Javascript must be enabled to continue!
Bidirectional translocation of actomyosin drives epithelial invagination in ascidian siphon tube morphogenesis
View through CrossRef
How epithelia preform a spatiotemporal heterogeneous force generating program to drive a sequential tissue morphogenesis remains unclear, particularly the underlying precise mechanical mechanisms. This study investigated dynamic actomyosin reorganization between apical and lateral membrane cortex regions during two sequentially invaginated stages during ascidian atrial siphon tube morphogenesis. At the initial invagination stage, the originally lateral-located actomyosin translocated to the apical domains, while those actomyosin re-translocated back to lateral domains at the accelerated invagination stage. Using genetic mutants to modulate myosin activities, the initial invagination was strengthened or abolished, indicating invagination are apical constriction dependent. Optogenetic inhibition of myosin activities in lateral domains after initial invagination stage blocked the further processes, suggesting lateral constriction of actomyosin is required for the accelerated invagination. Vertex model simulations uncovered a coupled mechanism underlying epithelial invagination driven by apicobasal tension imbalance and lateral contraction. We thus propose an actomyosin translocation mechanical model: lateral actomyosin first translocate apically to drive apical constriction and shape the initial invagination, then apical actomyosin redistributes laterally to promote lateral contractility and accelerate invagination. Our findings discovery a bidirectional reorganization of actomyosin network as a central mechanism driving epithelial invagination, providing insights on epithelial invagination and the organ morphogenesis during development.
Title: Bidirectional translocation of actomyosin drives epithelial invagination in ascidian siphon tube morphogenesis
Description:
How epithelia preform a spatiotemporal heterogeneous force generating program to drive a sequential tissue morphogenesis remains unclear, particularly the underlying precise mechanical mechanisms.
This study investigated dynamic actomyosin reorganization between apical and lateral membrane cortex regions during two sequentially invaginated stages during ascidian atrial siphon tube morphogenesis.
At the initial invagination stage, the originally lateral-located actomyosin translocated to the apical domains, while those actomyosin re-translocated back to lateral domains at the accelerated invagination stage.
Using genetic mutants to modulate myosin activities, the initial invagination was strengthened or abolished, indicating invagination are apical constriction dependent.
Optogenetic inhibition of myosin activities in lateral domains after initial invagination stage blocked the further processes, suggesting lateral constriction of actomyosin is required for the accelerated invagination.
Vertex model simulations uncovered a coupled mechanism underlying epithelial invagination driven by apicobasal tension imbalance and lateral contraction.
We thus propose an actomyosin translocation mechanical model: lateral actomyosin first translocate apically to drive apical constriction and shape the initial invagination, then apical actomyosin redistributes laterally to promote lateral contractility and accelerate invagination.
Our findings discovery a bidirectional reorganization of actomyosin network as a central mechanism driving epithelial invagination, providing insights on epithelial invagination and the organ morphogenesis during development.
Related Results
Bidirectional redistribution of actomyosin drives epithelial invagination in ascidian siphon tube morphogenesis
Bidirectional redistribution of actomyosin drives epithelial invagination in ascidian siphon tube morphogenesis
How epithelia perform a spatiotemporal heterogeneous force generating program to drive a sequential tissue morphogenesis remains unclear, particularly the underlying precise mechan...
Blunt Chest Trauma and Chylothorax: A Systematic Review
Blunt Chest Trauma and Chylothorax: A Systematic Review
Abstract
Introduction: Although traumatic chylothorax is predominantly associated with penetrating injuries, instances following blunt trauma, as a rare and challenging condition, ...
Translocation Ecology of New Zealand Freshwater Mussels
Translocation Ecology of New Zealand Freshwater Mussels
<p><b>Freshwater mussels are a diverse and important group of animals that provide multiple ecosystem services as well as direct services to humans. They are also one ...
VISCOSITY CHANGES IN CARP ACTOMYOSIN SOLUTIONS
VISCOSITY CHANGES IN CARP ACTOMYOSIN SOLUTIONS
ABSTRACT
The flow property and ATPase activity were determined to clarify the behavior of carp actomyosin solution during incubation at 40° C...
A Preliminary Study on the Siphon Mechanism in Giraffe (Giraffa camelopardalis)
A Preliminary Study on the Siphon Mechanism in Giraffe (Giraffa camelopardalis)
Adult giraffes reach heights of 4.5 m with a heart-to-head distance of over 2 m, making cranial blood supply challenging. Ultrasound confirmed that the giraffe jugular vein collaps...
Environmental Surveillance Protocols for Highly Pathogenic Avian Influenza (HPAI) v2
Environmental Surveillance Protocols for Highly Pathogenic Avian Influenza (HPAI) v2
EnvironmentalSurveillance Protocols for Highly Pathogenic Avian Influenza (HPAI) This comprehensive protocol suite enables systematic environmental surveillance for avian influenza...
Actomyosin content of rabbit heart ventricle
Actomyosin content of rabbit heart ventricle
The requirements for quantitative extraction of rabbit cardiac actomyosin were investigated. Extraction of the tissue was carried out at pH 6.5. Under these conditions, precipitati...
Controlling pinned and coupled actomyosin contraction
Controlling pinned and coupled actomyosin contraction
Abstract
Actin and myosin drive many instances of force generation, deformation, and shape change in cells, tissues, and organisms. In particular, cytoskeletal ac...

