Spinoza Centre for Neuroimaging, Amsterdam, Netherlands; Experimental Psychology, Helmholtz Institute, Utrecht University, Utrecht, Netherlands.
Spinoza Centre for Neuroimaging, Amsterdam, Netherlands; Experimental Psychology, Helmholtz Institute, Utrecht University, Utrecht, Netherlands; Radiology, University Medical Centre Utrecht, Utrecht, Netherlands.
Neuroimage. 2018 Mar;168:345-357. doi: 10.1016/j.neuroimage.2017.01.028. Epub 2017 Jan 16.
Human MRI scanners at ultra-high magnetic field strengths of 7 T and higher are increasingly available to the neuroscience community. A key advantage brought by ultra-high field MRI is the possibility to increase the spatial resolution at which data is acquired, with little reduction in image quality. This opens a new set of opportunities for neuroscience, allowing investigators to map the human cortex at an unprecedented level of detail. In this review, we present recent work that capitalizes on the increased signal-to-noise ratio available at ultra-high field and discuss the theoretical advances with a focus on sensory and motor systems neuroscience. Further, we review research performed at sub-millimeter spatial resolution and discuss the limits and the potential of ultra-high field imaging for structural and functional imaging in human cortex. The increased spatial resolution achievable at ultra-high field has the potential to unveil the fundamental computations performed within a given cortical area, ultimately allowing the visualization of the mesoscopic organization of human cortex at the functional and structural level.
人类磁共振成像扫描仪的超高磁场强度越来越多地为神经科学界所使用,其强度可达 7 特斯拉甚至更高。超高磁场磁共振成像的一个主要优势是能够在不降低图像质量的情况下提高数据采集的空间分辨率。这为神经科学开辟了一系列新的机会,使研究人员能够以前所未有的细节水平绘制人类大脑皮层图谱。在这篇综述中,我们展示了最近利用超高场提供的更高信噪比的工作,并重点讨论了感觉和运动系统神经科学方面的理论进展。此外,我们还回顾了在亚毫米空间分辨率下进行的研究,并讨论了超高场成像在人类大脑皮层结构和功能成像方面的局限性和潜力。超高场可实现的更高空间分辨率有可能揭示特定皮层区域内进行的基本计算,最终使人们能够在功能和结构水平上可视化人类大脑皮层的中尺度组织。