Related Experiment Video
Updated: Dec 6, 2025

In Vitro and In Vivo Approaches to Determine Intestinal Epithelial Cell Permeability
Published on: October 19, 2018
Myosin light chain kinase mediates intestinal barrier dysfunction following simulated microgravity based on proteomic
Shibo Wang1, Rui Wang1, George Q Li2
1School of Life Science, Beijing Institute of Technology, No.5 Zhongguangcun South Street, Haidian District, Beijing 100081, China.
Abstract:
Microgravity induces injury of intestinal barrier. However, the underlying mechanism remains unclear. The present study aimed to investigate the pathological change of intestinal mucosa induced by long term simulated microgravity and to explore its etiological mechanism using a proteomic approach. The well accepted tail-suspended rat model was used to simulate microgravity. The damage of rat small intestine was evaluated via histological and molecular test, and a label-free comparative proteomic strategy was used to determine the molecular mechanism. Simulated microgravity for 21 days damaged intestine barrier with decreased numbers of the goblet cells, large intercellular space, and down-regulated adhesion molecules, accompanied by increased intestinal permeability. Proteomic analysis identified 416 differentially expressed proteins and showed simulated microgravity dramatically down-regulated the adhesion molecules and deteriorated several pathways for metabolism, focal adhesion, and regulation of actin cytoskeleton. Western-blot analysis confirmed that myosin regulatory light chain (MLC) 12B was significantly down-regulated, while rho-associated protein kinase, myosin light chain kinase (MLCK), and phosphorylated MLC were dramatically up-regulated. Taken together, these data reveal that down-regulation of adhesion molecules and MLCK dependent up-regulation MLC phosphorylation mediate intestinal barrier dysfunction during simulated microgravity injury. Our results also indicate that regulation of epithelial MLCK is a potential target for the therapeutic treatment of microgravity injury.
Insights
Simulated microgravity damages the intestinal barrier by reducing goblet cells and adhesion molecules. Targeting epithelial myosin light chain kinase (MLCK) may offer therapeutic benefits for microgravity-induced intestinal injury.
Area of Science:
- Space Biology
- Gastroenterology
- Proteomics
Background:
- Microgravity poses risks to astronaut health, particularly intestinal barrier integrity.
- The precise mechanisms underlying microgravity-induced intestinal injury are not fully understood.
Purpose of the Study:
- To investigate pathological changes in the intestinal mucosa due to long-term simulated microgravity.
- To explore the etiological mechanisms of microgravity-induced intestinal injury using a proteomic approach.
Main Methods:
- Utilized a tail-suspended rat model to simulate microgravity.
- Assessed intestinal damage via histological and molecular tests.
- Employed a label-free comparative proteomic strategy to identify molecular mechanisms.
Main Results:
- Simulated microgravity for 21 days impaired the intestinal barrier, decreasing goblet cells and adhesion molecules, and increasing permeability.
- Proteomic analysis revealed 416 differentially expressed proteins, with significant downregulation of adhesion molecules and pathways related to metabolism, focal adhesion, and actin cytoskeleton regulation.
- Western-blotting confirmed downregulation of myosin regulatory light chain (MLC) 12B and upregulation of rho-associated protein kinase, myosin light chain kinase (MLCK), and phosphorylated MLC.
Conclusions:
- Downregulation of adhesion molecules and MLCK-dependent upregulation of MLC phosphorylation contribute to intestinal barrier dysfunction under simulated microgravity.
- Epithelial MLCK regulation presents a potential therapeutic target for mitigating microgravity-induced intestinal injury.
More Related Videos
07:32An Intravital Microscopy-Based Approach to Assess Intestinal Permeability and Epithelial Cell Shedding Performance
Published on: December 3, 2020
08:54Development of a Multicellular Three-dimensional Organotypic Model of the Human Intestinal Mucosa Grown Under Microgravity
Published on: July 25, 2016