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用于小鼠的三维动脉自旋标记的稳健方法。

Robust method for 3D arterial spin labeling in mice.

机构信息

Mouse Imaging Centre, The Hospital for Sick Children, Toronto, Ontario, Canada.

出版信息

Magn Reson Med. 2012 Jul;68(1):98-106. doi: 10.1002/mrm.23209. Epub 2011 Nov 18.

DOI:10.1002/mrm.23209
PMID:22102489
Abstract

Arterial spin labeling is a versatile perfusion quantification methodology, which has the potential to provide accurate characterization of cerebral blood flow (CBF) in mouse models. However, a paucity of physiological data needed for accurate modeling, more stringent requirements for gradient performance, and strong artifacts introduced by magnetization transfer present special challenges for accurate CBF mapping in the mouse. This article describes robust mapping of CBF over three-dimensional brain regions using amplitude-modulated continuous arterial spin labeling. To provide physiological data for CBF modeling, the carotid artery blood velocity distribution was characterized using pulsed-wave Doppler ultrasound. These blood velocity measurements were used in simulations that optimize inversion efficiency for parameters meeting MRI gradient duty cycle constraints. A rapid slice positioning algorithm was developed and evaluated to provide accurate positioning of the labeling plane. To account for enhancement of T(1) due to magnetization transfer, a binary spin bath model of magnetization transfer was used to provide a more accurate estimate of CBF. Finally, a study of CBF was conducted on 10 mice with findings of highly reproducible inversion efficiency (mean ± standard-error-of-the-mean, 0.67 ± 0.03), statistically significant variation in CBF over 12 brain regions (P < 0.0001) and a mean ± standard-error-of-the-mean whole brain CBF of 219 ± 6 mL/100 g/min.

摘要

动脉自旋标记是一种多功能的灌注定量方法,有潜力为小鼠模型中的脑血流 (CBF) 提供准确的特征描述。然而,准确建模所需的生理数据不足、对梯度性能的更严格要求以及磁化转移引起的强烈伪影,为在小鼠中进行准确的 CBF 映射带来了特殊挑战。本文描述了使用幅度调制连续动脉自旋标记对三维脑区进行可靠的 CBF 映射。为了提供 CBF 建模的生理数据,使用脉冲波多普勒超声对颈总动脉的血流速度分布进行了特征描述。这些血流速度测量值用于模拟,优化了满足 MRI 梯度工作周期约束的参数的反转效率。开发并评估了一种快速切片定位算法,以提供标记平面的准确定位。为了考虑由于磁化转移导致的 T1 增强,使用二进制自旋池磁化转移模型来更准确地估计 CBF。最后,对 10 只小鼠进行了 CBF 研究,结果发现反转效率具有高度可重复性(平均值 ± 平均值标准误差,0.67 ± 0.03),12 个脑区的 CBF 存在统计学显著差异(P < 0.0001),全脑 CBF 的平均值 ± 标准误差为 219 ± 6 mL/100 g/min。

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