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二维选择性射频激发的内视野功能神经影像学。

Functional neuroimaging of inner fields-of-view with 2D-selective RF excitations.

机构信息

Department of Systems Neuroscience, University Medical Center Hamburg-Eppendorf, Hamburg, Germany.

出版信息

Magn Reson Imaging. 2013 Sep;31(7):1228-35. doi: 10.1016/j.mri.2013.03.005. Epub 2013 Apr 18.

Abstract

Echo-planar imaging is widely used in functional neuroimaging but suffers from its pronounced sensitivity to field inhomogeneities that cause geometric distortions and image blurring which both limit the effective in-plane resolution achievable. In this work, it is shown how inner-field-of-view techniques based on 2D-selective RF excitations (2DRF) can be applied to reduce the field-of-view in the phase-encoding direction without aliasing and increase the in-plane resolution accordingly. Free-induction-decay (FID) EPI and echo-train-shifted (T2*-weighted) and standard (T2-weighted) spin-echo (SE) EPI with in-plane resolutions of up to 0.5×1.0mm(2) (slice thickness 5mm) were acquired at 3T. Unwanted signal contributions of 2DRF side excitations were shifted out of the object (FID-EPI) or of the refocusing plane by tilting the excitation plane (SE-EPI). Brain activation in healthy volunteers was investigated with checkerboard and finger-tapping block-design paradigms. Brain activation could be detected with all sequences and contrasts, most reliably with FID-EPI due to its higher signal amplitude and the longer 2DRF excitation that are more sensitive to magnetic field inhomogeneities. In conclusion, inner-FOV EPI based on 2DRF excitations could help to improve the spatial resolution of fMRI of focal target regions, e.g., for applications in the spinal cord.

摘要

平面回波成像广泛应用于功能神经影像学,但由于其对磁场不均匀性的敏感性较高,会导致几何变形和图像模糊,从而限制了可实现的有效平面分辨率。在这项工作中,展示了如何应用基于二维选择性 RF 激发(2DRF)的内视野技术来减小相位编码方向上的视野而不会产生混叠,并相应地提高平面分辨率。在 3T 下,采集了具有高达 0.5×1.0mm(2)(切片厚度 5mm)的平面分辨率的自由感应衰减(FID)EPI 和回波列车移位(T2*-加权)和标准(T2 加权)自旋回波(SE)EPI。通过倾斜激发平面(SE-EPI),可以将 2DRF 侧激发的不需要的信号贡献移出物体(FID-EPI)或聚焦平面。使用棋盘和手指敲击块设计范式研究了健康志愿者的大脑激活。所有序列和对比度都可以检测到大脑激活,由于其更高的信号幅度和更长的 2DRF 激发对磁场不均匀性更敏感,因此 FID-EPI 检测到的激活最可靠。总之,基于 2DRF 激发的内视野 EPI 可以帮助提高聚焦目标区域 fMRI 的空间分辨率,例如,在脊髓应用中。

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