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High-resolution magic-angle spinning 13C spectroscopy of brain tissue at natural abundance

✍ Scribed by YongXia Yang; Lei Chen; HongChang Gao; DanLin Zeng; Yong Yue; MaiLi Liu; Hao Lei; Feng Deng; ChaoHui Ye


Publisher
John Wiley and Sons
Year
2006
Tongue
English
Weight
178 KB
Volume
44
Category
Article
ISSN
0749-1581

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✦ Synopsis


Abstract

High‐resolution magic‐angle spinning (MAS) ^1^H and ^13^C magnetic resonance spectroscopy (MRS) has recently been applied to study the metabolism in intact biological tissue samples. Because of the low natural abundance and the low gyromagnetic ratio of the ^13^C nuclei, signal enhancement techniques such as cross‐polarization (CP) and distortionless enhancement by polarization transfer (DEPT) are often employed in MAS ^13^C MRS to improve the detection sensitivity. In this study, several sensitivity enhancement techniques commonly used in liquid‐ and solid‐state NMR, including CP, DEPT and nuclear Overhauser enhancement (NOE), were combined with MAS to acquire high‐resolution ^13^C spectra on intact rat brain tissue at natural abundance, and were compared for their performances. The results showed that different signal enhancement techniques are sensitive to different classes of molecules/metabolites, depending on their molecular weights and mobility. DEPT was found to enhance the signals of low–molecular weight metabolites exclusively, while the signals of lipids, which often are associated with membranes and have relatively lower mobility, were highly sensitive to CP enhancement. Copyright © 2006 John Wiley & Sons, Ltd.


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## Abstract High‐resolution magic angle spinning (HRMAS) ^1^H NMR spectroscopy is ideal for monitoring the metabolic environment within tissues, particularly when spectra are weighted by physical properties such as __T__~1~ and __T__~2~ relaxation times and apparent diffusion coefficients (ADCs). I