Modelling cell shape in 3D structured environments: A quantitative comparison with experiments

被引:2
|
作者
Link, Rabea [1 ,2 ]
Jaggy, Mona [3 ]
Bastmeyer, Martin [3 ,4 ]
Schwarz, Ulrich S. [1 ,2 ]
机构
[1] Heidelberg Univ, Inst Theoret Phys, Heidelberg, Germany
[2] Heidelberg Univ, BioQuant, Heidelberg, Germany
[3] Karlsruhe Inst Technol KIT, Zool Inst, Karlsruhe, Germany
[4] Karlsruhe Inst Technol KIT, Inst Biol & Chem Syst Biol Informat Proc IBCS BIP, Karlsruhe, Germany
关键词
ACTIN CORTEX; STRESS FIBERS; ARCHITECTURE; SIMULATION; MECHANICS; DYNAMICS; GEOMETRY; BIOLOGY;
D O I
10.1371/journal.pcbi.1011412
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Cell shape plays a fundamental role in many biological processes, including adhesion, migration, division and development, but it is not clear which shape model best predicts three-dimensional cell shape in structured environments. Here, we compare different modelling approaches with experimental data. The shapes of single mesenchymal cells cultured in custom-made 3D scaffolds were compared by a Fourier method with surfaces that minimize area under the given adhesion and volume constraints. For the minimized surface model, we found marked differences to the experimentally observed cell shapes, which necessitated the use of more advanced shape models. We used different variants of the cellular Potts model, which effectively includes both surface and bulk contributions. The simulations revealed that the Hamiltonian with linear area energy outperformed the elastic area constraint in accurately modelling the 3D shapes of cells in structured environments. Explicit modelling the nucleus did not improve the accuracy of the simulated cell shapes. Overall, our work identifies effective methods for accurately modelling cellular shapes in complex environments. Cell shape and forces have emerged as important determinants of cell function and thus their prediction is essential to describe and control the behaviour of cells in complex environments. While there exist well-established models for the two-dimensional shape of cells on flat substrates, it is less clear how cell shape should be modeled in three dimensions. Different from the philosophy of the vertex model often used for epithelial sheets, we find that models based only on cortical tension as a constant geometrical surface tension are not sufficient to describe the shape of single cells in 3D. Therefore, we employ different variants of the cellular Potts model, where either a target area is prescribed by an elastic constraint or the area energy is described with a linear surface tension. By comparing the simulated shapes to experimental images of cells in 3D scaffolds, we can identify parameters that accurately model 3D cell shape.
引用
收藏
页数:21
相关论文
共 50 条
  • [1] 3D microniches reveal the importance of cell size and shape
    Bao, Min
    Xie, Jing
    Piruska, Aigars
    Huck, Wilhelm T. S.
    NATURE COMMUNICATIONS, 2017, 8
  • [2] 3D numerical modelling of solid particles with randomness in shape considering convexity and concavity
    Yan, Peng
    Zhang, Jinhua
    Fang, Qin
    Zhang, Yadong
    Fan, Junyu
    POWDER TECHNOLOGY, 2016, 301 : 131 - 140
  • [3] Numerical modelling of 3D woven preform deformations
    Green, S. D.
    Long, A. C.
    El Said, B. S. F.
    Hallett, S. R.
    COMPOSITE STRUCTURES, 2014, 108 : 747 - 756
  • [4] 3D quantitative shape analysis on form, roundness, and compactness with μCT
    Zhao, Budi
    Wang, Jianfeng
    POWDER TECHNOLOGY, 2016, 291 : 262 - 275
  • [5] Imaging of cell adhesion events in 3D matrix environments
    Jayo, Asier
    Parsons, Maddy
    EUROPEAN JOURNAL OF CELL BIOLOGY, 2012, 91 (11-12) : 824 - 833
  • [6] Study on cell shape in 3D NAND flash memory
    Feng, Wei
    Deng, Ning
    PROCEEDINGS OF THE 2015 IEEE INTERNATIONAL CONFERENCE ON ELECTRON DEVICES AND SOLID-STATE CIRCUITS (EDSSC), 2015, : 387 - 390
  • [7] On Generative Modeling of Cell Shape Using 3D GANs
    Wiesner, David
    Necasova, Tereza
    Svoboda, David
    IMAGE ANALYSIS AND PROCESSING - ICIAP 2019, PT II, 2019, 11752 : 672 - 682
  • [8] Environmentally dependent and independent control of 3D cell shape
    Dent, Lucas G.
    Curry, Nathan
    Sparks, Hugh
    Bousgouni, Vicky
    Maioli, Vincent
    Kumar, Sunil
    Munro, Ian
    Butera, Francesca
    Jones, Ian
    Arias-Garcia, Mar
    Rowe-Brown, Leo
    Dunsby, Chris
    Bakal, Chris
    CELL REPORTS, 2024, 43 (05):
  • [9] 3D FE modelling of plate shape during heavy plate rolling
    Ruan, J. H.
    Zhang, L. W.
    Gu, S. D.
    He, W. B.
    Chen, S. H.
    IRONMAKING & STEELMAKING, 2014, 41 (03) : 199 - 205
  • [10] Finite element approach to modelling evolution of 3D shape memory materials
    Mahapatra, D. Roy
    Melnik, R. V. N.
    MATHEMATICS AND COMPUTERS IN SIMULATION, 2007, 76 (1-3) : 141 - 148