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小动物体弹性的剪切波成像体内图谱。

In vivo mapping of brain elasticity in small animals using shear wave imaging.

机构信息

Institut Langevin, CNRS UMR 7587, INSERM U979, ESPCI ParisTech, 75005 Paris, France.

出版信息

IEEE Trans Med Imaging. 2011 Mar;30(3):550-8. doi: 10.1109/TMI.2010.2079940. Epub 2010 Sep 27.

Abstract

A combination of radiation force and ultrafast ultrasound imaging is used to both generate and track the propagation of a shear wave in the brain whose local speed is directly related to stiffness, characterized by the dynamic shear modulus G*. When performed on trepanated rats, this approach called shear wave imaging (SWI) provides 3-D brain elasticity maps reaching a spatial resolution of 0.7 mm×1 mm×0.4 mm with a good reproducibility (<13%). The dynamic shear modulus of brain tissues exhibits values in the 2-25 kPa range with a mean value of 12 kPa and is quantified for different anatomical regions. The anisotropy of the shear wave propagation is studied and the first in vivo anisotropy map of brain elasticity is provided. The propagation is found to be isotropic in three gray matter regions but highly anisotropic in two white matter regions. The good temporal resolution (~10 ms per acquisition) of SWI also allows a dynamic estimation of brain elasticity to within a single cardiac cycle, showing that brain pulsatility does not transiently modify local elasticity. SWI proves its potential for the study of pathological modifications of brain elasticity both in small animal models and in clinical intra-operative imaging.

摘要

采用辐射力和超快超声成像相结合的方法,既可以产生又可以跟踪大脑中剪切波的传播,其局部速度与硬度直接相关,由动态剪切模量 G* 来表征。当在有颅骨钻孔的大鼠上进行时,这种称为剪切波成像 (SWI) 的方法提供了 3D 大脑弹性图,空间分辨率达到 0.7mm×1mm×0.4mm,具有良好的可重复性(<13%)。脑组织的动态剪切模量的范围在 2-25kPa 之间,平均值为 12kPa,并对不同的解剖区域进行了量化。研究了剪切波传播的各向异性,并提供了大脑弹性的第一张体内各向异性图。发现三个灰质区域的传播是各向同性的,但两个白质区域的传播是高度各向异性的。SWI 的良好时间分辨率(每次采集约 10ms)还允许在单个心动周期内对大脑弹性进行动态估计,表明大脑脉动不会暂时改变局部弹性。SWI 证明了它在小动物模型和临床术中成像中研究大脑弹性病理性改变的潜力。

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