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基于 3D 扰相梯度回波 MRI 人脑 T1ρ 和激励翻转角对磁化传递率(MTR)影响的建模。

Modeling the influence of TR and excitation flip angle on the magnetization transfer ratio (MTR) in human brain obtained from 3D spoiled gradient echo MRI.

机构信息

MR-Research in Neurology and Psychiatry, University Medical Centre, Göttingen, Germany.

出版信息

Magn Reson Med. 2010 Jul;64(1):177-85. doi: 10.1002/mrm.22379.

Abstract

Attempts to optimize the magnetization transfer ratio (MTR) obtained from spoiled gradient echo MRI have focused on the properties of the magnetization transfer pulse. In particular, continuous-wave models do not explicitly account for the effects of excitation and relaxation on the MTR. In this work, these were modeled by an approximation of free relaxation between the radiofrequency pulses and of an instantaneous saturation event describing the magnetization transfer pulse. An algebraic approximation of the signal equation can be obtained for short pulse repetition time and small flip angles. This greatly facilitated the mathematical treatment and understanding of the MTR. The influence of inhomogeneous radiofrequency fields could be readily incorporated. The model was verified on the human brain in vivo at 3 T by variation of flip angle and pulse repetition time. The corresponding range in MTR was similar to that observed by a 4-fold increase of magnetization transfer pulse power. Choice of short pulse repetition time and larger flip angles improved the MTR contrast and reduced the influence of radiofrequency inhomogeneity. Optimal contrast is obtained around an MTR of 50%, and noise progression is reduced when a high reference signal is obtained.

摘要

尝试优化从扰相梯度回波 MRI 获得的磁化转移率 (MTR) 一直集中在磁化转移脉冲的特性上。特别是,连续波模型没有明确考虑到激发和弛豫对 MTR 的影响。在这项工作中,通过在射频脉冲之间的自由弛豫的近似和描述磁化转移脉冲的瞬时饱和事件来对其进行建模。对于短脉冲重复时间和小翻转角,可以获得信号方程的代数近似。这极大地促进了 MTR 的数学处理和理解。可以很容易地将不均匀射频场的影响纳入其中。通过改变翻转角和脉冲重复时间,在 3T 下对人体大脑进行了模型验证。相应的 MTR 范围与通过增加 4 倍的磁化转移脉冲功率观察到的范围相似。选择短脉冲重复时间和较大的翻转角可以提高 MTR 对比度并减少射频不均匀性的影响。在 MTR 约为 50%时获得最佳对比度,并且当获得高参考信号时,噪声进展会减少。

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