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压缩光学相干弹性成像在人体心包特征描述中的应用:一项初步研究。

Application of compression optical coherence elastography for characterization of human pericardium: A pilot study.

作者信息

Zaitsev Vladimir Y, Sovetsky Alexander A, Matveyev Alexander L, Matveev Lev A, Shabanov Dmitry, Salamatova Victoria Y, Karavaikin Pavel A, Vassilevski Yuri V

机构信息

Institute of Applied Physics, Russian Academy of Sciences, Nizhny Novgorod, Russia.

Sechenov University, Moscow, Russia.

出版信息

J Biophotonics. 2023 Mar;16(3):e202200253. doi: 10.1002/jbio.202200253. Epub 2022 Nov 28.

Abstract

The recent impressive progress in Compression Optical Coherence Elastography (C-OCE) demonstrated diverse biomedical applications, comprising ophthalmology, oncology, etc. High resolution of C-OCE enables spatially resolved characterization of elasticity of rather thin (thickness < 1 mm) samples, which previously was impossible. Besides Young's modulus, C-OCE enables obtaining of nonlinear stress-strain dependences for various tissues. Here, we report the first application of C-OCE to nondestructively characterize biomechanics of human pericardium, for which data of conventional tensile tests are very limited and controversial. C-OCE revealed pronounced differences among differently prepared pericardium samples. Ample understanding of the influence of chemo-mechanical treatment on pericardium biomechanics is very important because of rapidly growing usage of own patients' pericardium for replacement of aortic valve leaflets in cardio-surgery. The figure demonstrates differences in the tangent Young's modulus after glutaraldehyde-induced cross-linking for two pericardium samples. One sample was over-stretched during the preparation, which caused some damage to the tissue.

摘要

压缩光学相干弹性成像(C-OCE)最近取得的显著进展展示了其在多种生物医学领域的应用,包括眼科、肿瘤学等。C-OCE的高分辨率能够对相当薄(厚度<1毫米)的样本进行空间分辨的弹性表征,而这在以前是不可能的。除了杨氏模量,C-OCE还能够获取各种组织的非线性应力-应变关系。在此,我们报告C-OCE首次用于无损表征人体心包生物力学,对于心包,传统拉伸试验的数据非常有限且存在争议。C-OCE揭示了不同制备的心包样本之间存在明显差异。鉴于在心脏手术中越来越多地使用患者自身的心包来替换主动脉瓣叶,充分了解化学-机械处理对心包生物力学的影响非常重要。该图展示了两个心包样本在戊二醛诱导交联后切线杨氏模量的差异。其中一个样本在制备过程中过度拉伸,对组织造成了一些损伤。

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