Nanotopographical Surfaces for Regulating Cellular Mechanical Behaviors Investigated by Atomic Force Microscopy
文献类型:期刊论文
作者 | Li M(李密)1,2![]() ![]() ![]() |
刊名 | ACS BIOMATERIALS SCIENCE & ENGINEERING
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出版日期 | 2019 |
卷号 | 5期号:10页码:5036-5050 |
关键词 | atomic force microscopy cell-substrate interactions nanotopographical surface nanogranular deposition surface roughness mechanical properties |
ISSN号 | 2373-9878 |
产权排序 | 1 |
英文摘要 | Cell substrate interactions play an important role in regulating cellular physiological and pathological processes, and therefore, investigating cell substrate interface is meaningful for understanding the behaviors of cells. However, so far, the underlying mechanisms which guide the nanoscopic biological activities taking place at the cell-substrate interface remain poorly understood. The advent of atomic force microscopy (AFM) provides a powerful tool for characterizing the structures and properties of native biological and biomaterial systems with unprecedented spatiotemporal resolution, which offers new possibilities for understanding the physical sciences of biomaterials. Here, AFM was utilized to unravel the nanotopographical surfaces for regulating cellular behaviors on three different substrates (glass slide, mica, and Petri dish). First, the decellularized substrates prepared with the use of ammonia and trypsin were imaged by AFM, significantly showing the nanogranular substances on the decellularized substrates as well as the cell membrane patches for uncovering the detailed situations of mechanical contact between cells and substrates. Next, experiments performed on chemically fixed substrates with the use of paraformaldehyde together with AFM time-lapse imaging remarkably showed that nanogranular depositions from the cell culture medium appeared on the substrates for promoting cell growth. Further, the detailed cell culture medium components which contribute to the nanogranular depositions are identified. Finally, the dynamic alterations in surface roughness and mechanical properties of substrates and cells during cell growth were quantitatively measured by AFM, revealing the diverse changes of the multiple physical properties (surface roughness, adhesion force, Young's modulus, and relaxation time) during cell-substrate interactions. The research provides novel insights into the nanotopographical surfaces for cell-substrate interactions, which will be useful for understanding cellular behaviors. |
WOS关键词 | EXTRACELLULAR-MATRIX ; STEM-CELLS ; PHYSICAL INTERACTIONS ; PRACTICAL GUIDE ; CANCER ; NANOSCALE ; ADHESION ; MICROENVIRONMENT ; TOPOGRAPHY ; SUBSTRATUM |
资助项目 | National Natural Science Foundation of China[61922081] ; National Natural Science Foundation of China[61873258] ; National Natural Science Foundation of China[U1613220] ; Youth Innovation Promotion Association Chinese Academy of Sciences[2017243] |
WOS研究方向 | Materials Science |
语种 | 英语 |
WOS记录号 | WOS:000490658800015 |
资助机构 | National Natural Science Foundation of ChinaNational Natural Science Foundation of China [61922081, 61873258, U1613220] ; Youth Innovation Promotion Association Chinese Academy of Sciences [2017243] |
源URL | [http://ir.sia.cn/handle/173321/25776] ![]() |
专题 | 沈阳自动化研究所_机器人学研究室 |
通讯作者 | Li M(李密) |
作者单位 | 1.State Key Laboratory of Robotics, Shenyang Institute of Automation 2.Institutes for Robotics and Intelligent Manufacturing, Chinese Academy of Sciences, Shenyang 110016, China 3.Department of Industrial and Manufacturing Systems Engineering, The University of Hong Kong, Kowloon 999077, Hong Kong, China |
推荐引用方式 GB/T 7714 | Li M,Wang YC,Liu LQ. Nanotopographical Surfaces for Regulating Cellular Mechanical Behaviors Investigated by Atomic Force Microscopy[J]. ACS BIOMATERIALS SCIENCE & ENGINEERING,2019,5(10):5036-5050. |
APA | Li M,Wang YC,&Liu LQ.(2019).Nanotopographical Surfaces for Regulating Cellular Mechanical Behaviors Investigated by Atomic Force Microscopy.ACS BIOMATERIALS SCIENCE & ENGINEERING,5(10),5036-5050. |
MLA | Li M,et al."Nanotopographical Surfaces for Regulating Cellular Mechanical Behaviors Investigated by Atomic Force Microscopy".ACS BIOMATERIALS SCIENCE & ENGINEERING 5.10(2019):5036-5050. |
入库方式: OAI收割
来源:沈阳自动化研究所
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