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Characterization of normal appearing brain structures using high-resolution quantitative magnetization transfer steady-state free precession imaging.

机译:使用高分辨率定量磁化转移稳态自由进动成像来表征正常出现的大脑结构。

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Compared to standard spoiled gradient echo (SPGR)-methods, balanced steady-state free precession (bSSFP) provides quantitative magnetization transfer (qMT) images with increased resolution and high signal-to-noise ratio (SNR) in clinically feasible acquisition times. The aim of this study was to acquire 3D high-resolution qMT-data to create standardized qMT-values of many single brain structures that might serve as a baseline for the future characterization of pathologies of the brain. QMT parameters, such as the fractional pool size (F), exchange rate (kf) and relaxation times of the free pool (T1, T2) were assessed in a total of 12 white matter (WM) and 11 grey matter (GM) structures in 12 healthy volunteers with MT-sensitized bSSFP. Our results were compared with qMT-data from previous studies obtained with SPGR-methods using MT-sensitizing preparation pulses with significantly lower resolution. In general, qMT-values were in good accordance with prior studies. As expected, higher F and kf and lower relaxation times were observed in WM as compared to GM structures. However, many significant differences were observed within WM and GM regions and also between different regions of the same structure like in the internal capsule where the posterior limb showed significant higher kf than the anterior limb. Significant differences for all parameters were observed between subjects. In contrast to previous studies, bSSFP allowed assessment of even small brain structures due to its high resolution. The observed differences from previous studies can partly be explained by the reduced partial volume effects. MT-sensitized bSSFP is an ideal candidate for qMT-analysis in the clinical routine as it provides high-resolution 3D qMT-data of even small brain structures in clinically feasible acquisition times. The present qMT-data can serve as a reference for the characterization of cerebral diseases.
机译:与标准的变差梯度回波(SPGR)方法相比,平衡的稳态自由进动(bSSFP)在临床可行的采集时间内可提供更高的分辨率和较高的信噪比(SNR)的定量磁化传递(qMT)图像。这项研究的目的是获取3D高分辨率qMT数据,以创建许多单脑结构的标准化qMT值,这些值可以作为将来脑部病理学表征的基准。在总共12个白质(WM)和11个灰质(GM)结构中评估了QMT参数,例如分数池大小(F),交换率(kf)和自由池的弛豫时间(T1,T2)接受MT敏感的bSSFP的12位健康志愿者。我们的结果与以前使用SPGR方法获得的qMT数据进行了比较,这些数据是使用具有显着较低分辨率的MT敏化准备脉冲通过SPGR方法获得的。通常,qMT值与先前的研究非常吻合。正如预期的那样,与GM结构相比,在WM中观察到了更高的F和kf以及更低的弛豫时间。但是,在WM和GM区域内以及在具有相同结构的不同区域之间(如内囊)观察到许多显着差异,内囊中后肢的kf明显高于前肢。在受试者之间观察到所有参数的显着差异。与以前的研究相比,bSSFP具有高分辨率,因此甚至可以评估小脑结构。所观察到的与先前研究的差异可以部分由减少的部分体积效应来解释。 MT敏化的bSSFP是临床常规qMT分析的理想候选者,因为它在临床可行的采集时间内提供了甚至小脑结构的高分辨率3D qMT数据。本qMT数据可作为脑疾病特征的参考。

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