AbstractVertebrate neural tube formation involves two distinct morphogenetic events — convergent extension (CE) driven by mediolateral cell intercalation, and bending of the neural plate driven largely by cellular apical constriction. However, the cellular and molecular biomechanics of these processes are not understood. Here, using tissue-targeting techniques, we show that the myosin IIB motor protein complex is essential for both these processes, as well as for conferring resistance to deformation to the neural plate tissue. We show that myosin IIB is required for actin-cytoskeletal organization in both superficial and deep layers of the Xenopus neural plate. In the superficial layer, myosin IIB is needed for apical actin accumulation, wh...
Background: Neurulation is driven by apical constriction of actomyosin cytoskeleton resulting in con...
AbstractWe compared the type and patterning of morphogenic cell behaviors driving convergent extensi...
AbstractRegulation of cellular adhesion and cytoskeletal dynamics is essential for neurulation, thou...
AbstractVertebrate neural tube formation involves two distinct morphogenetic events — convergent ext...
Abstract Vertebrate neural tube closure is associated with complex changes in cell shape and behavio...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
BACKGROUND: Neurulation is driven by apical constriction of actomyosin cytoskeleton resulting in con...
<div><h3>Background</h3><p>Neurulation is driven by apical constriction of actomyosin cytoskeleton r...
Background: Neurulation is driven by apical constriction of actomyosin cytoskeleton resulting in con...
AbstractWe compared the type and patterning of morphogenic cell behaviors driving convergent extensi...
AbstractRegulation of cellular adhesion and cytoskeletal dynamics is essential for neurulation, thou...
AbstractVertebrate neural tube formation involves two distinct morphogenetic events — convergent ext...
Abstract Vertebrate neural tube closure is associated with complex changes in cell shape and behavio...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
Neural tube closure is a fundamental process during vertebrate embryogenesis, which leads to the for...
BACKGROUND: Neurulation is driven by apical constriction of actomyosin cytoskeleton resulting in con...
<div><h3>Background</h3><p>Neurulation is driven by apical constriction of actomyosin cytoskeleton r...
Background: Neurulation is driven by apical constriction of actomyosin cytoskeleton resulting in con...
AbstractWe compared the type and patterning of morphogenic cell behaviors driving convergent extensi...
AbstractRegulation of cellular adhesion and cytoskeletal dynamics is essential for neurulation, thou...