The cytoskeleton is a network of interconnected protein filaments, which provide a three-dimensional scaffold for cells. Remodeling of the cytoskeleton is important for key cellular processes, such as cell motility, division, or morphogenesis. This remodeling is traditionally considered to be driven exclusively by processes consuming chemical energy, such as the dynamics of the filaments or the action of molecular motors. Here, we review two mechanisms of cytoskeletal network remodeling that are independent of the consumption of chemical energy. In both cases directed motion of overlapping filaments is driven by entropic forces, which arise from harnessing thermal energy present in solution. Entropic forces are induced either by macromolecu...
The cytoskeleton consists of polymeric protein filaments with periodic lattices displaying identical...
AbstractCells actively produce contractile forces for a variety of processes including cytokinesis a...
AbstractAll eukaryotic cells rely on the active self-organization of protein filaments to form a res...
Cytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mechanical f...
SummaryCytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mecha...
Cytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mechanical f...
Cytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mechanical f...
Cytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mechanical f...
Cytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mechanical f...
SummaryCytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mecha...
Eukaryotic and prokaryotic cells use cytoskeletal proteins to regulate and modify cell shape. During...
Mechanical forces play a crucial role in cell functions. Cells can generate force, change their shap...
Mechanical forces play a crucial role in cell functions. Cells can generate force, change their shap...
A central part of soft matter physics is the investigation of effects in an active environment. Thes...
Many cellular processes are driven by cytoskeletal assemblies. It remains unclear how cytoskeletal f...
The cytoskeleton consists of polymeric protein filaments with periodic lattices displaying identical...
AbstractCells actively produce contractile forces for a variety of processes including cytokinesis a...
AbstractAll eukaryotic cells rely on the active self-organization of protein filaments to form a res...
Cytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mechanical f...
SummaryCytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mecha...
Cytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mechanical f...
Cytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mechanical f...
Cytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mechanical f...
Cytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mechanical f...
SummaryCytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mecha...
Eukaryotic and prokaryotic cells use cytoskeletal proteins to regulate and modify cell shape. During...
Mechanical forces play a crucial role in cell functions. Cells can generate force, change their shap...
Mechanical forces play a crucial role in cell functions. Cells can generate force, change their shap...
A central part of soft matter physics is the investigation of effects in an active environment. Thes...
Many cellular processes are driven by cytoskeletal assemblies. It remains unclear how cytoskeletal f...
The cytoskeleton consists of polymeric protein filaments with periodic lattices displaying identical...
AbstractCells actively produce contractile forces for a variety of processes including cytokinesis a...
AbstractAll eukaryotic cells rely on the active self-organization of protein filaments to form a res...