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Dehydrocorydaline Protects Against Sepsis-Induced Myocardial Injury Through Modulating the TRAF6/NF-κB Pathway
Yadong Li1, Li Zhang2, Ping Zhang2
1Department of Emergency, Second Hospital of Shanxi Medical University, Taiyuan, China.
Insights
Dehydrocorydaline (Deh) protects against sepsis-induced heart injury by reducing inflammation and oxidative stress. It inhibits the TRAF6/NF-κB pathway, improving survival in mouse models and protecting cardiomyocytes.
Area of Science:
- Cardiovascular Research
- Pharmacology
- Sepsis Pathophysiology
Background:
- Sepsis-induced myocardial injury is a critical complication of sepsis.
- Rhizoma corydalis contains dehydrocorydaline (Deh), a potential therapeutic agent.
- Understanding Deh's mechanism in sepsis is crucial for effective treatment.
Purpose of the Study:
- To investigate the protective effects and underlying mechanisms of dehydrocorydaline (Deh) against sepsis-mediated myocardial injury.
- To elucidate the role of the TRAF6/NF-κB signaling pathway in Deh's therapeutic action.
Main Methods:
- Established in vitro (LPS-induced H9C2 cells) and in vivo (E. coli-induced mice) sepsis models.
- Assessed cardiac histopathology (HE, Masson, IHC) and apoptosis (TUNEL).
- Measured inflammatory cytokines, oxidative stress markers, and key protein expressions (Western blot, ELISA).
Main Results:
- Deh treatment improved survival in sepsis mice and reduced cardiomyocyte apoptosis.
- In vitro, Deh enhanced H9C2 cell viability and inhibited apoptosis.
- Deh demonstrated anti-inflammatory and antioxidant effects, downregulating TRAF6 and NF-κB phosphorylation.
Conclusions:
- Dehydrocorydaline (Deh) effectively mitigates sepsis-induced myocardial injury.
- Deh exerts protective effects by inhibiting the TRAF6/NF-κB signaling pathway.
- Deh presents a promising therapeutic candidate for sepsis-related heart complications.
Abstract:
We aim to investigate the effect and mechanism of dehydrocorydaline (Deh), an alkaloidal component isolated from Rhizoma corydalis, in the treatment of sepsis-mediated myocardial injury. Lipopolysaccharide (LPS) was taken to construct an in-vitro sepsis-myocardial injury models H9C2 cardiomyocytes. The in-vivo model of sepsis in C57BL/6 mice was induced by intraperitoneal injection of Escherichia coli (E. coli). The in-vitro and in-vivo models were treated with Deh in different concentrations, respectively. Hematoxylin-eosin (HE) staining, Masson staining, and immunohistochemistry (IHC) staining were taken to evaluate the histopathological changes of the heart. ELISA was applied to evaluate the levels of inflammatory factors, including IL-6, IL-1β, TNFα, IFNγ, and oxidized factors SOD, GSH-PX in the plasma or culture medium. Western blot was used to measure the expressions of Bax, Bcl2, Caspase3, iNOS, Nrf2, HO-1, TRAF6, NF-κB in heart tissues and cells. The viability of H9C2 cardiomyocytes was detected by the CCK8 method and BrdU assay. The ROS level in the H9C2 cardiomyocytes were determined using immunofluorescence. As a result, Deh treatment improved the survival of sepsis mice, reduced TUNEL-labeled apoptosis of cardiomyocytes. In vitro, Deh enhanced the viability of LPS-induced H9C2 cardiomyocytes and inhibited cell apoptosis. Additionally, Deh showed significant anti-inflammatory and anti-oxidative stress functions via decreasing IL-1β, IL-6, TNFα, and IFNγ levels, mitigating ROS level, up-regulating Nrf2/HO-1, SOD, and GSH-PX expressions dose-dependently. Mechanistically, Deh inhibited TRAF6 expression and the phosphorylation of NF-κB p65. The intervention with a specific inhibitor of TRAF6 (C25-140) or NF-κB inhibitor (BAY 11-7082) markedly repressed the protective effects mediated by Deh. In conclusion, Deh restrains sepsis-induced cardiomyocyte injury by inhibiting the TRAF6/NF-κB pathway.
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