"active" drops as phantom models for living cells: A mesoscopic particle-based approach

被引:2
|
作者
Dallavalle M. [1 ]
Lugli F. [1 ]
Rapino S. [1 ]
Zerbetto F. [1 ]
机构
[1] Dipartimento di Chimica G. Ciamician, Università di Bologna, V. F. Selmi 2, Bologna
来源
Soft Matter | 2016年 / 12卷 / 15期
关键词
D O I
10.1039/c5sm02686e
中图分类号
学科分类号
摘要
Drops and biological cells share some morphological features and visco-elastic properties. The modelling of drops by mesoscopic non-atomistic models has been carried out to a high degree of success in recent years. We extend such treatment and discuss a simple, drop-like model to describe the interactions of the outer layer of cells with the surfaces of materials. Cells are treated as active mechanical objects that are able to generate adhesion forces. They appear with their true size and are made of "parcels of fluids" or beads. The beads are described by (very) few quantities/parameters related to fundamental chemical forces such as hydrophilicity and lipophilicity that represent an average of the properties of a patch of material or an area of the cell(s) surface. The investigation of adhesion dynamics, motion of individual cells, and the collective behavior of clusters of cells on materials is possible. In the simulations, the drops become active soft matter objects and different from regular droplets they do not fuse when in contact, their trajectories are not Brownian, and they can be forced "to secrete" molecules, to name some of the properties targeted by the modeling. The behavior that emerges from the simulations allows ascribing some cell properties to their mechanics, which are related to their biological features. © The Royal Society of Chemistry 2016.
引用
收藏
页码:3538 / 3544
页数:6
相关论文
共 50 条
  • [21] Simulation of sedimentation of polydisperse suspensions: A particle-based approach
    Bargiel, M
    Ford, RA
    Tory, EM
    AICHE JOURNAL, 2005, 51 (09) : 2457 - 2468
  • [22] Mitigating density fluctuations in particle-based active nematic simulations
    Kozhukhov, Timofey
    Loewe, Benjamin
    Shendruk, Tyler N.
    COMMUNICATIONS PHYSICS, 2024, 7 (01):
  • [23] Particle-based and continuum models for confined nematics in two dimensions
    Hijar, Humberto
    Majumdar, Apala
    SOFT MATTER, 2024, 20 (18) : 3755 - 3770
  • [24] Particle-based model to simulate the micromechanics of biological cells
    Van Liedekerke, P.
    Tijskens, E.
    Ramon, H.
    Ghysels, P.
    Samaey, G.
    Roose, D.
    PHYSICAL REVIEW E, 2010, 81 (06):
  • [25] Particle-based simulations of electrophoretic deposition with adaptive physics models
    Karnes, John J.
    Pascall, Andrew J.
    Rehbock, Christoph
    Ramesh, Vaijayanthi
    Worsley, Marcus A.
    Barcikowski, Stephan
    Lee, Elaine
    Giera, Brian
    COMPUTER PHYSICS COMMUNICATIONS, 2024, 297
  • [26] Improving the diagnosis of active tuberculosis: a novel approach using magnetic particle-based chemiluminescence LAM assay
    Li, Yan
    Ru, Zhiwei
    Wei, Hongxia
    Wu, Ming
    Xie, Guihua
    Lou, Jianrong
    Yang, Xiang
    Zhang, Xilin
    BMC PULMONARY MEDICINE, 2024, 24 (01)
  • [27] Improving the diagnosis of active tuberculosis: a novel approach using magnetic particle-based chemiluminescence LAM assay
    Yan Li
    Zhiwei Ru
    Hongxia Wei
    Ming Wu
    Guihua Xie
    Jianrong Lou
    Xiang Yang
    Xilin Zhang
    BMC Pulmonary Medicine, 24
  • [28] Particle-based approach to the Eulerian distortion field and its dynamics
    Markus Hütter
    Michal Pavelka
    Continuum Mechanics and Thermodynamics, 2023, 35 : 1943 - 1967
  • [29] An approach to modeling particle-based and contact-based wear in CMP
    Terrell, Elon Jabdal
    Kuo, Michael
    Higgs, C. Fred
    ADVANCES AND CHALLENGES IN CHEMICAL MECHANICAL PLANARIZATION, 2007, 991 : 183 - 203
  • [30] Particle-based approach to the Eulerian distortion field and its dynamics
    Hutter, Markus
    Pavelka, Michal
    CONTINUUM MECHANICS AND THERMODYNAMICS, 2023, 35 (05) : 1943 - 1967