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牙周膜细胞纳米力学响应的原子力显微镜和荧光成像

AFM and fluorescence imaging of nanomechanical response in periodontal ligament cells.

作者信息

Shi Liang, Shi Shenggen, Li Jing, Sun Quanmei, Feng Kai, Chen Peipei, Si Shaoyan, Chen Long, Li Ye, Dang Ping, Tang Chuhua, Han Dong

机构信息

Lab for Biological Imaging and Nanomedicine, National Center for Nanoscience and Technology, Beijing 100190, China.

出版信息

Front Biosci (Elite Ed). 2010 Jun 1;2(3):1028-41. doi: 10.2741/e161.

Abstract

Most biologists think that AFM has only a limited use in biological research due to its inability to study other than surface structures. Therefore, a BIO-AFM system has been developed to combine both AFM imaging and fluorescence detection, which acts as a powerful tool for a better understanding of dynamic cell processes. In this study, based on a custom-made BIO-AFM system, the elasticity and ultrastructure of living periodontal ligament cells (PDLCs) were investigated. The cantilever probe with a micron-sized bead was used to exert nano-loading force onto the PDLCs. The related signal of NO was then recorded simultaneously. The results show that PDLCs hold strong networks of stress fibers as well as high elastic modulus value, exhibiting the ability for better counteracting the external forces. In the mechano-transduction studies, an initial increase and subsequent drop in intracellular NO response was found. Furthermore, NO may diffuse from a stimulated cell to adjacent cells. In conclusion, our single-cell nano-mechanical study provides a significant advancement in elucidating the magnitude, location, time scale, and biomolecular mechanisms underlying cell mechano-transduction.

摘要

大多数生物学家认为,由于原子力显微镜(AFM)只能研究表面结构,因此在生物学研究中的用途有限。因此,人们开发了一种生物AFM系统,将AFM成像和荧光检测结合起来,这是更好地理解动态细胞过程的有力工具。在本研究中,基于定制的生物AFM系统,研究了活的牙周膜细胞(PDLCs)的弹性和超微结构。使用带有微米级珠子的悬臂探针向PDLCs施加纳米加载力。然后同时记录NO的相关信号。结果表明,PDLCs具有强大的应力纤维网络以及高弹性模量值,表现出更好地抵抗外力的能力。在机械转导研究中,发现细胞内NO反应最初增加,随后下降。此外,NO可能从受刺激的细胞扩散到相邻细胞。总之,我们的单细胞纳米力学研究在阐明细胞机械转导的大小、位置、时间尺度和生物分子机制方面取得了重大进展。

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