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首页> 外文期刊>British Journal of Radiology >High resolution MRI of the brain at 4.7 Tesla using fast spin echo imaging.
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High resolution MRI of the brain at 4.7 Tesla using fast spin echo imaging.

机译:使用快速自旋回波成像技术在4.7 Tesla下对大脑进行高分辨率MRI。

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摘要

Over recent years, high field MR scanners (3 T and above) have become increasingly widespread due to potential advantages such as higher signal-to-noise ratio. However, few examples of high resolution images covering the whole brain in reasonable acquisition times have been published to date and none have used fast spin echo (FSE), a sequence commonly employed for the acquisition of T(2) weighted images at 1.5 T. This is mostly due to the increased technical challenges associated with uniform signal generation and the increasingly restrictive constraints of current safety guidelines at high field. We investigated 10 volunteers using an FSE sequence optimized to the 4.7 T environment. This sequence allows the acquisition of 17- and 34-slice data sets with an in-plane resolution of approximately 500 microm x 500 microm and a slice thickness of 2 mm, in 5 min 40 s and 11 min 20 s, respectively. The images appear T(2) weighted, although the contrast is due to the combined effects of chosen echo time, magnetization transfer, direct radio frequency saturation and diffusion as well as the T(1) and T(2) relaxation times of the tissue. The result is an excellent detailed visualization of anatomical structures, demonstrating the great potential of 4.7 T MRI for clinical applications. This paper shows that, with careful optimization of sequence parameters, FSE imaging can be used at high field to generate images with high spatial resolution and uniform contrast across the whole brain within the prescribed power deposition limits.
机译:近年来,由于潜在的优势,例如更高的信噪比,高磁场MR扫描仪(3 T及以上)已变得越来越普遍。但是,迄今为止,很少有在合理的采集时间内覆盖全脑的高分辨率图像的示例,并且都没有使用快速自旋回波(FSE),即在1.5 T下通常用于采集T(2)加权图像的序列。这主要是由于与均匀信号生成相关的技术挑战日益增加,以及当前在高安全领域的安全准则日益严格的限制。我们使用针对4.7 T环境优化的FSE序列调查了10名志愿者。该序列允许分别在5分钟40 s和11分钟20 s内以约500 microm x 500 microm的面内分辨率和2 mm的切片厚度获取17切片数据集。图像显示为T(2)加权,尽管对比度是由于所选回波时间,磁化传递,直接射频饱和和扩散以及组织的T(1)和T(2)弛豫时间的综合作用所致。结果是对解剖结构进行了出色的详细可视化,证明了4.7 T MRI在临床应用中的巨大潜力。本文表明,通过精心优化序列参数,FSE成像可用于高场,以在规定的功率沉积范围内生成具有高空间分辨率和整个大脑均匀对比度的图像。

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