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多分辨率超极化 C 人脑 MRI 的动力学分析用于研究脑代谢。

Kinetic analysis of multi-resolution hyperpolarized C human brain MRI to study cerebral metabolism.

机构信息

Department of Radiology and Biomedical Imaging, University of California San Francisco, San Francisco, California, USA.

UC Berkeley-UCSF Graduate Program in Bioengineering, University of California, San Francisco and University of California, Berkeley, California, USA.

出版信息

Magn Reson Med. 2022 Nov;88(5):2190-2197. doi: 10.1002/mrm.29354. Epub 2022 Jun 26.

Abstract

PURPOSE

To investigate multi-resolution hyperpolarized (HP) C pyruvate MRI for measuring kinetic conversion rates in the human brain.

METHODS

HP [1- C]pyruvate MRI was acquired in 6 subjects with a multi-resolution EPI sequence at 7.5 × 7.5 mm resolution for pyruvate and 15 × 15 mm resolution for lactate and bicarbonate. With the same lactate data, 2 quantitative maps of pyruvate-to-lactate conversion (k ) maps were generated: 1 using 7.5 × 7.5 mm resolution pyruvate data and the other using synthetic 15 × 15 mm resolution pyruvate data to simulate a standard constant resolution acquisition. To examine local k values, 4 voxels were manually selected in each study representing brain tissue near arteries, brain tissue near veins, white matter, and gray matter.

RESULTS

High resolution 7.5 × 7.5 mm pyruvate images increased the spatial delineation of brain structures and decreased partial volume effects compared to coarser resolution 15 × 15 mm pyruvate images. Voxels near arteries, veins and in white matter exhibited higher calculated k for multi-resolution images.

CONCLUSION

Acquiring HP C pyruvate metabolic data with a multi-resolution approach minimized partial volume effects from vascular pyruvate signals while maintaining the SNR of downstream metabolites. Higher resolution pyruvate images for kinetic fitting resulted in increased kinetic rate values, particularly around the superior sagittal sinus and cerebral arteries, by reducing extracellular pyruvate signal contributions from adjacent blood vessels. This HP C study showed that acquiring pyruvate with finer resolution improved the quantification of kinetic rates throughout the human brain.

摘要

目的

研究多分辨率极化(HP) 1- C 丙酮酸 MRI 测量人体大脑中动力学转化率。

方法

在 6 名受试者中使用多分辨率 EPI 序列采集 HP [1- C]丙酮酸 MRI,分辨率为 7.5×7.5mm 用于丙酮酸,15×15mm 用于乳酸盐和碳酸氢盐。利用相同的乳酸盐数据,生成了两种丙酮酸转化为乳酸盐的定量图(k ):一种使用 7.5×7.5mm 分辨率的丙酮酸数据,另一种使用合成的 15×15mm 分辨率的丙酮酸数据来模拟标准的恒定分辨率采集。为了检查局部 k 值,在每个研究中手动选择 4 个体素,代表动脉附近的脑组织、静脉附近的脑组织、白质和灰质。

结果

与较粗的 15×15mm 分辨率的丙酮酸图像相比,高分辨率 7.5×7.5mm 丙酮酸图像增加了脑结构的空间描绘,减少了部分容积效应。动脉、静脉附近和白质中的体素表现出更高的多分辨率图像计算出的 k 值。

结论

采用多分辨率方法获取 HP 1- C 丙酮酸代谢数据,在保持下游代谢物 SNR 的同时,最小化了来自血管丙酮酸信号的部分容积效应。用于动力学拟合的高分辨率丙酮酸图像通过减少来自相邻血管的细胞外丙酮酸信号贡献,导致动力学速率值增加,特别是在大脑上矢状窦和大脑动脉周围。这项 HP 1- C 研究表明,使用更高分辨率采集丙酮酸可以提高整个大脑中动力学速率的定量准确性。

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