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校正竞争效应后对缺血性卒中进行酰胺质子转移和核Overhauser增强成像。

Imaging of amide proton transfer and nuclear Overhauser enhancement in ischemic stroke with corrections for competing effects.

作者信息

Li Hua, Zu Zhongliang, Zaiss Moritz, Khan Imad S, Singer Robert J, Gochberg Daniel F, Bachert Peter, Gore John C, Xu Junzhong

机构信息

Institute of Imaging Science, Vanderbilt University, Nashville, TN, USA; Department of Physics and Astronomy, Vanderbilt University, Nashville, TN, USA.

出版信息

NMR Biomed. 2015 Feb;28(2):200-9. doi: 10.1002/nbm.3243. Epub 2014 Dec 7.

Abstract

Chemical exchange saturation transfer (CEST) potentially provides the ability to detect small solute pools through indirect measurements of attenuated water signals. However, CEST effects may be diluted by various competing effects, such as non-specific magnetization transfer (MT) and asymmetric MT effects, water longitudinal relaxation (T1 ) and direct water saturation (radiofrequency spillover). In the current study, CEST images were acquired in rats following ischemic stroke and analyzed by comparing the reciprocals of the CEST signals at three different saturation offsets. This combined approach corrects the above competing effects and provides a more robust signal metric sensitive specifically to the proton exchange rate constant. The corrected amide proton transfer (APT) data show greater differences between the ischemic and contralateral (non-ischemic) hemispheres. By contrast, corrected nuclear Overhauser enhancements (NOEs) around -3.5 ppm from water change over time in both hemispheres, indicating whole-brain changes that have not been reported previously. This study may help us to better understand the contrast mechanisms of APT and NOE imaging in ischemic stroke, and may also establish a framework for future stroke measurements using CEST imaging with spillover, MT and T1 corrections.

摘要

化学交换饱和转移(CEST)有可能通过间接测量衰减的水信号来检测小溶质池。然而,CEST效应可能会被各种竞争效应稀释,如非特异性磁化转移(MT)和不对称MT效应、水纵向弛豫(T1)和直接水饱和(射频溢出)。在当前研究中,在大鼠缺血性中风后采集CEST图像,并通过比较三个不同饱和偏移下CEST信号的倒数进行分析。这种联合方法校正了上述竞争效应,并提供了一种对质子交换速率常数具有特异性敏感性的更稳健的信号指标。校正后的酰胺质子转移(APT)数据显示,缺血半球和对侧(非缺血)半球之间的差异更大。相比之下,来自水的约-3.5 ppm处校正后的核Overhauser增强(NOE)在两个半球中均随时间变化,表明存在此前未报道的全脑变化。这项研究可能有助于我们更好地理解缺血性中风中APT和NOE成像的对比机制,也可能为未来使用具有溢出、MT和T1校正的CEST成像进行中风测量建立一个框架。

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