A computational mechanics approach to assess the link between cell morphology and forces during confined migration

被引:21
|
作者
Aubry, D. [1 ]
Thiam, H. [2 ]
Piel, M. [2 ]
Allena, R. [3 ]
机构
[1] Ecole Cent Paris, CNRS, Lab MSSMat, UMR 8579, F-92295 Chatenay Malabry, France
[2] Inst Curie, UMR 144, Biol Syst Div & polarite cellulaire, F-75005 Paris, France
[3] Arts & Metiers ParisTech, LBM, F-75013 Paris, France
关键词
Confined cell migration; Continuum mechanics; Computational mechanics; Forces; STOCHASTIC-MODEL; RANDOM MOTILITY; NUCLEUS; TUMOR; ORGANIZATION; NEUTROPHILS; CHEMOTAXIS; ADHESION; BEHAVIOR; MOTION;
D O I
10.1007/s10237-014-0595-3
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Confined migration plays a fundamental role during several biological phenomena such as embryogenesis, immunity and tumorogenesis. Here, we propose a two-dimensional mechanical model to simulate the migration of a HeLa cell through a micro-channel. As in our previous works, the cell is modelled as a continuum and a standard Maxwell model is used to describe the mechanical behaviour of both the cytoplasm (including active strains) and the nucleus. The cell cyclically protrudes and contracts and develops viscous forces to adhere to the substrate. The micro-channel is represented by two rigid walls, and it exerts an additional viscous force on the cell boundaries. We test four channels whose dimensions in terms of width are i) larger than the cell diameter, ii) sub-cellular, ii) sub-nuclear and iv) much smaller than the nucleus diameter. The main objective of the work is to assess the necessary conditions for the cell to enter into the channel and migrate through it. Therefore, we evaluate both the evolution of the cell morphology and the cell-channel and cell-substrate surface forces, and we show that there exists a link between the two, which is the essential parameter determining whether the cell is permeative, invasive or penetrating.
引用
收藏
页码:143 / 157
页数:15
相关论文
共 50 条
  • [31] Link between packing morphology and the distribution of contact forces and stresses in packings of highly nonconvex particles
    Conzelmann, N. A.
    Penn, A.
    Partl, M. N.
    Clemens, F. J.
    Poulikakos, L. D.
    Mueller, C. R.
    PHYSICAL REVIEW E, 2020, 102 (06)
  • [32] Mechanics of Constriction during Cell Division: A Variational Approach
    Almendro-Vedia, Victor G.
    Monroy, Francisco
    Cao, Francisco J.
    PLOS ONE, 2013, 8 (08):
  • [33] Mapping cytoskeletal stress concentrations and nuclear stresses during confined cell migration
    Mukherjee, Abhishek
    Sen, Shamik
    INDIAN JOURNAL OF PHYSICS, 2022, 96 (09) : 2639 - 2647
  • [34] Nesprin-2 accumulates at the front of the nucleus during confined cell migration
    Davidson, Patricia M.
    Battistella, Aude
    Dejardin, Theophile
    Betz, Timo
    Plastino, Julie
    Borghi, Nicolas
    Cadot, Bruno
    Sykes, Cecile
    EMBO REPORTS, 2020, 21 (07)
  • [35] Chromatin compaction during confined cell migration induces and reshapes nuclear condensates
    Zhao, Jessica Z.
    Xia, Jing
    Brangwynne, Clifford P.
    NATURE COMMUNICATIONS, 2024, 15 (01)
  • [36] Mapping cytoskeletal stress concentrations and nuclear stresses during confined cell migration
    Abhishek Mukherjee
    Shamik Sen
    Indian Journal of Physics, 2022, 96 : 2639 - 2647
  • [37] Evolution of Stresses at Cell-Gel Interfaces during Confined Interfacial Migration
    Mukherjee, Abhishek
    Singh, Ramesh
    Yan, Wenyi
    Sen, Shamik
    BIOPHYSICAL JOURNAL, 2019, 116 (03) : 121A - 121A
  • [38] Skin Cornification Proteins Provide Global Link between ROS Detoxification and Cell Migration during Wound Healing
    Vermeij, Wilbert P.
    Backendorf, Claude
    PLOS ONE, 2010, 5 (08):
  • [39] The Interplay Between Cell-Cell and Cell-Matrix Forces Regulates Cell Migration Dynamics
    Bajpai, Apratim
    Tong, Jie
    Qian, Weiyi
    Peng, Yansong
    Chen, Weiqiang
    BIOPHYSICAL JOURNAL, 2019, 117 (10) : 1795 - 1804
  • [40] A Computational Test-Bed to Assess Coronary Stent Implantation Mechanics Using a Population-Specific Approach
    C. Conway
    F. Sharif
    J. P. McGarry
    P. E. McHugh
    Cardiovascular Engineering and Technology, 2012, 3 (4) : 374 - 387