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无约束定量磁化传递成像:解析游离和半固态自旋池的T值。

Unconstrained quantitative magnetization transfer imaging: Disentangling T of the free and semi-solid spin pools.

作者信息

Assländer Jakob, Mao Andrew, Marchetto Elisa, Beck Erin S, Rosa Francesco La, Charlson Robert W, Shepherd Timothy M, Flassbeck Sebastian

机构信息

Center for Biomedical Imaging, Department of Radiology, New York University School of Medicine, New York, NY, United States.

Center for Advanced Imaging Innovation and Research (CAI R), Department of Radiology, New York University School of Medicine, New York, NY, United States.

出版信息

Imaging Neurosci (Camb). 2024 May 20;2. doi: 10.1162/imag_a_00177. eCollection 2024.

Abstract

Since the inception of magnetization transfer (MT) imaging, it has been widely assumed that Henkelman's two spin pools have similar longitudinal relaxation times, which motivated many researchers to constrain them to each other. However, several recent publications reported a of thethat is much shorter than of the. While these studies tailored experiments for robust proofs-of-concept, we here aim to quantify the disentangled relaxation processes on a voxel-by-voxel basis in a clinical imaging setting, that is, with an effective resolution of 1.24mm isotropic and full brain coverage in 12min. To this end, we optimized apulse sequence for mapping the parameters of an unconstrained MT model. We scanned four people with relapsing-remitting multiple sclerosis (MS) and four healthy controls with this pulse sequence and estimated and in healthy white matter. Our results confirm the reports that and we argue that this finding identifies MT as an inherent driver of longitudinal relaxation in brain tissue. Moreover, we estimated a fractional size of the semi-solid spin pool of , which is larger than previously assumed. An analysis of in normal-appearing white matter revealed statistically significant differences between individuals with MS and controls.

摘要

自从磁化传递(MT)成像技术问世以来,人们普遍认为亨克尔曼的两个自旋池具有相似的纵向弛豫时间,这促使许多研究人员将它们相互关联起来。然而,最近的几篇出版物报道了一个自旋池的弛豫时间比另一个自旋池的弛豫时间短得多。虽然这些研究为可靠的概念验证量身定制了实验,但我们在此旨在在临床成像环境中逐体素地量化解耦的弛豫过程,即有效分辨率为各向同性1.24毫米且在12分钟内覆盖全脑。为此,我们优化了一个脉冲序列以映射无约束MT模型的参数。我们用这个脉冲序列扫描了四名复发缓解型多发性硬化症(MS)患者和四名健康对照,并估计了健康白质中的和。我们的结果证实了关于和的报道,并且我们认为这一发现将MT确定为脑组织纵向弛豫的内在驱动因素。此外,我们估计半固体自旋池的分数大小为,这比之前假设的要大。对正常外观白质中的分析显示,MS患者和对照个体之间存在统计学上的显著差异。

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