Suppr超能文献

3T 下基于小视野、多激发、变密度、螺旋采集的人脑桥高分辨率弥散张量成像。

High-resolution diffusion tensor imaging of the human pons with a reduced field-of-view, multishot, variable-density, spiral acquisition at 3 T.

机构信息

Department of Mechanical Science & Engineering, University of Illinois at Urbana-Champaign, Urbana, Illinois, USA.

出版信息

Magn Reson Med. 2009 Oct;62(4):1007-16. doi: 10.1002/mrm.22105.

Abstract

Diffusion tensor imaging of localized anatomic regions, such as brainstem, cervical spinal cord, and optic nerve, is challenging because of the existence of significant susceptibility differences, severe physiologic motion in the surrounding tissues, and the need for high spatial resolution to resolve the underlying complex neuroarchitecture. The aim of the methodology presented here is to achieve high-resolution diffusion tensor imaging in localized regions of the central nervous system that is motion insensitive and immune to susceptibility while acquiring a set of two-dimensional images with more than six diffusion encoding directions within a reasonable total scan time. We accomplish this aim by implementing self-navigated, multishot, variable-density, spiral encoding with outer volume suppression. We establish scan protocols for achieving equal signal-to-noise ratio at 1.2 mm and 0.8 mm in-plane resolution for reduced field-of-view diffusion tensor imaging of the brainstem. In vivo application of the technique on the human pons of three subjects shows a clear delineation of the multiple local neural tracts. By comparing scans acquired with varying in-plane resolution but with constant signal-to-noise ratio, we demonstrate that increasing the resolution and reducing the partial volume effect result in higher fractional anisotropy values for the corticospinal tracts.

摘要

对脑桥、颈段脊髓和视神经等局部解剖区域进行弥散张量成像具有挑战性,因为存在明显的磁化率差异、周围组织的严重生理运动,并且需要高空间分辨率来解析潜在的复杂神经结构。本研究方法的目的是实现在中枢神经系统的局部区域获得高分辨率弥散张量成像,该方法对运动不敏感且不受磁化率影响,同时在合理的总扫描时间内获取一组具有超过六个扩散编码方向的二维图像。我们通过实现自我导航、多shot、可变密度、螺旋编码和外部体积抑制来实现这一目标。我们为减小视野弥散张量成像的脑桥建立了扫描方案,以在 1.2mm 和 0.8mm 面内分辨率下实现相等的信噪比。对三名受试者的人体脑桥的技术的体内应用显示出多个局部神经束的清晰勾画。通过比较具有不同面内分辨率但具有恒定信噪比的扫描,我们证明了增加分辨率和减少部分容积效应会导致皮质脊髓束的分数各向异性值更高。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验