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Inverse Z-spectrum analysis for spillover- MT- and T1-corrected steady-state pulsed CEST-MRI – application to pH-weighted MRI of acute stroke

机译:用于溢出MT和T1校正的稳态脉冲CEST-MRI的反Z谱分析-在急性卒中的pH加权MRI中的应用

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摘要

Endogenous chemical exchange saturation transfer (CEST) effects are always diluted by competing effects, such as direct water proton saturation (spillover) and semi-solid macromolecular magnetization transfer (MT). This leads to unwanted T2 and MT signal contributions that lessen the CEST signal specificity to the underlying biochemical exchange processes. A spillover correction is of special interest for clinical static field strengths and protons resonating near the water peak. This is the case for all endogenous CEST agents, such as amide proton transfer, –OH-CEST of glycosaminoglycans, glucose or myo-inositol, and amine exchange of creatine or glutamate. All CEST effects also appear to be scaled by the T1 relaxation time of water, as they are mediated by the water pool. This forms the motivation for simple metrics that correct the CEST signal.Based on eigenspace theory, we propose a novel magnetization transfer ratio (MTRRex), employing the inverse Z-spectrum, which eliminates spillover and semi-solid MT effects. This metric can be simply related to Rex, the exchange-dependent relaxation rate in the rotating frame, and ka, the inherent exchange rate. Furthermore, it can be scaled by the duty cycle, allowing for simple translation to clinical protocols. For verification, the amine proton exchange of creatine in solutions with different agar concentrations was studied experimentally at a clinical field strength of 3 T, where spillover effects are large. We demonstrate that spillover can be properly corrected and that quantitative evaluation of pH and creatine concentration is possible. This proves that MTRRex is a quantitative and biophysically specific CEST-MRI metric. Applied to acute stroke induced in rat brain, the corrected CEST signal shows significantly higher contrast between the stroke area and normal tissue, as well as less B1 dependence, than conventional approaches.
机译:内源性化学交换饱和转移(CEST)效应总是被竞争效应所稀释,例如直接水质子饱和(溢出)和半固体大分子磁化转移(MT)。这导致不需要的T2和MT信号贡献,从而降低了CEST信号对基础生化交换过程的特异性。对于临床静态场强度和质子在水峰附近共振,溢流校正特别重要。所有内源CEST试剂都是这种情况,例如酰胺质子转移,糖胺聚糖的–OH-CEST,葡萄糖或肌醇,以及肌酸或谷氨酸的胺交换。所有CEST效果似乎都由水的T1弛豫时间决定,因为它们是由水池介导的。这形成了校正CEST信号的简单指标的动机。基于本征空间理论,我们提出了一种新颖的磁化传递比(MTRRex),它采用了Z逆谱,从而消除了溢出和半固态MT效应。该度量可以简单地与Rex(旋转框架中依赖于交换的松弛率)以及ka(固有交换率)相关。此外,它可以按占空比进行缩放,从而可以轻松转换为临床方案。为了验证,在3 T的临床场强下,对具有不同琼脂浓度的溶液中的肌酸胺质子交换进行了实验研究,其中溢出效应很大。我们证明可以正确地纠正溢出现象,并且可以对pH和肌酸浓度进行定量评估。这证明MTRRex是一种定量的且在生物学上特定的CEST-MRI指标。应用于大鼠脑中的急性中风后,校正后的CEST信号显示出中风区域与正常组织之间的对比度明显高于传统方法,并且对B1依赖性降低。

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