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超高场(UHF)人脑弥散磁共振成像:综述。

Diffusion MRI of the human brain at ultra-high field (UHF): A review.

机构信息

Cardiff University Brain Research Imaging Centre (CUBRIC), School of Engineering, Cardiff University, Cardiff, UK.

出版信息

Neuroimage. 2018 Mar;168:172-180. doi: 10.1016/j.neuroimage.2017.04.037. Epub 2017 Apr 18.

Abstract

The continued drive towards MRI scanners operating at increasingly higher main magnetic fields is primarily motivated by the maxim that more teslas mean more signal and lead to better images. This promise of increased signal, which cannot easily be achieved in other ways, encourages efforts to overcome the inextricable technical challenges which accompany this endeavor. Unlike for many applications, however, diffusion imaging is not currently able to directly reap these potential signal gains - at the time of writing it seems fair to say that, for matched gradient and RF hardware, the majority of diffusion images acquired at 7T, while comparable in quality to those achievable at 3T, do not demonstrate a clear advantage over what can be obtained at lower field. This does not mean that diffusion imaging at UHF is not a worthwhile pursuit - but more a reflection of the fact that the associated challenges are manifold - and converting the potential of higher field strengths into 'better' diffusion imaging is by no means a straightforward task. This article attempts to summarize the specific reasons that make diffusion imaging at UHF more complicated than one might expect, and to highlight the range of developments that have already been made which have enabled diffusion images of excellent quality to be acquired at 7T.

摘要

MRI 扫描仪的磁场强度不断提高,主要是因为磁场强度越高,信号就越强,图像质量也就越好。这种增加信号的承诺在其他方面不容易实现,因此鼓励人们努力克服伴随这一努力而来的难以克服的技术挑战。然而,与许多应用不同,扩散成像目前还不能直接利用这些潜在的信号增益——在撰写本文时,可以说,对于匹配的梯度和射频硬件,在 7T 下采集的大多数扩散图像在质量上与在 3T 下获得的图像相当,但与在较低场下获得的图像相比,并没有明显的优势。这并不意味着 UHF 下的扩散成像没有价值——而是更多地反映了一个事实,即相关的挑战是多方面的——将更高场强的潜力转化为“更好”的扩散成像绝非易事。本文试图总结使 UHF 下的扩散成像比人们预期的更复杂的具体原因,并强调已经取得的一系列进展,这些进展已经能够在 7T 下获得高质量的扩散图像。

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