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首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >Saturation-recovery metabolic-exchange rate imaging with hyperpolarized [1-13C] pyruvate using spectral-spatial excitation
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Saturation-recovery metabolic-exchange rate imaging with hyperpolarized [1-13C] pyruvate using spectral-spatial excitation

机译:超极化[1-13C]丙酮酸的饱和-恢复代谢交换率成像,光谱空间激发

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摘要

Within the last decade hyperpolarized [1-13C] pyruvate chemical-shift imaging has demonstrated impressive potential for metabolic MR imaging for a wide range of applications in oncology, cardiology, and neurology. In this work, a highly efficient pulse sequence is described for time-resolved, multislice chemical shift imaging of the injected substrate and obtained downstream metabolites. Using spectral-spatial excitation in combination with single-shot spiral data acquisition, the overall encoding is evenly distributed between excitation and signal reception, allowing the encoding of one full two-dimensional metabolite image per excitation. The signal-to-noise ratio can be flexibly adjusted and optimized using lower flip angles for the pyruvate substrate and larger ones for the downstream metabolites. Selectively adjusting the excitation of the down-stream metabolites to 90° leads to a so-called "saturation-recovery" scheme with the detected signal content being determined by forward conversion of the available pyruvate. In case of repetitive excitations, the polarization is preserved using smaller flip angles for pyruvate. Metabolic exchange rates are determined spatially resolved from the metabolite images using a simplified two-site exchange model. This novel contrast is an important step toward more quantitative metabolic imaging. Goal of this work was to derive, analyze, and implement this "saturation- recovery metabolic exchange rate imaging" and demonstrate its capabilities in four rats bearing subcutaneous tumors.
机译:在过去的十年中,超极化[1-13C]丙酮酸化学位移成像已显示出代谢MR成像的惊人潜力,可广泛应用于肿瘤学,心脏病学和神经病学。在这项工作中,描述了一种高效的脉冲序列,用于时间分辨的多层化学位移成像,用于注入的底物和获得的下游代谢物。通过结合频谱空间激发和单次脉冲数据采集,整个编码均匀地分布在激发和信号接收之间,从而每次激发都可以编码一个完整的二维代谢物图像。丙酮酸底物的翻转角较小,下游代谢物的翻转角较大,可以灵活地调整和优化信噪比。选择性地将下游代谢物的激发调节至90°会导致所谓的“饱和-回收”方案,其中检测到的信号含量由可用丙酮酸的正向转化确定。在重复激发的情况下,使用较小的丙酮酸盐翻转角来保留极化。使用简化的两点交换模型从代谢物图像在空间上解析代谢率。这种新颖的对比是迈向更定量代谢成像的重要一步。这项工作的目的是获得,分析和实施这种“饱和-恢复代谢交换速率成像”,并在四只患有皮下肿瘤的大鼠中证明其功能。

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