The cytoskeleton of the organism Physarum polycephalum is a prominent example of a complex active viscoelastic material wherein stresses induce flows along the organism as a result of the action of molecular motors and their regulation by calcium ions. Experiments in Physarum polycephalum have revealed a rich variety of mechanochemical patterns including standing, traveling and rotating waves that arise from instabilities of spatially homogeneous states without gradients in stresses and resulting flows. Herein, we investigate simple models where an active stress induced by molecular motors is coupled to a model describing the passive viscoelastic properties of the cellular material. Specifically, two models for viscoelastic fluids (Maxwell ...
Mechanical and mechanochemical models of pattern formation in biological tissues have been used to s...
Long-timescale viscoelasticity caused by collective cell migration (CCM) significantly influences ce...
Active matter systems such as eukaryotic cells and bacteria continuously transform chemical energy t...
The cytoskeleton of the organism Physarum polycephalum is a prominent example of a complex active vi...
Many processes in living cells are controlled by biochemical substances regulating active stresses. ...
Motivated by recent experimental studies, we derive and analyze a two-dimensional model for the cont...
Self-organization in cells often manifests itself in oscillations and waves. Here, we address deform...
<div><p>Motivated by recent experimental studies, we derive and analyze a two-dimensional model for ...
Self-organization in cells often manifests itself in oscillations and waves. Here, we address deform...
A mechano-chemical model for the spatiotemporal dynamics of free calcium and the thickness in protop...
Inspired by active shape morphing in developing tissues and biomaterials, we investigate two generic...
Mechanical and mechanochemical models of pattern formation in biological tissues have been used to s...
The diversity of biological form is generated by a relatively small number of underlying mechanisms....
The dynamics and morphological transitions of elastic filaments and semiflexible polymers in viscous...
The diversity of biological form is generated by a relatively small number of underlying mechanisms....
Mechanical and mechanochemical models of pattern formation in biological tissues have been used to s...
Long-timescale viscoelasticity caused by collective cell migration (CCM) significantly influences ce...
Active matter systems such as eukaryotic cells and bacteria continuously transform chemical energy t...
The cytoskeleton of the organism Physarum polycephalum is a prominent example of a complex active vi...
Many processes in living cells are controlled by biochemical substances regulating active stresses. ...
Motivated by recent experimental studies, we derive and analyze a two-dimensional model for the cont...
Self-organization in cells often manifests itself in oscillations and waves. Here, we address deform...
<div><p>Motivated by recent experimental studies, we derive and analyze a two-dimensional model for ...
Self-organization in cells often manifests itself in oscillations and waves. Here, we address deform...
A mechano-chemical model for the spatiotemporal dynamics of free calcium and the thickness in protop...
Inspired by active shape morphing in developing tissues and biomaterials, we investigate two generic...
Mechanical and mechanochemical models of pattern formation in biological tissues have been used to s...
The diversity of biological form is generated by a relatively small number of underlying mechanisms....
The dynamics and morphological transitions of elastic filaments and semiflexible polymers in viscous...
The diversity of biological form is generated by a relatively small number of underlying mechanisms....
Mechanical and mechanochemical models of pattern formation in biological tissues have been used to s...
Long-timescale viscoelasticity caused by collective cell migration (CCM) significantly influences ce...
Active matter systems such as eukaryotic cells and bacteria continuously transform chemical energy t...