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Sodium thiosulfate protects brain in rat model of adenine induced vascular calcification
N Subhash1, R Sriram2, Gino A Kurian2
1School of Chemical and Biotechnology, SASTRA University, Thanjavur, India.
Insights
Sodium thiosulfate (STS) protects brain mitochondria from damage caused by vascular calcification in end-stage renal disease. Curative STS treatment showed more significant neuroprotective effects than preventive treatment.
Area of Science:
- Nephrology
- Cardiovascular Science
- Neuroscience
Background:
- Vascular calcification is a common complication of end-stage renal disease (ESRD), contributing to cardiovascular and cerebrovascular events.
- Sodium thiosulfate (STS) exhibits antioxidant and calcium-chelating properties, with prior studies suggesting its potential in preventing vascular calcification.
- The impact of STS on cerebral function and mitochondrial dysfunction in the context of ESRD-induced vascular calcification remains underexplored.
Purpose of the Study:
- To investigate the neuroprotective effects of Sodium thiosulfate (STS) in a rat model of end-stage renal disease (ESRD)-induced vascular calcification.
- To evaluate the impact of STS on brain oxidative stress and mitochondrial function.
- To compare the efficacy of STS as a preventive versus a curative agent.
Main Methods:
- A rat model was established using adenine administration to induce vascular calcification and renal failure.
- Sodium thiosulfate (STS) was administered either preventively or curatively.
- Assessment included blood and urine chemistries, aortic histopathology, brain oxidative stress markers (TBARS, CAT, SOD, GPx), and mitochondrial function assays (respiratory enzymes, P/O ratio, RCR).
Main Results:
- STS demonstrated renal protective effects, confirmed by blood/urine chemistries and aortic histopathology, in both preventive and curative administration modes.
- STS administration significantly reduced brain oxidative stress and preserved mitochondrial function, including respiratory enzyme activities and physiological parameters.
- Curative STS treatment yielded more prominent neuroprotection, evidenced by near-normal brain oxidative stress markers and preserved mitochondrial function, compared to preventive treatment.
Conclusions:
- Sodium thiosulfate (STS) exerts significant protective effects on the brain, particularly on mitochondria, in the context of ESRD-induced vascular calcification.
- The curative administration of STS proved more effective in preserving brain mitochondrial integrity and function than concomitant preventive treatment.
- Findings highlight STS as a potential therapeutic agent for mitigating cerebrovascular complications associated with ESRD.
Abstract:
Vascular bed calcification is a common feature of ends stage renal disease that may lead to a complication in cardiovascular and cerebrovascular beds, which is a promoting cause of myocardial infarction, stroke, dementia and aneurysms. Sodium thiosulfate (STS) due to its multiple properties such as antioxidant and calcium chelation has been reported to prevent vascular calcification in uremic rats, without mentioning its impact on cerebral function. Moreover, the previous studies have not explored the effect of STS on the mitochondrial dysfunction, one of the main pathophysiological features associated with the disease and the main site for STS metabolism. The present study addresses this limitation by using a rat model where 0.75% adenine was administered to induce vascular calcification and 400 mg/kg b wt. of STS was given as preventive and curative agent. The blood and urine chemistries along with histopathology of aorta confirms the renal protective effect of STS in two modes of administration. The brain oxidative stress assessment was made through TBARS level, catalase (CAT), superoxide dismutase (SOD) and glutathione peroxidase (GPx) activities, found to be in the near normal level. STS administration not only reduced the mitochondrial oxidative stress (measured by TBARS, SOD, GPx and CAT) but also preserved the mitochondrial respiratory enzyme activities (NADH dehydrogenase, Succinate dehydrogenase and Malate dehydrogenase) and its physiology (measured by P/O ratio and RCR). In fact, the protective effect of STS was prominent, when it was administered as a curative agent, where low H2S and high thiosulfate level was observed along with low cystathionine β synthase activity, confirms thiosulfate mediated renal protection. In conclusion, STS when given after induction of calcification is protective to the brain by preserving its mitochondria, compared to the treatment given concomitantly.
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