应用T2制备脉冲和流体衰减反转脉冲技术研究颞骨周围磁环境对人内耳流体信号强度的影响。

Nobuyasu Ichinose, Kentaro Haraoka, Takaya Mori, Masanori Ozaki, Akira Taniguchi
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引用次数: 0

摘要

目的:最近,非对比MR内淋巴积水成像的实用性被报道,但其缺陷是基于T2制备脉冲对局部静磁场(B0)不均匀性的敏感性。本研究的目的是阐明颞骨周围磁环境对人类内耳研究中T2制备和流体衰减反转恢复脉冲组合(T2prep 3D-FLAIR)技术中淋巴液信号强度的影响。方法:我们制备了一个由浸泡在盐水中的鸡腿骨组成的定制体模。为了评估骨附近盐水的信号特征,采集了多个TE梯度回波、T2弛豫时间测量和T2prep 3D-FLAIR图像。在一名健康志愿者的前庭附近进行了类似的检查。此外,为了研究磁环境对B0的影响,在相对于B0的五个头部位置设置中进行了评估。结果:在体模和志愿者的情况下,随着T2星信号强度的衰减,在骨周围的流体上观察到T2弛豫时间缩短。具体来说,在志愿者前庭和耳蜗的外缘,T2弛豫时间比前庭中心和耳蜗的弛豫时间短。在T2prep 3D-FLAIR图像中,在它们外缘的相同位置观察到更高的信号强度。这些结果表明,骨骼会影响周围的流体磁环境。此外,对于B0的影响,尽管面积变化率较大,但与B0内的方位相关的差异没有统计学意义。结论:在T2prep 3D-FLAIR技术上,颞骨周围的磁环境影响人内耳外周部分的淋巴液信号。
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Effect of the Surrounding Magnetic Environment of Temporal Bone on the Fluid Signal Intensity in Human Inner Ear Using a Combined T2 Preparation Pulse and Fluid Attenuated Inversion Pulse Technique.

Purpose: Recently, the utility of non-contrast MR endolymphatic hydrops imaging was reported, but the pitfall was indicated based on T2 preparation pulse sensitiveness to local static magnetic field (B0) inhomogeneity. The purpose of this study is to clarify the effects of surrounding magnetic environment of temporal bone to lymphatic fluid signal intensity on the T2 preparation and fluid attenuated inversion recovery pulse combination (T2prep 3D-FLAIR) technique in human inner ear study.

Methods: We prepared a custom-made phantom comprising a chicken leg bone submersed in saline. To evaluate signal characteristics of saline close to bone, multiple TE gradient echoes, T2 relaxation time measurement, and T2prep 3D-FLAIR image were acquired. In the vicinity of the vestibule of a healthy volunteer, similar examinations were executed. Additionally, to investigate the influence of the magnetic environment from B0, the evaluation was performed in five head position settings relative to B0.

Results: In both the phantom case and volunteer case, together with T2 star signal intensity attenuation, T2 relaxation time shortening was observed on fluid around bone. Specifically, at the outer edge in the vestibule and cochlea of the volunteer, T2 relaxation time was shorter than that of center of vestibule and that of cochlea. In the T2prep 3D-FLAIR image, higher signal intensity was observed at the same location on the outer edge of them. These results showed that bone affects surrounding fluid magnetic environment. Also, for B0 influence, despite a large area variation ratio, there is no statistically significant difference correlated to orientation within B0.

Conclusion: The surrounding magnetic environment of the temporal bone affects lymphatic fluid signals of the peripheral part of the human inner ear on T2prep 3D-FLAIR technique.

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