Hetherington Hoby P, Avdievich Nikolai I, Kuznetsov Andrey M, Pan Jullie W
Department of Neurosurgery, Yale University School of Medicine, New Haven, Connecticut 06520, USA.
Magn Reson Med. 2010 Jan;63(1):9-19. doi: 10.1002/mrm.22182.
Spectroscopic imaging of the human head at short echo times (<or=15 ms) typically requires suppression of signals from extracerebral tissues. However, at 7 T, decreasing efficiency in B1+ generation (hertz/watt) and increasing spectral bandwidth result in dramatic increases in power deposition and increased chemical shift registration artifacts for conventional gradient-based in-plane localization. In this work, we describe a novel method using radiofrequency shimming and an eight-element transceiver array to generate a B1+ field distribution that excites a ring about the periphery of the head and leaves central brain regions largely unaffected. We have used this novel B1+ distribution to provide in-plane outer volume suppression (>98% suppression of extracerebral lipids) without the use of gradients. This novel B1+ distribution is used in conjunction with a double inversion recovery method to provide suppression of extracerebral resonances with T1s greater than 400 ms, while having negligible effect on metabolite ratios of cerebral resonances with T1s>1000 ms. Despite the use of two adiabatic pulses, the high efficiency of the ring distribution allows radiofrequency power deposition to be limited to 3-4 W for a pulse repetition time of 1.5 sec. The short echo time enabled the acquisition of images of the human brain, displaying glutamate, glutamine, macromolecules, and other major cerebral metabolites.
在短回波时间(≤15毫秒)下对人类头部进行光谱成像通常需要抑制来自脑外组织的信号。然而,在7T磁场强度下,B1+生成效率降低(赫兹/瓦特)以及光谱带宽增加,导致基于传统梯度的平面内定位的功率沉积显著增加,化学位移配准伪影也增多。在这项工作中,我们描述了一种使用射频匀场和八元素收发阵列的新方法,以生成一种B1+场分布,该分布能激发头部周边的一个环,而使大脑中央区域基本不受影响。我们利用这种新的B1+分布在不使用梯度的情况下实现平面外体积抑制(脑外脂质抑制>98%)。这种新的B1+分布与双反转恢复方法结合使用,以抑制T1大于400毫秒的脑外共振,而对T1>1000毫秒的脑内共振代谢物比率影响可忽略不计。尽管使用了两个绝热脉冲,但环形分布的高效率使得在1.5秒的脉冲重复时间内射频功率沉积限制在3 - 4瓦。短回波时间使得能够采集显示谷氨酸、谷氨酰胺、大分子和其他主要脑代谢物的人类大脑图像。