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三维梯度和自旋回波读出的时间编码伪连续动脉自旋标记:分段因子和流补偿的影响。

Three-dimensional gradient and spin-echo readout for time-encoded pseudo-continuous arterial spin labeling: Influence of segmentation factor and flow compensation.

机构信息

Medical School of Ribeirao Preto, University of Sao Paulo, Ribeirao Preto, SP, Brazil.

InBrain Lab, Department of Physics - FFCLRP, University of Sao Paulo, Ribeirao Preto, SP, Brazil.

出版信息

Magn Reson Med. 2021 Sep;86(3):1454-1462. doi: 10.1002/mrm.28807. Epub 2021 May 4.

Abstract

PURPOSE

To monitor the complete passage of the labeled blood through the vascular tree into tissue and improve the quantification of ASL maps, we evaluated the effect of 3D gradient and spin-echo (GRASE) readout segments on temporal SNR (tSNR) and image blurriness for time-encoded pseudo-continuous arterial spin labeling and the effect of flow-compensation gradients on the presence of intravascular signal.

METHODS

Fifteen volunteers were scanned using time-encoded pCASL with 2D EPI and single-segment, two-segments, and three-segments 3D-GRASE readouts with first-order flow compensation (FC) gradients. Two-segments 3D-GRASE scans were acquired with 25%, 50%, 75%, and 100% of full first-order FC. Temporal SNR was assessed, and cerebral blood flow and arterial blood volume were quantified for all readout strategies.

RESULTS

For single-segment 3D GRASE, tSNR was comparable to 2D EPI for perfusion signal but worse for the arterial signal. Two-segments and three-segments 3D GRASE resulted in higher tSNR than 2D EPI for perfusion and arterial signal. The arterial signal was not well visualized for 3D-GRASE data without FC. Visualization of the intravascular signal at postlabeling delays of 660 ms and 1060 ms was restored with FC. Adequate visualization of the intravascular signal was achieved from 75% of FC gradient strength at a postlabeling delay of 660 ms. For a postlabeling delay of 1060 ms, full-FC gradients were the best option to depict intravascular signal.

CONCLUSION

Segmented GRASE provided higher effective tSNR compared with 2D-EPI and single-segment GRASE. Flow compensation with GRASE readout should be carefully controlled when applying for time-encoded pCASL to visualize intravascular signal.

摘要

目的

为了监测示踪剂标记的血液完整地通过血管树进入组织,并提高动脉自旋标记(ASL)图的定量分析准确性,我们评估了三维梯度回波(GRASE)读出段对时间编码伪连续动脉自旋标记(pCASL)的时间信噪比(tSNR)和图像模糊度的影响,以及流动补偿梯度对血管内信号存在的影响。

方法

15 名志愿者接受了时间编码 pCASL 扫描,采用二维 EPI 和单段、两段和三段 3D-GRASE 读出方法,均采用一阶流动补偿(FC)梯度。在两段 3D-GRASE 扫描中,使用 25%、50%、75%和 100%的完整一阶 FC 采集数据。评估了所有读出策略的 tSNR,并对脑血流和动脉血容量进行了定量分析。

结果

对于单段 3D-GRASE,灌注信号的 tSNR 与二维 EPI 相当,但动脉信号较差。两段和三段 3D-GRASE 的灌注和动脉信号的 tSNR 均高于二维 EPI。没有 FC 的 3D-GRASE 数据无法很好地显示动脉信号。FC 可恢复后标记延迟 660ms 和 1060ms 时的血管内信号的可视化。在 660ms 的后标记延迟下,75%的 FC 梯度强度即可实现对血管内信号的充分可视化。对于 1060ms 的后标记延迟,全 FC 梯度是显示血管内信号的最佳选择。

结论

与二维 EPI 和单段 GRASE 相比,分段 GRASE 提供了更高的有效 tSNR。在应用时间编码 pCASL 来可视化血管内信号时,应仔细控制 GRASE 读出的流动补偿。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8daf/8251744/d5351cd0a779/MRM-86-1454-g004.jpg

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