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Single Session Imaging of Cerebellum at 7 Tesla: Obtaining Structure and Function of Multiple Motor Subsystems in Individual Subjects

机译:小脑在7特斯拉的单个会话成像:获得单个对象的多个运动子系统的结构和功能

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摘要

The recent increase in the use of high field MR systems is accompanied by a demand for acquisition techniques and coil systems that can take advantage of increased power and accuracy without being susceptible to increased noise. Physical location and anatomical complexity of targeted regions must be considered when attempting to image deeper structures with small nuclei and/or complex cytoarchitechtonics (i.e. small microvasculature and deep nuclei), such as the brainstem and the cerebellum (Cb). Once these obstacles are overcome, the concomitant increase in signal strength at higher field strength should allow for faster acquisition of MR images. Here we show that it is technically feasible to quickly and accurately detect blood oxygen level dependent (BOLD) signal changes and obtain anatomical images of Cb at high spatial resolutions in individual subjects at 7 Tesla in a single one-hour session. Images were obtained using two high-density multi-element surface coils (32 channels in total) placed beneath the head at the level of Cb, two channel transmission, and three-dimensional sensitivity encoded (3D, SENSE) acquisitions to investigate sensorimotor activations in Cb. Two classic sensorimotor tasks were used to detect Cb activations. BOLD signal changes during motor activity resulted in concentrated clusters of activity within the Cb lobules associated with each task, observed consistently and independently in each subject: Oculomotor vermis (VI/VII) and CrusI/II for pro- and anti-saccades; ipsilateral hemispheres IV-VI for finger tapping; and topographical separation of eye- and hand- activations in hemispheres VI and VIIb/VIII. Though fast temporal resolution was not attempted here, these functional patches of highly specific BOLD signal changes may reflect small-scale shunting of blood in the microvasculature of Cb. The observed improvements in acquisition time and signal detection are ideal for individualized investigations such as differentiation of functional zones prior to surgery.
机译:随着高场MR系统的使用的最近增加,伴随着对获取技术和线圈系统的需求,这些获取技术和线圈系统可以利用增加的功率和精度而不会受到增加的噪声的影响。尝试成像具有小核和/或复杂细胞结构学(即小微脉管系统和深核)的深层结构(例如脑干和小脑(Cb))时,必须考虑目标区域的物理位置和解剖结构的复杂性。一旦克服了这些障碍,随之而来的是在更高的场强下信号强度的增加应可以更快地采集MR图像。在这里,我们表明,在一个小时的单个小时内,快速,准确地检测依赖于血氧水平(BOLD)的信号变化并在7个特斯拉的单个受试者中获得高空间分辨率的Cb解剖图像在技术上是可行的。使用两个高密度多元素表面线圈(总共32个通道)以Cb的水平放置在头部下方,两个通道传输以及三维灵敏度编码(3D,SENSE)采集来获取图像,以研究在人体中的感觉运动激活。 b两种经典的感觉运动任务被用来检测Cb的激活。运动过程中大胆的信号变化导致与每个任务相关的Cb小叶内集中的活动簇,在每个受试者中一致且独立地观察到:动眼-(VI / VII)和CrusI / II用于前扫视和反扫视;同侧半球IV-VI用于手指敲击;和半球VI和VIIb / VIII中眼睛和手部激活的地形分离。尽管这里没有尝试快速的时间分辨率,但是这些具有高特异性BOLD信号变化的功能性补丁可能反映了Cb微血管中血液的小范围分流。观察到的采集时间和信号检测方面的改进非常适合进行个性化检查,例如在手术前区分功能区。

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