AFM纳米压痕对生物细胞(人肝癌)粘附作用的研究。

IF 1.6 Q3 ROBOTICS Journal of Micro-Bio Robotics Pub Date : 2016-01-01 Epub Date: 2016-05-07 DOI:10.1007/s12213-016-0089-8
Xinyao Zhu, Nan Zhang, Zuobin Wang, X Liu
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引用次数: 8

摘要

在这项研究中,我们研究了AFM纳米压痕对人肝癌细胞经富勒烯醇处理24、48和72小时的力学特性。AFM纳米压痕常规应用于研究活癌细胞的形态和生物力学特性,并在所得的力-位移曲线中检测到粘附现象(负力)。传统上,赫兹接触模型被广泛用于测定细胞弹性,但这种接触模型不能考虑粘附性。另一种方法是采用JKR接触模型拟合得到的力-位移曲线,如粘附情况所期望的那样。在这项研究中,我们得到了生物细胞(人肝细胞癌)在富勒烯醇处理下的粘附工作和弹性模量。结果表明,所选择的JKR模型比Hertz接触模型具有更好的拟合效果。结果表明,随着处理时间的延长,杨氏模量和黏附功均有显著变化。计算出的弹性模量和黏附功的力学性能可以作为一种有效的生物指标来评估富勒烯醇或其他抗癌药物对癌细胞的影响,从而为治疗中的癌症进展提供见解。
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Investigation of work of adhesion of biological cell (human hepatocellular carcinoma) by AFM nanoindentation.

In this study, we presented an investigation of mechanical properties by AFM nanoindentation on human hepatocellular carcinoma cells treated with fullerenol for 24, 48 and 72 h. AFM nanoindentation was routinely applied to investigate the morphology and biomechanical properties of living carcinoma cells, and adhesion phenomena (negative force) were detected in the obtained force-displacement curves. Conventionally, Hertz contact model has been widely used for determination of cell elasticity, however this contact model cannot account for adhesion. Alternatively, JKR contact model, as expected for adhesion circumstance, has been applied to fit the obtained force-displacement curves. In this investigation, we have derived both the work of adhesion and the elastic modulus of biological cells (human hepatocellular carcinoma) under fullerenol treatment. The results show that the chosen JKR model can provide better fitting results than Hertz contact model. The results show that both Young's modulus and work of adhesion exhibit significant variation as the treatment time increases. The calculated mechanical properties of elastic modulus and work of adhesion can be used as an effective bio-index to evaluate the effects of fullerenol or other anticancer agents on cancer cells and thus to provide insight into cancer progression in the treatment.

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来源期刊
CiteScore
3.80
自引率
0.00%
发文量
4
期刊介绍: The Journal of Micro-Bio Robotics (JMBR) focuses on small-scale robotic systems, which could be also biologically inspired, integrated with biological entities, or used for biological or biomedical applications. The journal aims to report the significant progresses in such new research topics. JMBR is devoted to the theory, experiments, and applications of micro/nano- and biotechnologies and small-scale robotics. It promotes both theoretical and practical engineering research based on the analysis and synthesis from the micro/nano level to the biological level of robotics. JMBR includes survey and research articles.  Authors are invited to submit their original research articles or review articles for publication consideration. All submissions will be peer reviewed subject to the standards of the journal. Manuscripts based on previously published conference papers must be extended substantially.
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