Ultra-low field 13C MRI of hyperpolarized pyruvate

Fuente: arXiv
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Autori principali: Boele, Thomas, McBride, Stephen J., Pike, Megan, Curran, Erica, TomHon, Patrick, Braaksma, Hester, Shen, Sheng, Koonjoo, Neha, Korenchan, David E., Chekmenev, Eduard, Theis, Thomas, Waddington, David E. J., Rosen, Matthew S.
Natura: Preprint
Pubblicazione: 2025
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author Boele, Thomas
McBride, Stephen J.
Pike, Megan
Curran, Erica
TomHon, Patrick
Braaksma, Hester
Shen, Sheng
Koonjoo, Neha
Korenchan, David E.
Chekmenev, Eduard
Theis, Thomas
Waddington, David E. J.
Rosen, Matthew S.
author_facet Boele, Thomas
McBride, Stephen J.
Pike, Megan
Curran, Erica
TomHon, Patrick
Braaksma, Hester
Shen, Sheng
Koonjoo, Neha
Korenchan, David E.
Chekmenev, Eduard
Theis, Thomas
Waddington, David E. J.
Rosen, Matthew S.
contents Medicine is evolving beyond therapy largely predicated on anatomical information and towards incorporating patient-specific molecular biomarkers of disease for more accurate diagnosis and effective treatment. The complementary combination of hyperpolarization by spin-lock induced crossing signal amplification by reversible exchange (SLIC SABRE) and low field magnetic resonance imaging (MRI) can enable accessible metabolic imaging to advance personalized medicine. Hyperpolarized 13C-enriched pyruvate has demonstrated utility for MRI of metabolism in cancer, heart disease and neurodegenerative disorders but has been restricted from widespread clinical adoption by a lack of access to affordable technology. Parahydrogen-based polarization techniques, paired with low-cost high-performance MRI at millitesla fields, offer a means of broadening the reach of metabolic imaging. Here we show results demonstrating in situ hyperpolarization of pyruvate at 6.5 mT by SLIC SABRE, followed by immediate readout without field cycling or sample shuttling. We achieve 13C signal enhancements several million times above thermal equilibrium at 6.5 mT, corresponding to polarization levels of approximately 3%. Leveraging this enhancement, we perform 13C MRI and acquire NMR spectra with resolution sufficient to distinguish chemical shifts between pyruvate isotopomers. These results show a viable pathway towards accessible metabolic imaging with hyperpolarized 13C MRI at ultra-low field.
format Preprint
id arxiv_https___arxiv_org_abs_2509_09966
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Ultra-low field 13C MRI of hyperpolarized pyruvate
Boele, Thomas
McBride, Stephen J.
Pike, Megan
Curran, Erica
TomHon, Patrick
Braaksma, Hester
Shen, Sheng
Koonjoo, Neha
Korenchan, David E.
Chekmenev, Eduard
Theis, Thomas
Waddington, David E. J.
Rosen, Matthew S.
Medical Physics
Medicine is evolving beyond therapy largely predicated on anatomical information and towards incorporating patient-specific molecular biomarkers of disease for more accurate diagnosis and effective treatment. The complementary combination of hyperpolarization by spin-lock induced crossing signal amplification by reversible exchange (SLIC SABRE) and low field magnetic resonance imaging (MRI) can enable accessible metabolic imaging to advance personalized medicine. Hyperpolarized 13C-enriched pyruvate has demonstrated utility for MRI of metabolism in cancer, heart disease and neurodegenerative disorders but has been restricted from widespread clinical adoption by a lack of access to affordable technology. Parahydrogen-based polarization techniques, paired with low-cost high-performance MRI at millitesla fields, offer a means of broadening the reach of metabolic imaging. Here we show results demonstrating in situ hyperpolarization of pyruvate at 6.5 mT by SLIC SABRE, followed by immediate readout without field cycling or sample shuttling. We achieve 13C signal enhancements several million times above thermal equilibrium at 6.5 mT, corresponding to polarization levels of approximately 3%. Leveraging this enhancement, we perform 13C MRI and acquire NMR spectra with resolution sufficient to distinguish chemical shifts between pyruvate isotopomers. These results show a viable pathway towards accessible metabolic imaging with hyperpolarized 13C MRI at ultra-low field.
title Ultra-low field 13C MRI of hyperpolarized pyruvate
topic Medical Physics
url https://arxiv.org/abs/2509.09966