AbstractA growth cone is a motile structure at the tips of axons that is driven by the actin network and guides axon extension. Low actin adhesion to the substrate creates a stationary actin treadmill that allows leading-edge protrusion when adhesion increases in response to guidance cues. We use experimental measurements in the Aplysia bag growth cone to develop and constrain a simple mechanical model of the actin treadmill. We show that actin retrograde flow is primarily generated by myosin contractile forces, but when myosin is inhibited, leading-edge membrane tension increases and drives the flow. By comparing predictions of the model with previous experimental measurements, we demonstrate that lamellipodial and filopodial filament brea...
AbstractNeuronal growth is an extremely complex yet reliable process that is directed by a dynamic l...
During cell motion on a substratum, eukaryotic cells project sheetlike lamellipodia which contain a ...
AbstractAlthough pulling forces have been observed in axonal growth for several decades, their under...
AbstractA growth cone is a motile structure at the tips of axons that is driven by the actin network...
AbstractActin filaments assembled at the leading edge of neuronal growth cones are centripetally tra...
The balance of actin filament polymerization and depolymerization maintains a steady state network t...
SummaryBackgroundActin-based cell motility is fundamental for development, function, and malignant e...
In the developing nervous system, axons are guided to their synaptic targets by motile structures at...
Sensory-motile cells fulfill various biological functions ranging from immune activity or wound heal...
To establish functional networks, neurons must migrate to their appropriate destinations and then ex...
AbstractIn a previous study, F-actin appeared to play a key role in guiding microtubules during grow...
Background Actin-based cell motility is fundamental for development, function, and malignant events ...
AbstractWe investigated the motion of filopodia and actin bundles in lamellipodia of motile cells, u...
Understanding the dynamical and molecular properties of force generation in neuronal growth cones i...
AbstractWe addressed the mechanical basis for how embryonic chick dorsal root ganglion growth cones ...
AbstractNeuronal growth is an extremely complex yet reliable process that is directed by a dynamic l...
During cell motion on a substratum, eukaryotic cells project sheetlike lamellipodia which contain a ...
AbstractAlthough pulling forces have been observed in axonal growth for several decades, their under...
AbstractA growth cone is a motile structure at the tips of axons that is driven by the actin network...
AbstractActin filaments assembled at the leading edge of neuronal growth cones are centripetally tra...
The balance of actin filament polymerization and depolymerization maintains a steady state network t...
SummaryBackgroundActin-based cell motility is fundamental for development, function, and malignant e...
In the developing nervous system, axons are guided to their synaptic targets by motile structures at...
Sensory-motile cells fulfill various biological functions ranging from immune activity or wound heal...
To establish functional networks, neurons must migrate to their appropriate destinations and then ex...
AbstractIn a previous study, F-actin appeared to play a key role in guiding microtubules during grow...
Background Actin-based cell motility is fundamental for development, function, and malignant events ...
AbstractWe investigated the motion of filopodia and actin bundles in lamellipodia of motile cells, u...
Understanding the dynamical and molecular properties of force generation in neuronal growth cones i...
AbstractWe addressed the mechanical basis for how embryonic chick dorsal root ganglion growth cones ...
AbstractNeuronal growth is an extremely complex yet reliable process that is directed by a dynamic l...
During cell motion on a substratum, eukaryotic cells project sheetlike lamellipodia which contain a ...
AbstractAlthough pulling forces have been observed in axonal growth for several decades, their under...