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Updated: Sep 6, 2025

Murine Model of Intestinal Ischemia-reperfusion Injury
Published on: May 11, 2016
Outer membrane vesicles derived from heatstroke-associated intestinal microbiota promote multiple organ injury in
Yue Li1, Huan Li2, Husheng Tong3
1Department of Treatment, Center for Traumatic Injuries, The Third Affiliated Hospital of Southern Medical University, #183 Zhongshan Road West, Guangzhou, Guangdong, 510630, China; Academy of Orthopedics, Guangdong Province, Guangdong Provincial Key Laboratory of Bone and Joint Degenerative Diseases, #183 Zhongshan Road West, The Third Affiliated Hospital of Southern Medical University, Guangzhou, Guangdong, 510630, China; Department of Intensive Care Unit, General Hospital of Southern Theatre Command of PLA, #111 Liuhua Road, Guangzhou, 510010, Guangdong, China.
Abstract:
Multiple organ injury is a common issue in heatstroke (HS); however, the underlying pathogenesis remains unclear. As an early event in HS, intestinal injury is an active participant that drives organ injury. Outer membrane vesicles (OMVs), a group of vesicles shed by unbalanced intestinal microbiota as "danger signals," mediate different functional cargo transport in cells and modulate varying biological events in distant target cells. However, the role of OMVs in HS-mediated organ damage remains unclear. Therefore, this study examined OMV production in HS and explored the effect of regulating multiple organ injury. To construct a mouse model, animals were exposed to hyperthermia. OMVs from the intestinal microbiota of HS and control mice were extracted by standardized differential ultracentrifugation. Thereafter, OMVs were characterized and infused into recipient mice via the tail vein. Cl-amidine (a pan-peptidylarginine deiminase inhibitor and OMV production inhibitor) was injected intraperitoneally (2 mg/kg) 2 h before HS treatment, and the absorption of HS OMVs by different organs was tracked. The effect of OMVs on inducing organ pathological changes, inflammatory infiltration, inflammatory cytokine expression, and serum organ injury biomarkers was demonstrated. HS increased OMV production by intestinal microbiota; OMVs were absorbed by different organs in vivo, and were especially enriched in the liver and lung. Compared to control OMVs, infusion with HS OMVs induced significant organ pathological changes, elevated inflammatory cell (macrophages and neutrophil) infiltration, inflammatory cytokine (TNF-ɑ, IL-1β, IL-6) expression, as well as serum biomarkers of organ injury. Similarly, inhibition of endogenous OMVs alleviated these organ injury indicators induced by HS. To our knowledge, the present study is the first to illustrate that OMVs induce acute organ impairment during severe HS, offering a foundation for subsequent studies and providing novel therapeutic targets.
Insights
Heatstroke (HS) causes organ injury, partly due to outer membrane vesicles (OMVs) from gut bacteria. These OMVs damage organs, but inhibiting their production may protect against HS-induced damage.
Area of Science:
- Microbiology
- Pathology
- Toxicology
Background:
- Multiple organ injury is a significant complication of heatstroke (HS), with unclear underlying mechanisms.
- Intestinal injury is an early event in HS and contributes to systemic organ damage.
- Outer membrane vesicles (OMVs) from intestinal microbiota are implicated as 'danger signals' that can affect distant cells.
Purpose of the Study:
- To investigate the role of intestinal microbiota-derived OMVs in heatstroke-induced multiple organ injury.
- To explore the therapeutic potential of inhibiting OMV production in heatstroke.
Main Methods:
- A mouse model of heatstroke was established by hyperthermia exposure.
- OMVs were extracted from the intestinal microbiota of heatstroke and control mice.
- OMVs were characterized and infused into recipient mice; a peptidylarginine deiminase inhibitor (Cl-amidine) was used to inhibit OMV production.
Main Results:
- Heatstroke significantly increased OMV production by intestinal microbiota.
- Infusion of heatstroke-derived OMVs into recipient mice induced organ pathological changes, inflammation, and elevated serum injury biomarkers.
- Inhibition of endogenous OMV production using Cl-amidine alleviated heatstroke-induced organ injury indicators.
Conclusions:
- This study demonstrates that OMVs from intestinal microbiota play a critical role in mediating acute organ impairment during severe heatstroke.
- OMVs are absorbed by multiple organs, particularly the liver and lungs, contributing to pathology.
- Inhibiting OMV production represents a potential therapeutic strategy for mitigating heatstroke-associated organ damage.
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