Single cell mechanics analyzed by atomic force microscopy and finite element simulation

被引:1
|
作者
Peng, Xiaobo [1 ]
Zhao, Leqian [1 ]
Huang, Qiping [1 ]
Kong, Lingwen [2 ]
Wang, Guixue [1 ,3 ]
Ye, Zhiyi [1 ,3 ]
机构
[1] Chongqing Univ, Coll Bioengn, Key Lab Biorheol Sci & Technol,Minist Educ, State & Local Joint Engn Lab Vasc Implants,Coll Bi, Chongqing 400014, Peoples R China
[2] Chongqing Univ, Chongqing Emergency Med Ctr, Cent Hosp, Dept Cardiothorac Surg, Chongqing 400014, Peoples R China
[3] JinFeng Lab, Chongqing 401329, Peoples R China
关键词
atomic force microscopy; finite element simulation; cellular mechanics; viscoelasticity; Young's modulus; VISCOELASTIC PROPERTIES; LIVING CELLS; ELASTIC PROPERTIES; AFM INDENTATION; CANCER-CELLS; STEM-CELLS; SENSITIVITY; ADHESION; RHEOLOGY; BEHAVIOR;
D O I
10.1088/1402-4896/ad3014
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Cell mechanics plays a key role in determining physical performances and physiological functions of cells, as well as the early detection of diseases and development of biomedical engineering. In this study, we utilized a combination of atomic force microscopy (AFM) and finite element method (FEM) to compare the cellular elasticity (Young's modulus) and viscoelasticity (stress-relaxation time) of living and fixed endothelial cells (ECs) across varying loading rates. The results showed that both mechanical properties of normal ECs are more sensitive to loading speed compared with fixed ECs. The Young's modulus of normal endothelial cells (ECs) exhibits an increasing trend with the growing loading rate, whereas the Young's modulus of fixed ECs is almost not affected by the loading rate. Among various viscoelastic properties of cells under varying loading rates, the long-term relaxation time, especially at a loading rate of 5 mu m s-1, showed the most significant difference between living and fixed cells. This work comprehensively evaluated the effectiveness of using different mechanical properties to distinguish cells with different physiological characteristic. This research would improve our knowledge of single-cell mechanical behaviors and provide new ideas for distinguishing various types of cells by AFM-based cellular elastic and viscoelastic properties with varying loading rates.
引用
收藏
页数:14
相关论文
共 50 条
  • [21] Finite element simulation based-on atomic force microscopy and nanoindentation for spruce wood microstructure analysis
    Torres-Torres, David
    Torres, Jesus A.
    Garcia-Garcia, Alejandra
    [J]. MICROSCOPY RESEARCH AND TECHNIQUE, 2019, 82 (05) : 507 - 516
  • [22] Finite Element Modelling of Single Cell Based on Atomic Force Microscope Indentation Method
    Wang, Lili
    Wang, Li
    Xu, Limeng
    Chen, Weiyi
    [J]. COMPUTATIONAL AND MATHEMATICAL METHODS IN MEDICINE, 2019, 2019
  • [23] Finite element modelling of atomic force microscopy imaging on deformable surfaces
    Giblin-Burnham, Joshua
    Javanmardi, Yousef
    Moeendarbary, Emad
    Hoogenboom, Bart W.
    [J]. Soft Matter, 2024, 20 (47) : 9483 - 9492
  • [24] Probing single polymer chain mechanics using atomic force microscopy
    Meadows, PY
    Bemis, JE
    Al-Maawali, S
    Walker, GC
    [J]. APPLICATIONS OF SCANNED PROBE MICROSCOPY TO POLYMERS, 2005, 897 : 148 - 161
  • [26] The micro-mechanics of single molecules studied with atomic force microscopy
    Fisher, TE
    Marszalek, PE
    Oberhauser, AF
    Carrion-Vazquez, M
    Fernandez, JM
    [J]. JOURNAL OF PHYSIOLOGY-LONDON, 1999, 520 (01): : 5 - 14
  • [27] Atomic Force Microscopy for the Examination of Single Cell Rheology
    Okajima, Takaharu
    [J]. CURRENT PHARMACEUTICAL BIOTECHNOLOGY, 2012, 13 (14) : 2623 - 2631
  • [28] Destabilization induced by electropermeabilization analyzed by atomic force microscopy
    Chopinet, Louise
    Roduit, Charles
    Rols, Marie-Pierre
    Dague, Etienne
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 2013, 1828 (09): : 2223 - 2229
  • [29] Atomic Force Microscopy in Characterizing Cell Mechanics for Biomedical Applications: A Review
    Li, Mi
    Dang, Dan
    Liu, Lianqing
    Xi, Ning
    Wang, Yuechao
    [J]. IEEE TRANSACTIONS ON NANOBIOSCIENCE, 2017, 16 (06) : 523 - 540
  • [30] Mass transfer limitations at crystallizing interfaces in an atomic force microscopy fluid cell: A finite element analysis
    Gasperino, David
    Yeckel, Andrew
    Olmsted, Brian K.
    Ward, Michael D.
    Derby, Jeffrey J.
    [J]. LANGMUIR, 2006, 22 (15) : 6578 - 6586