The present study explored the modulating apoptosis effect of hydrogen sulfide (H(2)S) in subarachnoid hemorrhage (SAH) rats and its exact mechanism. A rat SAH model established by intravascular puncturing was used for the present study. After giving NaHS (donor of H(2)S), an L-type calcium channel opener (Bay K8644), or a calcium channel agonist (nifedipine), the neurological function of the rats, associated pathological changes, and expression of apoptosis-related proteins (Bcl-2, Bax, and caspase-3) and microtubule-associated protein (MAP-2) were examined. The concentration of H(2)S and expression of cystathionine beta synthase in the hippocampus changed upon early brain injury (EBI) after SAH. Compared with the SAH group, the neurological function of the rats and microstructure observed by electron microscopy were better in the SAHâ+âNaHS group and SAHâ+âBay K8644 group. It was observed that apoptosis was more obvious in the SAH group than in the control group and was alleviated in the SAHâ+âNaHS group. Furthermore, the alleviating effect of NaHS was partially weakened by nifedipine, indicating that the effect of anti-apoptosis in H(2)S might be correlated with the calcium channel. The expression of Bax and caspase-3 was elevated, while the expression of Bcl-2 decreased in the SAH group but improved in the SAHâ+âNaHS and SAHâ+âBay K8644 group. Compared with the SAHâ+âNaHS group, the expression of pro-apoptotic proteins was higher in the SAHâ+âNaHSâ+ânifedipine group. Therefore, upon EBI following SAH, the H(2)S system plays an important neurological protective effect by modulating the function of the L-type calcium channel and inhibiting apoptosis.
Neuroprotective Effects of Early Brain Injury after Subarachnoid Hemorrhage in Rats by Calcium Channel Mediating Hydrogen Sulfide.
硫化氢介导钙通道对大鼠蛛网膜下腔出血后早期脑损伤的神经保护作用
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作者:Duan Hong-Zhou, Wu Chong-Wei, Shen Sheng-Li, Zhang Jia-Yong, Li Liang
| 期刊: | Cellular and Molecular Neurobiology | 影响因子: | 4.800 |
| 时间: | 2021 | 起止号: | 2021 Nov;41(8):1707-1714 |
| doi: | 10.1007/s10571-020-00940-0 | 研究方向: | 神经科学 |
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