4.3 Article

In vivo single-shot 13C spectroscopic imaging of hyperpolarized metabolites by spatiotemporal encoding

Journal

JOURNAL OF MAGNETIC RESONANCE
Volume 240, Issue -, Pages 8-15

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jmr.2013.12.013

Keywords

Ultrafast MRI; Chemical shift imaging; Spatiotemporal encoding; Hyperpolarized dynamic imaging; Hyperpolarized MRI; DNP; Spectroscopic imaging; Cancer

Funding

  1. ERC Advanced [246754]
  2. Marie Curie Action ITN Metafiux [264780]
  3. DIP (Germany) [710907]
  4. Danish Kidney Foundation,
  5. Helen and Ejnar Bjoernows Foundation
  6. CRUK Programme Grant [C14303/A17197]
  7. COST Action EuroHyperPol Grant [TD-1103]
  8. Cancer Research UK [16465, 17242] Funding Source: researchfish

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Hyperpolarized metabolic imaging is a growing field that has provided a new tool for analyzing metabolism, particularly in cancer. Given the short life times of the hyperpolarized signal, fast and effective spectroscopic imaging methods compatible with dynamic metabolic characterizations are necessary. Several approaches have been customized for hyperpolarized C-13 MRI,including CSI with a center-out k-space encoding, EPSI and spectrally selective pulses in combination with spiral EPI acquisitions. Recent studies have described the potential of single-shot alternatives based on spatiotemporal encoding (SPEN) principles, to derive chemical-shift images within a sub-second period. By contrast to EPSI, SPEN does not require oscillating acquisition gradients to deliver chemical-shift information: its signal encodes both spatial as well as chemical shift information, at no extra cost in experimental complexity. SPEN MRI sequences with slice-selection and arbitrary excitation pulses can also be devised, endowing SPEN with the potential to deliver single-shot multi-slice chemical shift images, with a temporal resolution required for hyperpolarized dynamic metabolic imaging. The present work demonstrates this with initial in vivo results obtained from SPEN-based imaging of pyruvate and its metabolic products, after injection of hyperpolarized [1-C-13]pyruvate. Multi-slice chemical-shift images of healthy rats were obtained at 4.7 T in the region of the kidney, and 4D (2D spatial, 1D spectral, 1D temporal) data sets were obtained at 7 T from a murine lymphoma tumor model. (c) 2014 Elsevier Inc. All rights reserved.

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