IP Library Patent Application 18262262
Patent Application
App. No. 18/262,262

INFECTION DIAGNOSIS AND CHARACTERIZATION USING DIFFUSION AND RELAXATION EDITED PROTON NMR SPECTROSCOPY

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Patent No.
US None
App. No.
18/262,262
Abstract

1 H-NMR spectroscopic molecular markers are provided for identifying medical risk signatures such as SARS-CoV-2 infection, acute inflammation, or a cardiovascular risk condition. The markers use a combination of NMR intensity signals, including a Glyc signal from at least one N-acetyl (—NCOCH 3 ) glycoprotein and an SPC signal from a choline head group ( + N—(CH 3 ) 3 ) of a supramolecular phospholipids cluster (SPC) present in HDL and LDL lipoprotein subfractions. The Glyc signal is in a chemical shift region from #=2.00 ppm to #=2.20 ppm, and includes signals GlycA (2.00 ppm to 2.09 ppm) and GlycB (2.09 ppm to 2.2 ppm). The SPC signal is in a chemical shift region from #=3.20 ppm to #=3.30 ppm, and includes signals SPC 1 (3.2 ppm to 3.235) ppm, SPC 2 (3.235 ppm to 3.26 ppm), and SPC 3 (3.26 ppm to 3.3 ppm). A system for identifying the markers is also provided.

Claims (38)

1 . A 1H-NMR spectroscopic molecular marker for identifying a medical risk signature in an in vitro blood plasma or serum sample from a patient by 1H NMR spectroscopy, wherein the marker comprises a combination of NMR intensity signals having magnitudes that are significantly different from known corresponding NMR intensity levels for a healthy patient, including a Glyc signal from at least one N-acetyl (—NCOCH 3 ) glycoprotein and an SPC signal from a choline head group ( + N—(CH 3 ) 3 ) of a supramolecular phospholipids cluster (SPC) present in HDL and LDL lipoprotein subfractions.

2 . A molecular marker according to claim 1 , wherein the Glyc signal is in a chemical shift region from δ=2.00 ppm to δ=2.20 ppm and the SPC signal is in a chemical shift region from δ=3.20 ppm to δ=3.30 ppm.

3 . A molecular marker according to claim 1 , wherein the Glyc signal comprises a plurality of NMR intensity signals, including a signal GlycA in a chemical shift subregion of δ=2.00 ppm to δ=2.09 ppm and a signal GlycB in a chemical shift subregion of δ=2.09 ppm to δ=2.2 ppm.

4 . A molecular marker according to claim 1 , wherein the SPC signal comprises a plurality of NMR intensity signals including a signal SPC 1 in a chemical shift subregion from δ=3.2 ppm to δ=3.235 ppm, a signal SPC 2 in a chemical shift subregion from δ=3.235 ppm to 3.26 ppm, and a signal SPC 3 in a chemical shift subregion from δ=3.26 ppm to δ=3.3 ppm.

5 . A molecular marker according to claim 4 , wherein the molecular marker further comprises a ratio of NMR peak intensities of Glyc or either of GlycA or GlycB to NMR peak intensities of SPC or one or more of SPC 1 , SPC 2 or SPC 3 .

6 . A molecular marker according to claim 1 wherein the medical risk signature comprises a SARS-CoV-2 infection of the patient.

7 . Use of the molecular marker of claim 6 for the diagnosis of SARS-CoV-2.

8 . A molecular marker according to claim 1 wherein the medical risk signature comprises acute inflammation.

9 . Use of the molecular marker of claim 8 for the diagnosis of acute inflammation.

10 . A molecular marker according to claim 1 wherein the medical risk signature comprises a known cardiovascular risk condition.

11 . Use of the molecular marker of claim 10 for the diagnosis of said known cardiovascular risk condition.

12 . Use of the molecular marker of claim 6 for the assessment of functional recovery from a SARS-CoV-2 infection.

13 . A method of diagnosing a medical risk signature in a patient, the method comprising:

obtaining a blood plasma or serum sample from the patient;

performing an NMR measurement of the sample to obtain a spectrum of NMR intensities;

determining the magnitudes of a combination of NMR intensity signals, including a Glyc signal from at least one N-acetyl (—NCOCH 3 ) glycoprotein and an SPC signal from a choline head group ( + N—(CH 3 ) 3 ) of a supramolecular phospholipids cluster (SPC) present in HDL and LDL lipoprotein; and

diagnosing the presence of said medical risk signature when the magnitudes of the glycoprotein NMR intensities and the SPC NMR intensities are significantly different from known corresponding NMR intensity levels for a healthy patient.

14 . A method according to claim 13 wherein the Glyc signal is in a chemical shift range from δ=2.00 to δ=2.20 ppm and the SPC signal is in a chemical shift range from δ=3.20 to δ=3.30 ppm.

15 . A method according to claim 13 , wherein the Glyc signal comprises a plurality of NMR intensity signals, including a signal GlycA in a chemical shift subregion of δ=2.00 ppm to δ=2.09 ppm and a signal GlycB in a chemical shift subregion of δ=2.09 ppm to δ=2.2 ppm.

16 . A method according to claim 13 , wherein the SPC signal comprises a plurality of NMR intensity signals including a signal SPC 1 in a chemical shift subregion from δ=3.2 ppm to δ=3.235 ppm, a signal SPC 2 in a chemical shift subregion from δ=3.235 ppm to 3.26 ppm, and a signal SPC 3 in a chemical shift subregion from δ=3.26 ppm to δ=3.3 ppm.

17 . A method according to claim 16 , further comprising determining a ratio of NMR peak intensities of at least one of Glyc, GlycA and GlycB to NMR peak intensities of at least one of SPC, SPC 1 , SPC 2 or SPC 3 and diagnosing the presence of said medical risk signature when the magnitude of the ratio is significantly different from a known corresponding ratio for a healthy patient.

18 . A method according to claim 16 wherein the method further comprises calculating a ratio SPC total /GlycA, where SPC total =SPC 1 +SPC 2 +SPC 3 , and diagnosing the presence of said medical risk signature when the magnitude of the SPC total /GlycA ratio is past a predetermined threshold.

19 . A method according to claim 16 wherein the method further comprises calculating a ratio of any one of the signals SPC 1 , SPC 2 or SPC 3 to the GlycA signal and diagnosing said medical risk signature when the ratio is beyond a predetermined threshold.

20 . A method according to claim 13 further comprising diagnosing the presence of said medical risk signature when the Glyc signal intensity is significantly elevated and the SPC signal intensity is significantly reduced relative to said known corresponding NMR signal intensity levels for a healthy patient.

21 . A method according to claim 13 wherein the medical risk signature comprises a SARS-CoV-2 infection of the patient.

22 . A method according to claim 13 wherein the medical risk signature comprises acute inflammation.

23 . A method according to claim 13 wherein the medical risk signature comprises a known cardiovascular risk condition.

24 . A method according to claim 13 wherein the NMR measurement is performed with an NMR instrument that uses a DIffusional and Relaxation Editing (DIRE) pulse sequence or a J-coupling edited (JEDI) DIRE pulse sequence.

25 . A system for identifying a medical risk signature using an in vitro blood plasma or serum sample from a patient, the system comprising:

an NMR spectrometer for acquiring at least one 1H NMR spectrum of the vitro blood plasma or serum sample; and

a data processor in communication with the NMR spectrometer, the data processor configured to obtain concentration measurements of an NMR spectroscopic molecular marker comprising a combination of NMR intensity signals having magnitudes that are significantly different from known corresponding NMR intensity levels for a healthy patient, including a Glyc signal from at least one N-acetyl (—NCOCH 3 ) glycoprotein and an SPC signal from a choline head group ( + N—(CH 3 ) 3 ) of a supramolecular phospholipids cluster (SPC) present in HDL and LDL lipoprotein subfractions.

26 . A system according to claim 25 wherein the Glyc signal is in a chemical shift region from δ=2.00 ppm to δ=2.20 ppm and the SPC signal is in a chemical shift region from δ=3.20 ppm to δ=3.30 ppm.

27 . A system according to claim 25 wherein the Glyc signal comprises a plurality of NMR intensity signals, including a signal GlycA in a chemical shift subregion of δ=2.00 ppm to δ=2.09 ppm and a signal GlycB in a chemical shift subregion of δ=2.09 ppm to δ=2.2 ppm.

28 . A system according to claim 25 wherein the SPC signal comprises a plurality of NMR intensity signals including a signal SPC 1 in a chemical shift subregion from δ=3.2 ppm to δ=3.235 ppm, a signal SPC 2 in a chemical shift subregion from δ=3.235 ppm to 3.26 ppm, and a signal SPC 3 in a chemical shift subregion from δ=3.26 ppm to δ=3.3 ppm.

29 . A system according to claim 28 wherein the molecular marker further comprises a ratio of NMR peak intensities of Glyc or either of GlycA or GlyCB to NMR peak intensities of SPC or one or more of SPC 1 , SPC 2 or SPC 3 .

30 . A system according to claim 25 wherein the medical risk signature comprises a SARS-CoV-2 infection of the patient.

31 . A system according to claim 25 wherein the medical risk signature comprises acute inflammation.

32 . A system according to claim 25 wherein the medical risk signature comprises a known cardiovascular risk condition.

Assignments (5)
NUNC PRO TUNC ASSIGNMENT Recorded Jun 17, 2024
From: BRUKER BIOSPIN GMBH
To: BRUKER BIOSPIN GMBH & CO. KG
Reel/Frame 067767/0336 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 29, 2023
From: K. NICHOLSON, JEREMY; HOLMES, ELAINE; LODGE, SAMANTHA; WIST, JULIEN
To: MURDOCH UNIVERSITY
Reel/Frame 064734/0597 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 29, 2023
From: NITSCHKE, PHILIPP
To: MURDOCH UNIVERSITY
Reel/Frame 064734/0719 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 29, 2023
From: REINSPERGER, TONY
To: BRUKER BIOSPIN GMBH
Reel/Frame 064734/0997 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 29, 2023
From: BERMEL, WOLFGANG
To: BRUKER BIOSPIN GMBH
Reel/Frame 064735/0153 →