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光学微弹性成像技术的细胞弹性超快成像。

Ultrafast imaging of cell elasticity with optical microelastography.

机构信息

Laboratory of Biorheology and Medical Ultrasonics, University of Montreal Hospital Research Center, Montreal, QC, Canada H2X 0A9.

LabTAU, INSERM u1032, University of Lyon, F-69003 Lyon, France.

出版信息

Proc Natl Acad Sci U S A. 2018 Jan 30;115(5):861-866. doi: 10.1073/pnas.1713395115. Epub 2018 Jan 16.

Abstract

Elasticity is a fundamental cellular property that is related to the anatomy, functionality, and pathological state of cells and tissues. However, current techniques based on cell deformation, atomic force microscopy, or Brillouin scattering are rather slow and do not always accurately represent cell elasticity. Here, we have developed an alternative technique by applying shear wave elastography to the micrometer scale. Elastic waves were mechanically induced in live mammalian oocytes using a vibrating micropipette. These audible frequency waves were observed optically at 200,000 frames per second and tracked with an optical flow algorithm. Whole-cell elasticity was then mapped using an elastography method inspired by the seismology field. Using this approach we show that the elasticity of mouse oocytes is decreased when the oocyte cytoskeleton is disrupted with cytochalasin B. The technique is fast (less than 1 ms for data acquisition), precise (spatial resolution of a few micrometers), able to map internal cell structures, and robust and thus represents a tractable option for interrogating biomechanical properties of diverse cell types.

摘要

弹性是一种基本的细胞特性,与细胞和组织的解剖结构、功能和病理状态有关。然而,目前基于细胞变形、原子力显微镜或布里渊散射的技术相当缓慢,并不总是能准确地反映细胞的弹性。在这里,我们开发了一种替代技术,即在微米尺度上应用剪切波弹性成像。使用振动微管在活的哺乳动物卵母细胞中机械诱导弹性波。这些可听频率的波以每秒 20 万帧的速度进行光学观察,并使用光流算法进行跟踪。然后使用受地震学领域启发的弹性成像方法来绘制整个细胞的弹性。使用这种方法,我们发现当卵母细胞细胞骨架被细胞松弛素 B 破坏时,小鼠卵母细胞的弹性降低。该技术速度快(数据采集不到 1 毫秒)、精度高(空间分辨率为几微米),能够绘制细胞内部结构,并且稳健,因此代表了一种可行的选择,可以检测不同类型细胞的生物力学特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/234a/5798341/2987f49ccd9e/pnas.1713395115fig01.jpg

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