Entropy-driven cell decision-making predicts ‘fluid-to-solid’ transition in multicellular systems
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Authors
Barua, ArnabSyga, Simon
Mascheroni, Pietro
Kavallaris, Nikos
Meyer-Hermann, Michael
Deutsch, Andreas
Hatzikirou, Haralampos
Issue Date
2020-12-01
Metadata
Show full item recordAbstract
Cellular decision making allows cells to assume functionally different phenotypes in response to microenvironmental cues, with or without genetic change. It is an open question, how individual cell decisions influence the dynamics at the tissue level. Here, we study spatio-temporal pattern formation in a population of cells exhibiting phenotypic plasticity, which is a paradigm of cell decision making. We focus on the migration/resting and the migration/proliferation plasticity which underly the epithelial-mesenchymal transition and the go or grow dichotomy. We assume that cells change their phenotype in order to minimize their microenvironmental entropy following the LEUP (Least microEnvironmental Uncertainty Principle) hypothesis. In turn, we study the impact of the LEUP-driven migration/resting and migration/proliferation plasticity on the corresponding multicellular spatio-temporal dynamics with a stochastic cell-based mathematical model for the spatio-temporal dynamics of the cell phenotypes. In the case of the go or rest plasticity, a corresponding mean-field approximation allows to identify a bistable switching mechanism between a diffusive (fluid) and an epithelial (solid) tissue phase which depends on the sensitivity of the phenotypes to the environment. For the go or grow plasticity, we show the possibility of Turing pattern formation for the ‘solid’ tissue phase and its relation with the parameters of the LEUP-driven cell decisions.Citation
(2020) New Journal of Physics,22(12)art.no: 123034.Affiliation
BRICS, Braunschweiger Zentrum für Systembiologie, Rebenring 56,38106 Braunschweig, Germany.Publisher
Institute of PhysicsJournal
New Journal of PhysicsType
ArticleISSN
13672630Sponsors
Volkswagen Foundationae974a485f413a2113503eed53cd6c53
10.1088/1367-2630/abcb2e
Scopus Count
The following license files are associated with this item:
- Creative Commons


