRS). A DDD-MRS pulse sequence generates and acquires DDD-MRS spectra within intervertebral disc nuclei for later signal processing and diagnostic analysis. An interfacing DDD-MRS signal processor receives output signals of the DDD-MRS spectra acquired and is configured to optimize signal-to-noise ratio by an automated system that selectively conducts optimal channel selection, phase and frequency correction, and frame editing as appropriate for a given acquisition series. A diagnostic processor calculates a diagnostic value for the disc based upon a weighted factor set of criteria that uses MRS data extracted from the acquired and processed MRS spectra for multiple chemicals that have been correlated to painful vs. non-painful discs. A display provides an indication of results for analyzed discs as an overlay onto a MRI image of the lumbar spine.

Claims (49)

1. A magnetic resonance spectroscopy (MRS) processing system configured to process a multi-frame MRS spectral acquisition series generated and acquired for a voxel principally located within a region of interest (ROI) via an MRS pulse sequence in order to generate a processed MRS spectrum for the ROI from which data may be extracted by a diagnostic processor to provide MRS-based diagnostic information for diagnosing a medical condition associated with, or chemical environment within, the ROI, comprising:

one or more computer processors; and

one or more non-transitory computer readable media comprising computer-readable instructions configured to cause the one or more computer processors to implement an MRS signal processor and an MRS spectrum quality analyzer;

wherein the MRS signal processor is operable to:

receive the multi-frame MRS spectral acquisition series that includes a set of frames generated and acquired from the voxel located within the region of interest (ROI) via the MRS pulse sequence operation of an MRS system;

process one or more frames of the MRS spectral acquisition series to generate the processed MRS spectrum; and

wherein the MRS spectrum quality analyzer is operable to:

determine a parameter indicative of MRS spectral quality for the processed MRS spectrum;

compare the determined parameter to a threshold criterion to determine whether the determined parameter indicative of MRS spectral quality satisfies the threshold criterion;

responsive to the determined parameter satisfying the threshold criterion, determine to provide the processed MRS spectrum to the diagnostic processor for performing diagnostic processing to provide the diagnostic information; and

responsive to the determined parameter not satisfying the threshold criterion, determining to not provide the diagnostic information based on the processed MRS spectrum.

2. The MRS processing system of claim 1 , wherein the MRS diagnostic processor is responsive to the determined parameter not satisfying the threshold criterion to output an indication of indeterminate results.

3. The MRS processing system of claim 1 , wherein the MRS signal processor is responsive to the determined parameter not satisfying the threshold criterion to process the one or more frames of the MRS spectral acquisition series using different signal processing parameters to generate a new processed MRS spectrum.

4. The MRS processing system of claim 1 , wherein the MRS spectrum quality analyzer is responsive to the determined parameter not satisfying the threshold criterion to compare aspects of the processed MRS spectrum to features associated with low MRS spectral quality, determine a potential source of low MRS spectral quality, and either a) output information indicating the potential source of low MRS spectral quality, or b) determine a potential correction to the low MRS spectral quality to apply in a repeat exam.

5. The MRS processing system of claim 1 , wherein the MRS processing system is responsive to the determined parameter not satisfying the threshold criterion to receive a new MRS spectral acquisition series that includes a set of new frames generated and acquired from a new voxel located within the same region of interest (ROI) via a new MRS pulse sequence operation of the MRS system.

6. The MRS processing system of claim 1 , wherein the MRS spectrum quality analyzer is operable to determine whether the processed MRS spectrum comprises a regional signature signal along the MRS spectrum that is characteristic of lipid.

7. The MRS processing system of claim 1 , wherein the parameter indicative of MRS spectral quality comprises a signal-to-noise comparison parameter.

8. The MRS processing system of claim 1 , wherein the MRS spectrum quality analyzer is operable to determine the parameter indicative of MRS spectral quality based at least in part on at least one spectral line width.

9. One or more non-transitory computer readable media comprising computer-readable instructions configured to cause one or more computer processors to:

receive a multi-frame MRS spectral acquisition series that includes a set of frames generated and acquired from a voxel located within a region of interest (ROI) via an MRS pulse sequence operation of an MRS system;

signal process one or more frames of the MRS spectral acquisition series to generate a processed MRS spectrum for the ROI from which data may be extracted to provide MRS-based diagnostic information for diagnosing a medical condition associated with, or chemical environment within, the ROI;

determine a parameter indicative of MRS spectral quality for the processed MRS spectrum;

compare the determined parameter to a threshold criterion to determine whether the determined parameter indicative of MRS spectral quality satisfies the threshold criterion;

responsive to the determined parameter satisfying the threshold criterion:

determine to perform diagnostic processing on the processed MRS spectrum to provide the diagnostic information; and

responsive to the determined parameter not satisfying the threshold criterion:

determine not to provide the diagnostic information based on the processed MRS spectrum.

10. The non-transitory computer readable media of claim 9 , wherein the computer-readable instructions are configured to cause the one or more computer processors to output an indication of indeterminate results in response to the determined parameter not satisfying the threshold criterion.

11. The non-transitory computer readable media of claim 9 , wherein the computer-readable instructions are configured to cause the one or more computer processors to signal process the one or more frames of the MRS spectral acquisition series using different signal processing parameters to generate a new processed MRS spectrum in response to the determined parameter not satisfying the threshold criterion.

12. The non-transitory computer readable media of claim 9 , wherein, in response to the determined parameter not satisfying the threshold criterion, the computer-readable instructions are configured to cause the one or more computer processors to compare aspects of the processed MRS spectrum to features associated with low MRS spectral quality, determine a potential source of low MRS spectral quality, and either a) output information indicating the potential source of low MRS spectral quality, or b) determine a potential correction to the low MRS spectral quality to apply in a repeat exam.

13. The non-transitory computer readable media of claim 9 , wherein, in response to the determined parameter not satisfying the threshold criterion, the computer-readable instructions are configured to cause the one or more computer processors to receive a new MRS spectral acquisition series that includes a set of new frames generated and acquired from a new voxel located within the same region of interest (ROI) via a new MRS pulse sequence operation of the MRS system.

14. The non-transitory computer readable media of claim 9 , wherein the computer-readable instructions are configured to cause the one or more computer processors to determine that the processed MRS spectrum comprises a regional signature signal along the MRS spectrum that is characteristic of lipid.

15. The non-transitory computer readable media of claim 9 , wherein the parameter indicative of MRS spectral quality comprises a signal-to-noise comparison parameter.

16. The non-transitory computer readable media of claim 9 , wherein the computer-readable instructions are configured to cause the one or more computer processors to determine the parameter indicative of MRS spectral quality based at least in part on at least one spectral line width.

17. A magnetic resonance spectroscopy (MRS) processing method comprising:

receiving a multi-frame MRS spectral acquisition series that includes a set of frames generated and acquired from a voxel located within a region of interest (ROI) via an MRS pulse sequence operation of an MRS system;

signal processing one or more frames of the MRS spectral acquisition series to generate a processed MRS spectrum for the ROI from which data may be extracted to provide MRS-based diagnostic information for diagnosing a medical condition associated with, or chemical environment within, the ROI;

determining a parameter indicative of MRS spectral quality for the processed MRS spectrum;

comparing the determined parameter to a threshold criterion to determine whether the determined parameter indicative of MRS spectral quality satisfies the threshold criterion; and

responsive to the determined parameter not satisfying the threshold criterion, determining not to provide the diagnostic information based on the processed MRS spectrum;

wherein the signal processing is performed by at least one computer processor.

18. The magnetic resonance spectroscopy (MRS) processing method of claim 17 , wherein determining the parameter comprises determining that the processed MRS spectrum comprises a regional signature signal along the MRS spectrum that is characteristic of lipid.

19. The magnetic resonance spectroscopy (MRS) processing method of claim 17 , wherein the parameter indicative of MRS spectral quality comprises a signal-to-noise comparison parameter.

20. The magnetic resonance spectroscopy (MRS) processing method of claim 17 , comprising determining the parameter indicative of MRS spectral quality based at least in part on at least one spectral line width.

21. The magnetic resonance spectroscopy (MRS) processing method of claim 17 , comprising:

responsive to the determined parameter not satisfying the threshold criterion, generating a new processed MRS spectrum for the same ROI;

determining a new parameter indicative of MRS spectral quality for the new processed MRS spectrum;

comparing the new determined parameter to the threshold criterion to determine whether the new determined parameter indicative of MRS spectral quality satisfies the threshold criterion;

responsive to the new determined parameter satisfying the threshold criterion, determining to perform diagnostic processing on the new processed MRS spectrum to provide the diagnostic information.

Assignments (3)
CHANGE OF NAME Recorded Mar 7, 2025
From: NOCIMED, INC.
To: ACLARION, INC.
Reel/Frame 070445/0524 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 7, 2025
From: PEACOCK, JAMES C., III; CLAUDE, JOHN P.; KANE, PAUL H.
To: NOCIMED, LLC
Reel/Frame 070448/0202 →
CHANGE OF NAME Recorded Mar 7, 2025
From: NOCIMED, LLC
To: NOCIMED, INC.
Reel/Frame 070448/0674 →
Continuity (9)
Continuation 17528047 · Nov 16, 2021
Continuation 16408188 · May 9, 2019
Continuation 15669584 · Aug 4, 2017
Continuation 14872986 · Oct 1, 2015
Continuation 14310683 · Jun 20, 2014
Continuation 13444731 · Apr 11, 2012
Continuation PCTUS2010052737 · Oct 14, 2010
Continuation In Part 12579371 · Oct 14, 2009
Related Publication 20240324892A1 · Oct 3, 2024
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