Barth Markus, Poser Benedikt A
Radboud University Nijmegen, Donders Institute for Brain, Cognition and Behaviour, Nijmegen 6525 HP, The Netherlands.
Erwin L. Hahn Institute for Magnetic Resonance Imaging, University Duisburg-Essen, Essen 45141, Germany.
Materials (Basel). 2011 Nov 2;4(11):1941-1955. doi: 10.3390/ma4111941.
This review article examines the current state of BOLD fMRI at a high magnetic field strength of 7 Tesla. The following aspects are covered: a short description of the BOLD contrast, spatial and temporal resolution, BOLD sensitivity, localization and spatial specificity, technical challenges as well as an outlook on future developments are given. It is shown that the main technical challenges of performing BOLD fMRI at high magnetic field strengths-namely development of array coils, imaging sequences and parallel imaging reconstruction-have been solved successfully. The combination of these developments has lead to the availability of high-resolution BOLD fMRI protocols that are able to cover the whole brain with a repetition time (TR) shorter than 3 s. The structural information available from these high-resolution fMRI images itself is already very detailed, which helps to co-localize structure and function. Potential future applications include whole-brain connectivity analysis on a laminar resolution and single subject examinations.
这篇综述文章探讨了7特斯拉高磁场强度下血氧水平依赖性功能磁共振成像(BOLD fMRI)的现状。涵盖以下几个方面:对BOLD对比、空间和时间分辨率、BOLD敏感性、定位和空间特异性进行简短描述,同时给出技术挑战以及对未来发展的展望。结果表明,在高磁场强度下进行BOLD fMRI的主要技术挑战——即阵列线圈的开发、成像序列和平行成像重建——已成功解决。这些进展的结合使得能够获得高分辨率的BOLD fMRI协议,该协议能够在短于3秒的重复时间(TR)内覆盖整个大脑。这些高分辨率功能磁共振成像图像本身提供的结构信息已经非常详细,这有助于实现结构与功能的共定位。未来潜在的应用包括基于层状分辨率的全脑连接性分析和单受试者检查。