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Updated: Oct 18, 2025

Murine Model of Intestinal Ischemia-reperfusion Injury
Published on: May 11, 2016
Potentially Functional microRNA-mRNA Regulatory Networks in Intestinal Ischemia-Reperfusion Injury: A Bioinformatics
Zhifeng Jiang1, Song Chen2, Lin Zhang1
1Department of Critical Care Medicine, Jinshan Hospital, Fudan University, Shanghai, 201508, People's Republic of China.
Background:
Intestinal ischemia-reperfusion (II/R) injury is a common clinical complication associated with high mortality, for which microRNA (miRNA) drives potentially its pathophysiological progression. MiRNAs regulate different messenger RNAs (mRNAs). However, the regulatory network between miRNAs and mRNAs in intestinal ischemia-reperfusion injury is elusive.
Methods:
We analyzed the different expression of mRNAs and miRNAs in intestinal tissues from patients from three groups (arterial group (group A), venous group (group V), control group (group C)). Common differentially expressed (Co-DE) miRNAs and differentially expressed mRNAs were acquired via concerned analyses among the three groups. Co-DE mRNAs were shared parts of target mRNAs and differentially expression mRNAs. Cytoscape was employed to construct the regulatory network between miRNAs and mRNAs. Gene Ontology (GO) analysis and the Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway depicted the functions and potential pathway associated with Co-DE mRNAs. Using the STRING and Cytoscape, we found critical mRNAs in the protein-protein interaction (PPI) network.
Results:
The miRNA-mRNA network comprised 8 Co-DE miRNAs and 140 Co-DE mRNAs. Of note, 140 Co-DE mRNAs were targets of these 8 miRNAs, and their roles were established through the functional exploration via GO analysis and KEGG analysis. PPI network and Cytoscape revealed COL1A2, THY1, IL10, MMP2, SERPINH1, COL3A1, COL14A1, and P4HA1 as the top 8 key mRNAs.
Conclusion:
This study has demonstrated a miRNA-mRNA regulatory network in intestinal ischemia-reperfusion injury, and explored the key mRNAs and their potential functions. These findings could provide new insight into prognostic markers and therapeutic targets for patients with intestinal ischemia-reperfusion injury in clinical practice.
Insights
This study reveals a microRNA-messenger RNA network in intestinal ischemia-reperfusion injury. Key messenger RNAs were identified, offering potential new targets for treating this condition.
Area of Science:
- Molecular Biology
- Genomics
- Systems Biology
Background:
- Intestinal ischemia-reperfusion (II/R) injury is a critical condition with high mortality.
- MicroRNAs (miRNAs) play a significant role in the progression of II/R injury.
- The intricate regulatory network between miRNAs and messenger RNAs (mRNAs) in II/R injury remains largely unknown.
Purpose of the Study:
- To elucidate the miRNA-mRNA regulatory network in intestinal ischemia-reperfusion injury.
- To identify key messenger RNAs (mRNAs) involved in the pathophysiology of II/R injury.
- To explore the functional roles and potential therapeutic targets within this network.
Main Methods:
- Analysis of differentially expressed mRNAs and miRNAs in intestinal tissues from II/R patients and controls.
- Construction of a miRNA-mRNA regulatory network using Cytoscape.
- Functional enrichment analysis (Gene Ontology and KEGG pathways) of differentially expressed genes.
- Identification of critical mRNAs through protein-protein interaction (PPI) network analysis.
Main Results:
- A comprehensive miRNA-mRNA regulatory network was constructed, involving 8 common differentially expressed (Co-DE) miRNAs and 140 Co-DE mRNAs.
- Functional analysis revealed the roles of these mRNAs in II/R injury.
- Eight key mRNAs (COL1A2, THY1, IL10, MMP2, SERPINH1, COL3A1, COL14A1, P4HA1) were identified as critical nodes in the regulatory network.
Conclusions:
- This study successfully established a miRNA-mRNA regulatory network specific to intestinal ischemia-reperfusion injury.
- Identified key mRNAs provide novel insights into the molecular mechanisms underlying II/R injury.
- These findings suggest potential prognostic markers and therapeutic targets for clinical application in managing II/R injury.
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