Deffieux Thomas, Gennisson Jean-Luc, Tanter Mickaël, Fink Mathias
Laboratoire Ondes et Acoustique, ESPCI, CNRS UMR 7587, INSERM, Universite Paris VII, Paris Cedex 05, France.
IEEE Trans Ultrason Ferroelectr Freq Control. 2008 Oct;55(10):2177-90. doi: 10.1109/TUFFC.917.
One of the great challenges for understanding muscular diseases is to assess noninvasively the active and passive mechanical properties of the musculoskeletal system. In this paper we report the use of ultrafast ultrasound imaging to explore with a submillimeter resolution the behavior of the contracting tissues in vivo (biceps brachii). To image the contraction, which is a very brief phenomenon (100 ms), a recently designed ultrasound scanner prototype able to take up to 6000 frames/s was used. A very high frame rate from 1000 to 2500 frames/s was used to image the cross section plane of the muscle (transverse to fibers) enabling us to catch in real time the muscle contraction during a transient electrostimulation. Tissue velocities were obtained from radiofrequency based speckle tracking techniques and their profiles are discussed with respect to electrostimulation intensities and pulse repetition frequencies for different volunteers. Three-dimensional (3-D) very high frame rate movies were also acquired by repeating the experiment for different acquisition planes while triggering the imaging system with the electrostimulation device. The reconstructed 3-D velocity field allows the full localization of the contracting fibers bundle. This ultrasound technique, referred to as echo mechanomyography, offers new perspectives for in vivo and in situ noninvasive muscle diagnosis of an active contractile tissue.
理解肌肉疾病的一大挑战在于以非侵入性方式评估肌肉骨骼系统的主动和被动力学特性。在本文中,我们报告了使用超快超声成像技术,以亚毫米分辨率在体内研究收缩组织(肱二头肌)的行为。为了对收缩这一非常短暂的现象(100毫秒)进行成像,我们使用了最近设计的一种能够达到每秒6000帧的超声扫描仪原型。从1000到2500帧/秒的非常高的帧率被用于对肌肉的横截面平面(与纤维垂直)进行成像,这使我们能够在短暂的电刺激过程中实时捕捉肌肉收缩。组织速度是通过基于射频的散斑跟踪技术获得的,并针对不同志愿者的电刺激强度和脉冲重复频率对其分布情况进行了讨论。通过在不同采集平面重复实验,同时用电刺激设备触发成像系统,还获取了三维(3-D)非常高帧率的影片。重建的三维速度场能够对收缩纤维束进行完全定位。这种被称为回波肌动图的超声技术为体内和原位非侵入性肌肉诊断活跃收缩组织提供了新的视角。