Javascript must be enabled to continue!
GCK-4 regulates apical actin organization and lumen formation in the C. elegans intestine
View through CrossRef
Abstract
Epithelial tubes are an essential component of many organ systems. The formation of their lumens depends on the close coordination of epithelial polarity, the apical actin cytoskeleton, and apical junctions, yet the mechanisms that organize the apical cytoskeleton and junctions downstream of polarity remain poorly understood. Here, we identify the Ste20 family kinase GCK-4, the single
C. elegans
ortholog of the mammalian kinases LOK and SLK, as a critical regulator of intestinal lumen formation. GCK-4 localizes to the apical membrane during early lumen formation and to microvillar tips as these structures develop. Its loss results in a lethal cystic lumen phenotype, without disrupting the establishment of epithelial polarity, and in occasional failure to maintain attachment between the pharynx and intestine. Lumens in
gck-4
mutant animals show irregular junction patterning, severely impaired apical accumulation of both actin and the membrane–actin linker Ezrin/Radixin/Moesin protein ERM-1, and microvilli atrophy. In
Drosophila
and mammalian cells, the GCK-4 orthologs are thought to organize the apical actin network largely through phosphorylation of ERM proteins. In contrast, ERM-1 phosphorylation is only partially reduced in
gck-4
mutants and is not abolished, indicating that GCK-4 acts through additional targets and is not the principal ERM-1 kinase in the intestine. Together, these findings identify GCK-4 as a key regulator of apical actin and junction organization during lumen formation, and demonstrate that Ste20 kinases can control apical cytoskeletal architecture at least partially independently of ERM phosphorylation.
Title: GCK-4 regulates apical actin organization and lumen formation in the
C. elegans
intestine
Description:
Abstract
Epithelial tubes are an essential component of many organ systems.
The formation of their lumens depends on the close coordination of epithelial polarity, the apical actin cytoskeleton, and apical junctions, yet the mechanisms that organize the apical cytoskeleton and junctions downstream of polarity remain poorly understood.
Here, we identify the Ste20 family kinase GCK-4, the single
C.
elegans
ortholog of the mammalian kinases LOK and SLK, as a critical regulator of intestinal lumen formation.
GCK-4 localizes to the apical membrane during early lumen formation and to microvillar tips as these structures develop.
Its loss results in a lethal cystic lumen phenotype, without disrupting the establishment of epithelial polarity, and in occasional failure to maintain attachment between the pharynx and intestine.
Lumens in
gck-4
mutant animals show irregular junction patterning, severely impaired apical accumulation of both actin and the membrane–actin linker Ezrin/Radixin/Moesin protein ERM-1, and microvilli atrophy.
In
Drosophila
and mammalian cells, the GCK-4 orthologs are thought to organize the apical actin network largely through phosphorylation of ERM proteins.
In contrast, ERM-1 phosphorylation is only partially reduced in
gck-4
mutants and is not abolished, indicating that GCK-4 acts through additional targets and is not the principal ERM-1 kinase in the intestine.
Together, these findings identify GCK-4 as a key regulator of apical actin and junction organization during lumen formation, and demonstrate that Ste20 kinases can control apical cytoskeletal architecture at least partially independently of ERM phosphorylation.
Related Results
1-OR: The Improvement Effects of Glucokinase Loss-of-Function Mutation on Lipid Metabolism
1-OR: The Improvement Effects of Glucokinase Loss-of-Function Mutation on Lipid Metabolism
Glucokinase-maturity onset diabetes of the young (GCK-MODY), resulting from GCK loss-of-function mutation, is a unique form of diabetes characterized by mild hyperglycemia, favorab...
Unraveling intestinal lumen formation in Caenorhabditis elegans
Unraveling intestinal lumen formation in Caenorhabditis elegans
Most organs within our body are comprised of tubular structures essential for nutrient and waste transportation. Examples include blood vessels through which our blood flows, the i...
ВОЗМОЖНАЯ РОЛЬ РЕЦЕПТОРОВ ДОФАМИНА DOP-1, DOP-2 И DOP-3 В МОДУЛЯЦИИ ЧУВСТВИТЕЛЬНОСТИ ПОЧВЕННОЙ НЕМАТОДЫ Caenorhabditis elegans К ТОКСИЧЕСКОМУ ДЕЙСТВИЮ ИОНОВ СВИНЦА
ВОЗМОЖНАЯ РОЛЬ РЕЦЕПТОРОВ ДОФАМИНА DOP-1, DOP-2 И DOP-3 В МОДУЛЯЦИИ ЧУВСТВИТЕЛЬНОСТИ ПОЧВЕННОЙ НЕМАТОДЫ Caenorhabditis elegans К ТОКСИЧЕСКОМУ ДЕЙСТВИЮ ИОНОВ СВИНЦА
Проведено изучение возможной роли рецепторов дофамина DOP-1, DOP-2 и DOP-3 в модуляции чувствительности почвенной нематоды Caenorhabditis elegans к токсическому действию нитрата св...
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...
Glucokinase-Related Maturity-Onset Diabetes of the Young in India and the Clinical Utility of the MODY Probability Calculator for Identifying Underdiagnosed and Rare Forms
Glucokinase-Related Maturity-Onset Diabetes of the Young in India and the Clinical Utility of the MODY Probability Calculator for Identifying Underdiagnosed and Rare Forms
Abstract
Aims/Introduction:
Heterozygous inactivating mutations in the glucokinase (GCK) gene induce a fasting hyperglycaemic disorder known as ...
Interaction between distinct actin pools controls activity-dependent actin dynamics in the dendritic spine
Interaction between distinct actin pools controls activity-dependent actin dynamics in the dendritic spine
Abstract
Actin cytoskeleton is composed of functionally distinct pools of filamentous (F)-actin defined by their regulatory machinery and dynamic...
Identification of Actin Filament Interactors in
Giardia lamblia
Identification of Actin Filament Interactors in
Giardia lamblia
Abstract
The deep-branching protozoan parasite
Giardia lamblia
is the causative agent of the intestinal disea...
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 ...

