Javascript must be enabled to continue!
Actin dynamics switches two distinct modes of endosomal fusion in yolk sac visceral endoderm cells
View through CrossRef
Abstract
Membranes undergo various patterns of deformation during vesicle fusion, but how this membrane deformation is regulated and contributes to fusion remains unknown. In this study, we developed a new method of observing the fusion of individual late endosomes and lysosomes by using yolk sac visceral endoderm cells that have huge endocytic vesicles. We found that there were two distinct fusion modes that were differently regulated. In homotypic fusion, two late endosomes fused quickly, whereas in heterotypic fusion they fused to lysosomes slowly. Mathematical modeling showed that vesicle size is a critical determinant of these fusion types and that membrane fluctuation forces can overcome the vesicle size effects. We found that actin filaments were bound to late endosomes and forces derived from dynamic actin remodeling were necessary for quick fusion during homotypic fusion. Furthermore, cofilin played a role in endocytic fusion by regulating actin turnover. These data suggest that actin promotes vesicle fusion for efficient membrane trafficking in visceral endoderm cells.
eLife Sciences Publications, Ltd
Title: Actin dynamics switches two distinct modes of endosomal fusion in yolk sac visceral endoderm cells
Description:
Abstract
Membranes undergo various patterns of deformation during vesicle fusion, but how this membrane deformation is regulated and contributes to fusion remains unknown.
In this study, we developed a new method of observing the fusion of individual late endosomes and lysosomes by using yolk sac visceral endoderm cells that have huge endocytic vesicles.
We found that there were two distinct fusion modes that were differently regulated.
In homotypic fusion, two late endosomes fused quickly, whereas in heterotypic fusion they fused to lysosomes slowly.
Mathematical modeling showed that vesicle size is a critical determinant of these fusion types and that membrane fluctuation forces can overcome the vesicle size effects.
We found that actin filaments were bound to late endosomes and forces derived from dynamic actin remodeling were necessary for quick fusion during homotypic fusion.
Furthermore, cofilin played a role in endocytic fusion by regulating actin turnover.
These data suggest that actin promotes vesicle fusion for efficient membrane trafficking in visceral endoderm cells.
Related Results
Actin dynamics switches two distinct modes of endosomal fusion in yolk sac visceral endoderm cells
Actin dynamics switches two distinct modes of endosomal fusion in yolk sac visceral endoderm cells
Membranes undergo various patterns of deformation during vesicle fusion, but how this membrane deformation is regulated and contributes to fusion remains unknown. In this study, we...
Actin dynamics switches two distinct modes of endosomal fusion in yolk sac visceral endoderm cells
Actin dynamics switches two distinct modes of endosomal fusion in yolk sac visceral endoderm cells
Membranes undergo various patterns of deformation during vesicle fusion, but how this membrane deformation is regulated and contributes to fusion remains unknown. In this study, we...
Actin dynamics switches two distinct modes of endosomal fusion in yolk sac visceral endoderm cells
Actin dynamics switches two distinct modes of endosomal fusion in yolk sac visceral endoderm cells
Abstract
Membranes undergo various patterns of deformation during vesicle fusion, but how this membrane deformation is regulated and contributes to fusion remains u...
Actin dynamics switches two distinct modes of endosomal fusion in yolk sac visceral endoderm cells
Actin dynamics switches two distinct modes of endosomal fusion in yolk sac visceral endoderm cells
Abstract
Membranes undergo various patterns of deformation during vesicle fusion, but how this membrane deformation is regulated and contributes to fusion remains u...
14-3-3 Negatively Regulates Actin Filament Formation in the Deep Branching EukaryoteGiardia lamblia
14-3-3 Negatively Regulates Actin Filament Formation in the Deep Branching EukaryoteGiardia lamblia
AbstractThe phosphoserine/phosphothreonine-binding protein 14-3-3 is known to regulate actin, this function has been previously attributed to sequestration of phosphorylated cofili...
The Nuclear Fusion Award
The Nuclear Fusion Award
The Nuclear Fusion Award ceremony for 2009 and 2010 award winners was held during the 23rd IAEA Fusion Energy Conference in Daejeon. This time, both 2009 and 2010 award winners w...
Expression in Escherichia coli of a secreted invertebrate ferritin
Expression in Escherichia coli of a secreted invertebrate ferritin
The coding regions of the cDNAs for cytoplasmic soma ferritin and secreted yolk ferritin from the snail Lymnaea stagnalis were inserted into the prokaryotic expression vector pEMBL...
Cracked actin filaments as mechanosensitive receptors
Cracked actin filaments as mechanosensitive receptors
ABSTRACT
Actin filament networks are exposed to mechanical stimuli, but the effect of strain on actin filament structure has not been well-established in molecular ...

