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Multi-phase-field Models of Biological Tissues

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arxiv 2503.05053 v2 pith:K7PALK46 submitted 2025-03-07 cond-mat.soft cond-mat.stat-mechphysics.bio-ph

classification cond-mat.softcond-mat.stat-mechphysics.bio-ph
keywords biologicalcellmulti-phase-fieldphysicsmodelssystemsactivecells
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The development of complex multicellular organisms from a single parent cell is a highly orchestrated process that cells conduct collectively without central guidance, creating intricate dynamic patterns essential for development and regeneration. Despite significant advances in imaging spatiotemporal dynamics of cell collectives and mechanical characterization techniques, the role of physical forces in biological functions remains poorly understood. Physics-based models are crucial in complementing experiments, providing high-resolution spatiotemporal fields in three dimensions. This review focuses on dense, soft multicellular systems, such as tissues, where mechanical deformation of one cell necessitates the re-organization of neighboring cells. The multi-phase-field model offers a rich physics-based framework to advance our understanding of biological systems and provides a robust playground for non-equilibrium physics of active matter. We discuss the foundational aspects of the multi-phase-field model and their applications in understanding physics of active matter. We also explore the integration of biological physics with experimental data, covering cell migration, heterogeneous cell populations, and confined systems. Finally, we highlight current trends, the importance of multi-phase-field models in biological and physics research, and future challenges.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Density-Velocity Relation Is Scale-Dependent in Epithelial Monolayers

    cond-mat.soft 2025-08 conditional novelty 6.0 of 10

    In epithelial monolayers, cell velocity is positively correlated with local density at small coarse-graining scales and negatively at large scales; the crossover aligns with pressure segregation.

  2. Towards a two-scale model for morphogenesis -- How cellular processes influence tissue deformations

    cond-mat.soft 2025-06 conditional novelty 6.0 of 10

    A two-scale model coupling cell-scale multiphase-field dynamics to tissue-scale Helfrich bending reproduces known vesicle shapes and shows that neighbor-dependent bending rigidity can break symmetry and rotate the tissue.

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