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使用非线性光学显微镜对骨工程材料中胶原蛋白交联进行无标记表征

Label-Free Characterization of Collagen Crosslinking in Bone-Engineered Materials Using Nonlinear Optical Microscopy.

作者信息

Hung Chao-Wei, Mazumder Nirmal, Lin Dan-Jae, Chen Wei-Liang, Lin Shih-Ting, Chan Ming-Che, Zhuo Guan-Yu

机构信息

PhD Program for Biomedical Engineering and Rehabilitation Science, China Medical University, No. 91, Hsueh-Shih Road, Taichung40402, Taiwan R.O.C.

Department of Biophysics, Manipal School of Life Sciences, Manipal Academy of Higher Education, Manipal, Karnataka576104, India.

出版信息

Microsc Microanal. 2021 Apr 8:1-11. doi: 10.1017/S1431927621000295.

Abstract

Engineered biomaterials provide unique functions to overcome the bottlenecks seen in biomedicine. Hence, a technique for rapid and routine tests of collagen is required, in which the test items commonly include molecular weight, crosslinking degree, purity, and sterilization induced structural change. Among them, the crosslinking degree mainly influences collagen properties. In this study, second harmonic generation (SHG) and coherent anti-Stokes Raman scattering (CARS) microscopy are used in combination to explore the collagen structure at molecular and macromolecular scales. These measured parameters are applied for the classification and quantification among the different collagen scaffolds, which were verified by other conventional methods. It is demonstrated that the crosslinking status can be analyzed from SHG images and presented as the coherency of collagen organization that is correlated with the mechanical properties. Also, the comparative analyses of SHG signal and relative CARS signal of amide III band at 1,240 cm−1 to δCH2 band at 1,450 cm−1 of these samples provide information regarding the variation of the molecular structure during a crosslinking process, thus serving as nonlinear optical signatures to indicate a successful crosslinking.

摘要

工程生物材料具有独特功能,可克服生物医学中出现的瓶颈。因此,需要一种用于胶原蛋白快速常规检测的技术,其中检测项目通常包括分子量、交联度、纯度以及灭菌引起的结构变化。其中,交联度主要影响胶原蛋白的性能。在本研究中,二次谐波产生(SHG)和相干反斯托克斯拉曼散射(CARS)显微镜联用,以在分子和大分子尺度上探究胶原蛋白结构。这些测量参数用于不同胶原蛋白支架的分类和定量,这已通过其他传统方法得到验证。结果表明,交联状态可从SHG图像中分析得出,并表现为与力学性能相关的胶原蛋白组织的相干性。此外,对这些样品在1240 cm−1处酰胺III带与1450 cm−1处δCH2带的SHG信号和相对CARS信号进行对比分析,可提供有关交联过程中分子结构变化的信息,从而作为非线性光学特征来表明交联成功。

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