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Evaluation of a Reliable Biomarker in a Cecal Ligation and Puncture-Induced Mouse Model of Sepsis
Published on: December 9, 2022
Hydrogen gas inhalation attenuates sepsis-induced liver injury in a FUNDC1-dependent manner
Mengying Yan1, Yang Yu1, Xing Mao1
1Department of Anesthesia, Tianjin Medical University General Hospital, Tianjin, China; Tianjin Institute of Anesthesiology, Tianjin, China.
Abstract:
Sepsis-induced hepatic dysfunction is considered as an independent risk factor of multiple organ dysfunction syndrome (MODS) and death. Mitophagy, a selective form of autophagy, plays a major role in sepsis-induced organ damage. We have demonstrated that hydrogen gas (H2), a selective antioxidant, exerts protective effects in septic mice. Here, we hypothesize that the therapeutic effects of H2 on septic animals with liver damages may be exerted through regulation of the Fun14 domain-containing protein 1 (FUDNC1)-induced mitophagy pathway. Male C57BL/6J mice were subjected to sham or cecal ligation and puncture (CLP) operation and treated with 2% H2 gas inhalation for 3 h starting at 1 h after sham or CLP surgery. To verify the role of FUNDC1, the cell-penetrating peptide P (NH2-GRKKRRQRRRPQDYESDDESYEVLDLTEY-COOH) (1 mg/kg) that functions as a FUNDC1 inhibitor was intraperitoneally injected into mice 24 h before the sham or CLP operation. To evaluate the severity of septic liver injury, the 7-day survival rate, liver histopathologic score, alanine aminotransferase (ALT) and aspartate aminotransferase (AST) levels, respiration control ratio (RCR), and FUDNC1, P-18-FUDNC1, P62, LC3B-II, Tim23, and caspase-1 levels were evaluated after the sham or CLP operation. The results demonstrated that 2% H2 gas inhalation resulted in an increase in the 7-day survival rate, ALT and AST levels, RCR, and P62 and LC3B-II expression but decreased the histological score and FUDNC1, P-18-FUDNC1, Tim23, and caspase-1 levels after sepsis. However, no significant differences were reported between the CLP + peptide P and CLP + H2 + peptide P groups. These observations indicate that 2% H2 gas inhalation for 3 h may serve as an effective therapeutic strategy for sepsis-induced liver injury through the regulation of FUNDC1-dependent mitophagy.
Insights
Hydrogen gas (H2) therapy improves survival and liver function in sepsis by regulating mitophagy. This antioxidant treatment targets the FUNDC1-dependent pathway, offering a potential therapeutic strategy for sepsis-induced liver injury.
Area of Science:
- Biochemistry
- Cell Biology
- Medical Science
Background:
- Sepsis-induced liver dysfunction is a significant risk factor for multiple organ dysfunction syndrome (MODS) and mortality.
- Mitophagy, a selective autophagy process, is critically involved in sepsis-related organ damage.
- Hydrogen gas (H2), known for its antioxidant properties, has shown protective effects in septic models.
Purpose of the Study:
- To investigate the therapeutic potential of hydrogen gas (H2) in mitigating liver damage during sepsis.
- To elucidate the role of the Fun14 domain-containing protein 1 (FUNDC1)-induced mitophagy pathway in H2's protective effects against sepsis-induced liver injury.
Main Methods:
- Male C57BL/6J mice underwent either sham or cecal ligation and puncture (CLP) surgery to induce sepsis.
- Mice were treated with 2% H2 gas inhalation or a FUNDC1 inhibitor peptide.
- Evaluated outcomes included survival rates, liver histopathology, serum enzyme levels (ALT, AST), mitochondrial respiration, and protein expression (FUNDC1, P62, LC3B-II, etc.).
Main Results:
- H2 inhalation significantly increased 7-day survival rates and improved liver function markers (ALT, AST, RCR) in septic mice.
- H2 treatment reduced liver injury scores and modulated key proteins involved in mitophagy, including decreased FUNDC1 and increased P62/LC3B-II.
- Inhibition of FUNDC1 did not alter the protective effects of H2, suggesting H2 acts via FUNDC1-dependent mitophagy.
Conclusions:
- Hydrogen gas (H2) inhalation is a promising therapeutic strategy for sepsis-induced liver injury.
- H2 exerts its protective effects by modulating the FUNDC1-dependent mitophagy pathway.
- This study highlights H2 as a potential treatment to improve outcomes in sepsis patients with liver complications.
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