PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
December 19, 2024NMR in Biomedicine10 citationsOpen Access

Concentric Ring Trajectory Sampling With k‐Space Reordering Enables Assessment of Tissue‐Specific T1 and T2 Relaxation for 2H‐Labeled Substrates in the Human Brain at 7 T

View Full Paper
VBViola BaderBSBernhard StrasserWBWolfgang Bogner

Key Points

Key points are not available for this paper at this time.

Abstract

ABSTRACT Deuterium metabolic imaging (DMI) is an emerging Magnetic Resonance technique providing valuable insight into the dynamics of cellular glucose (Glc) metabolism of the human brain in vivo using deuterium‐labeled ( 2 H) glucose as non‐invasive tracer. Reliable concentration estimation of 2 H‐Glc and downstream synthesized neurotransmitters glutamate + glutamine (Glx) requires accurate knowledge of relaxation times, but so far tissue‐specific T 1 and T 2 relaxation times (e.g., in gray and white matter) have not been determined. Such measurements are time‐consuming and particularly challenging in the presence of dynamically changing metabolite levels (e.g. 2 H Glc and 2 H Glx). This study aimed to assess T 1 and T 2 relaxation times of deuterated resonances, i.e., water, Glc and Glx in human gray and white matter using inversion recovery and Hahn spin‐echo 2 H MRSI (magnetic resonance spectroscopic imaging), respectively, with non‐Cartesian concentric ring trajectory readout (CRT) including specific k‐space reordering at 7 T. The sequence was validated using phantom measurements and all results were compared to unlocalized acquisitions. Thirteen healthy volunteers participated in the study, with 10 of them scanned ~90 min after oral administration of 0.8 g/kg 6,6′‐ 2 H‐glucose. Significantly different T 1 and T 2 relaxation was observed between GM and WM for 2 H water ( T 1 GM/WM/unlocalized = 358 ± 21/328 ± 12/335 m ± 6 ms , p = 0.01) and 2 H Glx ( T 2 GM/WM/unlocalized = 37 ± 2/35 ± 2/33 ± 3 ms , p = 0.02), respectively, consistent with unlocalized acquisitions. No significant regional differences were found for 2 H water ( T 2 GM/WM/unlocalized = 36 ± 2/34 ± 2/31 ± 2 ms, p = 0.08), 2 H Glc ( T 1 GM/WM/unlocalized = 70 ± 5/73 ± 4/80 ± 5 ms, p = 0.13; T 2 GM/WM/unlocalized = 36 ± 1/34 ± 2/34 ± 2 ms, p = 0.24) and Glx ( T 1 GM/WM/unlocalized = 172 ± 15/172 ± 12/165 ± 11 ms, p = 1.00). Knowledge of tissue‐specific relaxation times can enhance the accuracy of concentration estimation and metabolic flux rates in future studies, potentially improving our understanding of various brain diseases such as cancer, neurodegenerative diseases or diabetes, which are often linked to impaired glucose metabolism.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Bader et al. (2024) studied this question.

synapsesocial.com/papers/6a1be0f001af05bf0da8fa0chttps://doi.org/10.1002/nbm.5311
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Whole‐brain deuterium metabolic imaging via concentric ring trajectory readout enables assessment of regional variations in neuronal glucose metabolism2024 · 21 citations
  2. 2FSL2011 · 12,115 citations
  3. 3Mitochondrial dysfunction in neurological disorders: Exploring mitochondrial transplantation2020 · 350 citations
  4. 4Sugar for the brain: the role of glucose in physiological and pathological brain function2013 · 1,643 citations
  5. 5Bi‐exponential 23Na T2* component analysis in the human brain2018 · 24 citations