Javascript must be enabled to continue!
WWP1 deficiency protects from cardiac remodeling induced by simulated microgravity
View through CrossRef
AbstractCardiac muscle is extremely sensitive to changes in loading conditions, the microgravity during space flight can cause cardiac remodeling and function decline. At present, the mechanism of microgravity-induced cardiac remodeling remains to be revealed. WW domain-containing E3 ubiquitin protein ligase 1 (WWP1) is an important activator of pressure-overload induced cardiac remodeling by stabilizing disheveled segment polarity proteins 2 (DVL2) and activating CaMKII/HDAC4/MEF2C axis. However, the role of WWP1 in the cardiac remodeling induced by microgravity is unknown. The purpose of this study was to determine whether WWP1 was also involved in the regulation of cardiac remodeling caused by microgravity. Firstly, we detected the expression of WWP1 and DVL2 in the heart from mice and monkeys after simulated microgravity using western blotting and Immunohistochemistry. Secondly, WWP1 knockout (KO) and wild type mice were subjected to hindlimb unloading (HU) to simulate microgravity effect. We assessed the cardiac remodeling in morphology and function through histological analysis and echocardiography. Finally, we detected the phosphorylation level of CaMKII and HDAC4 in the heart from WT and WWP1 KO mice after HU. The results revealed the increased expression of WWP1 and DVL2 in the heart both from mice and monkey after simulated microgravity. WWP1 deficiency protected against simulated microgravity-induced cardiac atrophy and function decline. Histological analysis demonstrated WWP1 KO inhibited the decreases in the size of individual cardiomyocytes of mice after hindlimb unloading. WWP1 KO can inhibit the activation of DVL2/CaMKII/HDAC4 pathway in heart of mice induced by simulated microgravity. These results demonstrated WWP1 as a potential therapeutic target for cardiac remodeling and function decline induced by simulated microgravity.
Cold Spring Harbor Laboratory
Title: WWP1 deficiency protects from cardiac remodeling induced by simulated microgravity
Description:
AbstractCardiac muscle is extremely sensitive to changes in loading conditions, the microgravity during space flight can cause cardiac remodeling and function decline.
At present, the mechanism of microgravity-induced cardiac remodeling remains to be revealed.
WW domain-containing E3 ubiquitin protein ligase 1 (WWP1) is an important activator of pressure-overload induced cardiac remodeling by stabilizing disheveled segment polarity proteins 2 (DVL2) and activating CaMKII/HDAC4/MEF2C axis.
However, the role of WWP1 in the cardiac remodeling induced by microgravity is unknown.
The purpose of this study was to determine whether WWP1 was also involved in the regulation of cardiac remodeling caused by microgravity.
Firstly, we detected the expression of WWP1 and DVL2 in the heart from mice and monkeys after simulated microgravity using western blotting and Immunohistochemistry.
Secondly, WWP1 knockout (KO) and wild type mice were subjected to hindlimb unloading (HU) to simulate microgravity effect.
We assessed the cardiac remodeling in morphology and function through histological analysis and echocardiography.
Finally, we detected the phosphorylation level of CaMKII and HDAC4 in the heart from WT and WWP1 KO mice after HU.
The results revealed the increased expression of WWP1 and DVL2 in the heart both from mice and monkey after simulated microgravity.
WWP1 deficiency protected against simulated microgravity-induced cardiac atrophy and function decline.
Histological analysis demonstrated WWP1 KO inhibited the decreases in the size of individual cardiomyocytes of mice after hindlimb unloading.
WWP1 KO can inhibit the activation of DVL2/CaMKII/HDAC4 pathway in heart of mice induced by simulated microgravity.
These results demonstrated WWP1 as a potential therapeutic target for cardiac remodeling and function decline induced by simulated microgravity.
Related Results
The cardiac STAT3 intercalated disc specific expression in tail suspension rat
The cardiac STAT3 intercalated disc specific expression in tail suspension rat
Abstract
Background
The cardiovascular system is significantly agitated by loss of gravity. In microgravity, the body fluids sh...
De Novo Anemia and Relationship with Vitamin C Deficiency and Zinc Deficiency in a Southern Delaware Population, a Retrospective Analysis
De Novo Anemia and Relationship with Vitamin C Deficiency and Zinc Deficiency in a Southern Delaware Population, a Retrospective Analysis
Abstract
Background:
Vitamin C is an essential dietary nutrient. It is a water soluble vitamin that exists in the body primarily in the reduced form A...
Mediator kinase submodule-dependent regulation of cardiac transcription
Mediator kinase submodule-dependent regulation of cardiac transcription
<p>Pathological cardiac remodeling results from myocardial stresses including pressure and volume overload, neurohumoral activation, myocardial infarction, and hypothyroidism...
Clinical Implications of Cytopenias in the U.S. Immunodeficiency Network Registry
Clinical Implications of Cytopenias in the U.S. Immunodeficiency Network Registry
Rationale
The correlation between cytopenias and infection, malignancy, and mortality has not been systematically characterized in patients with inborn errors of ...
RNA‐seq analyses of Arabidopsis thaliana seedlings after exposure to blue‐light phototropic stimuli in microgravity
RNA‐seq analyses of Arabidopsis thaliana seedlings after exposure to blue‐light phototropic stimuli in microgravity
PremisePlants synthesize information from multiple environmental stimuli when determining their direction of growth. Gravity, being ubiquitous on Earth, plays a major role in deter...
Microgravity disturbance analysis on Chinese space laboratory
Microgravity disturbance analysis on Chinese space laboratory
AbstractMany scientific experiments are conducted in space; therefore, it is critical to understand the microgravity environment of a space laboratory. The first Chinese cargo ship...
Effects of different interventions on microgravity-induced bone loss
Effects of different interventions on microgravity-induced bone loss
Abstract
The ongoing advancement of aerospace technology globally offers technical support for human exploration of outer space. Nevertheless, astronauts encounter m...
Sympathetic Nervous System Mediates Cardiac Remodeling After Myocardial Infarction in a Circadian Disruption Model
Sympathetic Nervous System Mediates Cardiac Remodeling After Myocardial Infarction in a Circadian Disruption Model
Background:Circadian rhythms have a considerable impact on the daily physiology of the heart, and their disruption causes pathology. Several studies have revealed that circadian di...

