Unified biophysical mechanism for cell-shape oscillations and cell ingression.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 30011599.
- Also identified by DOI 10.1103/PhysRevE.97.062414 and PMC identifier 6440536.
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Abstract
We describe a mechanochemical and percolation cascade that augments myosin's regulatory network to tune cytoskeletal forces. Actomyosin forces collectively generate cytoskeletal forces during cell oscillations and ingression, which we quantify by elastic percolation of the internally driven, cross-linked actin network. Contractile units can produce relatively large, oscillatory forces that disrupt crosslinks to reduce cytoskeletal forces. A (reverse) Hopf bifurcation switches contractile units to produce smaller, steady forces that enhance crosslinking and consequently boost cytoskeletal forces to promote ingression. We describe cell-shape changes and cell ingression in terms of intercellular force imbalances along common cell junctions.
Medical subject headings
- Biobehavioral Sciences
- Cell Shape
- Cytoskeleton