4.7 Article

Hydroxysafflor yellow A alleviates cerebral ischemia reperfusion injury by suppressing apoptosis via mitochondrial permeability transition pore

Journal

PHYTOMEDICINE
Volume 85, Issue -, Pages -

Publisher

ELSEVIER GMBH
DOI: 10.1016/j.phymed.2021.153532

Keywords

HSYA; Cerebral ischemia/reperfusion injury; Mitochondrial permeability transition pore; Apoptosis, BMECs

Funding

  1. National Natural Science Foundation of China [81773933]
  2. Anhui Province 13th batch 115 industrial innovation team Innovative team for prevention and treatment of encephalopathy with acupuncture and medicine project (Anhui talent Office [2020]) [4]
  3. Natural science research projects of Anhui Province higher learning in 2020 by Anhui Province Office of Education [KJ2020A0410]
  4. Anhui Province Office of Education [gxbjZD15]

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This study evaluated the protective effects of HSYA on cerebral I/R injury by inhibiting the opening of mPTP through the MEK/ERK/CypD pathway, reducing the release of CytC from mitochondria to protect cells and alleviate damage.
Background: Mitochondria are key cellular organelles that are essential for cell fate decisions. Hydroxysafflor yellow A (HSYA) has displayed an impressively essential role in protection of cerebral ischemia/reperfusion (I/R). However, the mitochondrial effect of HSYA on Brain Microvascular Endothelial Cells (BMECs) under I/R remains to be largely unclear. Purpose: To evaluate the protective effects of HSYA-mediated mitochondrial permeability transition pore (mPTP) on cerebral I/R injury and its mechanism. Methods: Cerebral I/R injury was established by the model of Middle cerebral artery occlusion (MCAO) in rats. Furthermore, to further clarify the relevant mechanism of HSYA's effects on mPTP, inhibition of extracellular regulated protein kinases (ERK) with U0126 and transfect with Cyclophilin D (CypD) SiRNA to reversely verified whether the protective effects of HSYA were exerted by regulating the Mitogen-activated protein kinase kinase (MEK)/ERK/CypD pathway. Results: HSYA treatment significantly increased BMECs viability, decreased the generation of ROS, opening of mPTP and translocation of cytochrome c after OGD/R. In addition to inhibited CypD, HSYA potentiated MEK and increased phosphorylation of ERK expression in BMECs, inhibited apoptosis mediated by mitochondrial. Notably, HSYA also significantly ameliorated neurological deficits and decreased the infarct volume in rats. Conclusion: HSYA reduced the CytC export from mitochondrial by inhibited the open of mPTP via MEK/ERK/CypD pathway, contributing to the protection of I/R. Thus, our study not only revealed novel mechanisms of HSYA for its anti-I/R function, but also provided a template for the design of novel mPTP inhibitor for the treatment of various mPTP-related diseases.

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