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血液消除与组织抑制:增强用于层流功能磁共振成像的综合血管造影和灌注(VAPER)对比。

Blood nulling versus tissue suppression: Enhancing integrated VASO and perfusion (VAPER) contrast for laminar fMRI.

作者信息

Chai Yuhui, Li Linqing, Stirnberg Rüdiger, Huber Laurentius, Stöcker Tony, Bandettini Peter A, Sutton Bradley P

机构信息

Beckman Institute for Advanced Science and Technology, University of Illinois at Urbana-Champaign, Urbana, IL, United States.

Functional MRI Core, National Institute of Mental Health, National Institutes of Health, Bethesda, MD, United States.

出版信息

Imaging Neurosci (Camb). 2025 Jan 21;3. doi: 10.1162/imag_a_00453. eCollection 2025.

Abstract

Cerebral blood volume (CBV) and cerebral blood flow (CBF)-based functional magnetic resonance imaging (fMRI) have proven to be more laminar-specific than blood-oxygen-level-dependent (BOLD) contrast fMRI, but they suffer from relatively low sensitivity. In previous work, we integrated CBV and CBF into one contrast using DANTE (Delay Alternating with Nutation for Tailored Excitation) pulse trains combined with 3D echo-planar imaging (EPI) to create an integrated blood volume and perfusion (VAPER)-weighted contrast (Chai et al., 2020). Building on this, we have now introduced a magnetization transfer approach to induce a tissue-suppression-based VASO (vascular space occupancy) effect and incorporated it with the VAPER technique to boost the overall sensitivity while maintaining superior laminar specificity, all without altering the original VAPER sequence timing scheme. This magnetization transfer (MT)-VAPER fMRI acquisition alternates between DANTE blood-nulling and MT-tissue-suppression conditions, generating an integrated VASO and perfusion contrast enhanced by MT. Both theoretical and experimental evaluation demonstrated an approximately 30% enhancement in VAPER sensitivity with MT application. This novel MT-VAPER method was empirically validated in human primary motor and visual cortices, demonstrating its superior laminar specificity and robust reproducibility, establishing it as valuable non-BOLD tool for laminar fMRI in human brain function research.

摘要

基于脑血容量(CBV)和脑血流量(CBF)的功能磁共振成像(fMRI)已被证明比基于血氧水平依赖(BOLD)对比的fMRI具有更高的层特异性,但它们的灵敏度相对较低。在之前的工作中,我们使用DANTE(用于定制激发的延迟与 nutation 交替)脉冲序列结合三维回波平面成像(EPI),将CBV和CBF整合到一种对比中,以创建一种整合血容量和灌注(VAPER)加权对比(Chai等人,2020年)。在此基础上,我们现在引入了一种磁化传递方法,以诱导基于组织抑制的血管空间占据(VASO)效应,并将其与VAPER技术相结合,在保持卓越层特异性的同时提高整体灵敏度,且不改变原始VAPER序列定时方案。这种磁化传递(MT)-VAPER fMRI采集在DANTE血液归零和MT组织抑制条件之间交替,产生由MT增强的整合VASO和灌注对比。理论和实验评估均表明,应用MT后VAPER灵敏度提高了约30%。这种新型的MT-VAPER方法在人类初级运动和视觉皮层中得到了实证验证,证明了其卓越的层特异性和强大的可重复性,使其成为人类脑功能研究中用于层fMRI的有价值的非BOLD工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a8c/12319795/d6fee2e3ccba/imag_a_00453_fig1.jpg

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