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September 17, 2025Proceedings on CD-ROM - International Society for Magnetic Resonance in Medicine. Scientific Meeting and Exhibition/Proceedings of the International Society for Magnetic Resonance in Medicine, Scientific Meeting and Exhibition0 citations

Advancing mesoscale whole brain T2*-weighted MRI in humans at 10.5 T using motion-robust multi-echo 3D EPI and RF parallel transmission

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SQShuxian QuJZJacco de ZwartPGPeter van Gelderen

Key Points

  • The new imaging technique enables intricate anatomical details to be visualized across the brain, enhancing resolution.
  • Motion-robust 3D EPI combined with parallel transmission achieved an isotropic resolution of 0.4 mm in whole brain MRI.
  • Tailored RF pulses design for uniform water excitation was key to eliminating RF artifacts in the imaging process.
  • This advancement in multi-echo T2*-weighted imaging can greatly benefit neuroscience applications targeting fine scale anatomy.

Abstract

Motivation: Last year we demonstrated at 10.5 T the utility of motion-robust multi-echo GRE imaging for mesoscale T2*-weighted (T2*w) whole brain MRI with 0.5-mm isotropic resolution. Goal(s): To push the limit of mesoscale T2*w multi-echo whole brain MRI by combining motion-robust 3D EPI and parallel transmission (pTx). Approach: Whole brain three-echo EPI at 0.4-mm isotropic resolution was performed using a custom 16-channel transmit 80-channel receive RF array with a scan time of ~10 min. Tailored pTx pulses were designed for uniform water excitation. Results: Our new mesoscale image acquisition eliminated RF artifacts observed before, allowing intricate anatomical details to be visualized across the brain. Impact: Armed with rapid motion-robust 3D EPI and parallel transmission, the presented new multi-echo T2*-weighted imaging strategy will benefit many neuroscience applications, especially those aiming to investigate fine scale anatomy in humans at ultrahigh field.

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Cite This Study

Qu et al. (2025) studied this question.

synapsesocial.com/papers/68d45b1b31b076d99fa5d4c0https://doi.org/10.58530/2025/4394
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