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Sodium thiosulfate mitigates PM2.5-induced cardiotoxicity by preservation of mitochondrial function
Bhavana Sivakumar1, Gino A Kurian2
1Cardiovascular Center, College of Medicine, University of Cincinnati, Cincinnati, Ohio, USA.
Background:
Exposure to PM2.5 triggers changes in myocardial structure and function, leading to a decline in the ability of heart to withstand further oxidative stress. This manuscript addresses the absence of a endogenous agent capable of counteracting the cardiac toxicity associated with PM2.5 exposure. Consequently, we investigated the potential of sodium thiosulfate (STS) to elevate thiosulfate levels, given its known antioxidant, anti-inflammatory, metal chelation, and mitochondrial preservation properties, in order to mitigate PM2.5 induced cardiac damage.
Methods:
Female Wistar rats were exposed to PM2.5 (250 μg/m3) for 3 hours daily for 21 days, after which their hearts were excised and mounted on Langendorff apparatus for ischemia-reperfusion (IR) induction. We implemented both preventive and curative investigation protocols for STS: the preventive group received STS thrice weekly for 3 weeks during the exposure regimen, while the curative group received STS after 21 days of PM2.5 exposure for 3 weeks (thrice per week).
Results:
Treatment with STS exhibited cardioprotective potential against the detrimental effects of PM2.5 exposure, as evidenced by improved cardiac hemodynamic performance, reduced tissue damage, attenuation of structural remodeling associated with hypertrophy and fibrosis, and a significant reduction in metal deposition. Moreover, it demonstrated an ability to enhance the resilience against IR. Cellular and subcellular level analyses revealed improved mitochondrial function. The protective efficacy of STS was more significant when administered as a preventive measure compared to its curative application.
Conclusion:
In summary, our results indicate that STS effectively alleviates PM2.5-induced toxicity due to its antioxidative, metal-chelating, and preservation of mitochondrial function capabilities.
Insights
Sodium thiosulfate (STS) protects the heart from PM2.5 damage by acting as an antioxidant and preserving mitochondrial function. Preventive STS administration showed greater cardioprotective effects against PM2.5 toxicity than curative treatment.
Area of Science:
- Environmental Health
- Cardiovascular Toxicology
- Pharmacology
Background:
- Particulate Matter (PM2.5) exposure impairs myocardial structure and function.
- PM2.5 exposure leads to oxidative stress and cardiac damage.
- A need exists for agents to counteract PM2.5-induced cardiac toxicity.
Purpose of the Study:
- To investigate the potential of sodium thiosulfate (STS) to mitigate PM2.5-induced cardiac damage.
- To evaluate STS's antioxidant, anti-inflammatory, metal-chelating, and mitochondrial preservation properties in the context of PM2.5 exposure.
- To compare the efficacy of preventive versus curative STS administration.
Main Methods:
- Female Wistar rats were exposed to PM2.5 (250 μg/m3) daily for 21 days.
- Hearts were subjected to ischemia-reperfusion (IR) injury.
- STS was administered either preventively (during PM2.5 exposure) or curatively (after PM2.5 exposure).
Main Results:
- STS treatment improved cardiac hemodynamics and reduced tissue damage, hypertrophy, fibrosis, and metal deposition.
- STS enhanced resilience against ischemia-reperfusion injury.
- Mitochondrial function was improved at cellular and subcellular levels.
- Preventive STS administration was more effective than curative treatment.
Conclusions:
- Sodium thiosulfate (STS) effectively alleviates PM2.5-induced cardiac toxicity.
- STS's protective effects are attributed to its antioxidative, metal-chelating, and mitochondrial function-preserving capabilities.
- Preventive administration of STS offers superior cardioprotection against PM2.5 exposure.
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