We reduce a one-dimensional model of an active segment (AS), which is used, for instance, in the description of contraction-driven cell motility, to a zero-dimensional model of an active particle (AP) characterized by two internal degrees of freedom: position and polarity. Both models give rise to hysteretic force-velocity relations showing that an active agent can support two opposite polarities under the same external force and that it can maintain the same polarity while being dragged by external forces with opposite orientations. This double bistability results in a rich dynamic repertoire which we illustrate by studying static, stalled, motile, and periodically repolarizing regimes displayed by an active agent confined in a viscoelasti...
We present a model for actin-based motility that combines the dynamics of the semiflexible region at...
The mechanical properties of soft biological materials are essential to their physiological function...
PACS. 87.10.+e – Biological and medical physics: General theory and mathematical aspects. PACS. 83.8...
International audienceWe reduce a one-dimensional model of an active segment (AS), which is used, fo...
peer reviewedThe internal dynamics of active gels both in artificial (in vitro) model systems and in...
International audienceWe develop a model of amoeboid cell motility based on active gel theory. Model...
International audienceActive gels made of cytoskeletal proteins are valuable materials with attracti...
International audienceThe dynamics of active matter driven by interacting molecular motors has a non...
This review presents some of our recent results on active polar gels. Active polar gels are viscoela...
We derive the constitutive equations of an active polar gel from a model for the dynamics of elastic...
We present a continuum model of the coupling between cells and substrate that accounts for some of t...
Motivated by the unique physical properties of biological active matter, e.g., cytoskeletal dynamics...
Active matter systems such as eukaryotic cells and bacteria continuously transform chemical energy t...
Abstract. We develop a general theory for active viscoelastic materials made of polar filaments. Thi...
We present a generic formulation of the continuum elasticity of an isotropic crosslinked active gel....
We present a model for actin-based motility that combines the dynamics of the semiflexible region at...
The mechanical properties of soft biological materials are essential to their physiological function...
PACS. 87.10.+e – Biological and medical physics: General theory and mathematical aspects. PACS. 83.8...
International audienceWe reduce a one-dimensional model of an active segment (AS), which is used, fo...
peer reviewedThe internal dynamics of active gels both in artificial (in vitro) model systems and in...
International audienceWe develop a model of amoeboid cell motility based on active gel theory. Model...
International audienceActive gels made of cytoskeletal proteins are valuable materials with attracti...
International audienceThe dynamics of active matter driven by interacting molecular motors has a non...
This review presents some of our recent results on active polar gels. Active polar gels are viscoela...
We derive the constitutive equations of an active polar gel from a model for the dynamics of elastic...
We present a continuum model of the coupling between cells and substrate that accounts for some of t...
Motivated by the unique physical properties of biological active matter, e.g., cytoskeletal dynamics...
Active matter systems such as eukaryotic cells and bacteria continuously transform chemical energy t...
Abstract. We develop a general theory for active viscoelastic materials made of polar filaments. Thi...
We present a generic formulation of the continuum elasticity of an isotropic crosslinked active gel....
We present a model for actin-based motility that combines the dynamics of the semiflexible region at...
The mechanical properties of soft biological materials are essential to their physiological function...
PACS. 87.10.+e – Biological and medical physics: General theory and mathematical aspects. PACS. 83.8...