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Investigation of Inter-Slice Magnetization Transfer Effects as a New Method for MTR Imaging of the Human Brain

机译:切片间磁化传递效应的研究作为人类大脑MTR成像的一种新方法

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摘要

We present a new method for magnetization transfer (MT) ratio imaging in the brain that requires no separate saturation pulse. Interslice MT effects that are inherent to multi-slice balanced steady-state free precession (bSSFP) imaging were controlled via an interslice delay time to generate MT-weighted (0 s delay) and reference images (5–8 s delay) for MT ratio (MTR) imaging of the brain. The effects of varying flip angle and phase encoding (PE) order were investigated experimentally in normal, healthy subjects. Values of up to ∼50% and ∼40% were observed for white and gray matter MTR. Centric PE showed larger MTR, higher SNR, and better contrast between white and gray matter than linear PE. Simulations of a two-pool model of MT agreed well with in vivo MTR values. Simulations were also used to investigate the effects of varying acquisition parameters, and the effects of varying flip angle, PE steps, and interslice delay are discussed. Lastly, we demonstrated reduced banding with a non-balanced SSFP-FID sequence and showed preliminary results of interslice MTR imaging of meningioma.
机译:我们提出了一种不需要单独的饱和脉冲的大脑中磁化传递(MT)比成像的新方法。通过切片间延迟时间来控制多切片平衡稳态自由进动(bSSFP)成像固有的切片间MT效果,以生成MT加权(0 s延迟)和参考图像(5-8 s延迟)的MT比(MTR)大脑成像。在正常,健康的受试者中通过实验研究了不同的翻转角和相位编码(PE)顺序的影响。对于白色和灰色物质MTR,观察到的值高达〜50%和〜40%。与线性PE相比,中心PE表现出更大的MTR,更高的SNR和白灰之间的对比度。 MT的两池模型的仿真与体内MTR值非常吻合。仿真还用于研究变化的采集参数的影响,并讨论了变化的翻转角,PE步长和层间延迟的影响。最后,我们证明了使用不平衡的SSFP-FID序列减少了条带化,并显示了脑膜瘤切片间MTR成像的初步结果。

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