4.6 Article

Therapeutic effect of and mechanisms underlying the effect of miR-195-5p on subarachnoid hemorrhage-induced vasospasm and brain injury in rats

期刊

PEERJ
卷 9, 期 -, 页码 -

出版社

PEERJ INC
DOI: 10.7717/peerj.11395

关键词

Subarachnoid hemorrhage; Cerebral vasospasm; Apoptosis; iNOS; eNOS; miR-195-5p; TNF-alpha; NF-kappa B

资金

  1. National Science Council, Taiwan [NSC 1012314-B-037-018-MY2]
  2. Kaohsiung Medical University Hospital [KMUH 101-1R16, KMUH 102-2R17]

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The study showed that miR-195-5p exerted a protective effect against SAH-induced vasospasm and early brain injury by modulating related proteins and signaling pathways. Further research is needed to fully understand the underlying mechanisms and potential clinical applications of miR-195-5p in managing SAH-induced cerebral vasospasm and brain injury.
Objectives. There is much evidence suggesting that inflammation contributes majorly to subarachnoid hemorrhage (SAH)-induced cerebral vasospasm and brain injury. miRNAs have been found to modulate inflammation in several neurological disorders. This study investigated the effect of miR-195-5p on SAH-induced vasospasm and early brain injury in experimental rats. Methods. Ninety-six Sprague-Dawley male rats were randomly and evenly divided into a control group (no SAH, sham surgery), a SAH only group, a SAH + NC-mimic group, and a SAH + miR-195-5p group. SAH was induced using a single injection of blood into the cisterna magna. Suspensions containing NC-mimic and miR-195-5p were intravenously injected into rat tail 30 mins after SAH was induced. We determined degree of vasospasm by averaging areas of cross-sections the basilar artery 24h after SAH. We measured basilar artery endothelial nitric oxide synthase (eNOS), inducible nitric oxide synthase (iNOS), nuclear factor kappa-light-chain-enhancer of activated B cells (NF-kappa B), phosphorylated NF-kappa B (p-NF-kappa B), inhibitor of NF-kappa B (I kappa B alpha) and phosphorylated-I kappa B alpha (p-I kappa B alpha). Cell death assay was used to quantify the DNA fragmentation, an indicator of apoptotic cell death, in the cortex, hippocampus, and dentate gyrus. Tumor necrosis factor alpha (TNF-alpha) levels were measured using sample protein obtained from the cerebral cortex, hippocampus and dentate gyrus. Results. Prior to fixation by perfusion, there were no significant physiological differences among the control and treatment groups. SAH successfully induced vasospasm and early brain injury. MiR-195-5p attenuated vasospasam-induced changes in morphology, reversed SAH-induced elevation of iNOS, p-NF-kappa B, NF-kappa B, and p-I kappa B alpha and reversed SAH-induced suppression of eNOS in the basilar artery. Cell death assay revealed that MiR-195-5p significantly decreased SAH-induced DNA fragmentation (apoptosis) and restored TNF-alpha level in the dentate gyrus. Conclusion. In conclusion, MiRNA-195-5p attenuated SAH-induced vasospasm by upregulating eNOS, down-regulating iNOS and inhibiting the NF-kappa B signaling pathway. It also protected neurons by decreasing SAH-induced apoptosis-related cytokine TNFff expression in the dentate gyrus. Further study is needed to elucidate the detail mechanism underlying miR-195-5p effect on SAH-induced vasospasm and cerebral injury. We believe that MiR-195-5p can potentially be used to manage SAH-induced cerebral vasospasm and brain injury.

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