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MicroRNA-582-5p Reduces Propofol-induced Apoptosis in Developing Neurons by Targeting ROCK1
Zhongjie Zhang1, Yan Xu2, Songyuan Chi1
1Department of Anesthesiology, The Affiliated Hospital of Beihua University, Jilin City, Jilin Province, 132000, China.
Background:
Propofol is an intravenous drug commonly used in anesthesia procedures and intensive care in children. However, it also has neurotoxic effects on children. MicroRNA plays an important role in neurological diseases and neurotoxicity.
Methods:
In this study, primary rat hippocampal neurons were used to investigate the role of miR- 582-5p in propofol-induced neurotoxicity. Cell viability was monitored by 3-(4,5-dimethylthiazolyl)- 2,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT) assay, while the expression of proteins was monitored by real-time quantitation polymerase chain reaction (RT-qPCR) and western blot. TargetScan and double luciferase report assay were used to predict the targeting relationship between miR-582-5p and Rho-associated serine-threonine protein kinase 1 (ROCK1).
Results:
In the present study, the viability of neurons and the expression of miR-582-5p were decreased in a time-dependent manner after propofol treatment. Besides, miR-582-5p overexpression significantly reduced the toxicity of propofol on neuron cells but had no significant effect on normal nerve cells. In addition, miR-582-5p overexpression significantly reversed the expression of apoptosis-related proteins (cleaved caspase 3 and cleaved caspase 9) induced by propofol but had no significant effect in normal nerve cells. TargetScan and Dual-luciferase report assay revealed that ROCK1 was a targeted regulatory gene for miR-582-5p, and propofol treatment up-regulated ROCK1 expression by inhibiting miR-582-5p expression. Notably, miR-582-5p overexpression significantly increased cell viability, while ROCK1 overexpression reversed the effect of miR-582- 5p.
Conclusion:
Taken together, these findings suggest that miR-582-5p alleviated propofol-induced apoptosis of newborn rat neurons by inhibiting ROCK1.
Insights
MicroRNA 582-5p protects newborn rat neurons from propofol neurotoxicity by inhibiting ROCK1. This finding offers a potential therapeutic target for mitigating propofol-induced neurological damage in children.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Propofol, an anesthetic, can cause neurotoxicity in children.
- MicroRNAs are crucial in neurological disease and neurotoxicity.
- Understanding microRNA's role in propofol neurotoxicity is vital.
Purpose of the Study:
- Investigate the role of miR-582-5p in propofol-induced neurotoxicity.
- Determine the mechanism by which miR-582-5p affects neuronal survival.
- Identify potential therapeutic targets for propofol neurotoxicity.
Main Methods:
- Primary rat hippocampal neurons were used.
- Cell viability assessed via MTT assay.
- Protein and microRNA expression analyzed using RT-qPCR and Western blot.
- miR-582-5p and ROCK1 interaction confirmed by TargetScan and luciferase assay.
Main Results:
- Propofol decreased neuron viability and miR-582-5p expression in a time-dependent manner.
- miR-582-5p overexpression protected neurons from propofol toxicity and reversed apoptosis markers.
- ROCK1 was identified as a direct target of miR-582-5p; propofol upregulated ROCK1 by inhibiting miR-582-5p.
Conclusions:
- miR-582-5p alleviates propofol-induced apoptosis in neurons by inhibiting ROCK1.
- This microRNA represents a potential therapeutic strategy against propofol neurotoxicity.
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