内源性原卟啉锌的形成对出血性中风引起的脑损伤至关重要。

Rong Pan, Song Yu, Haikun Zhang, Graham S Timmins, John Weaver, Yirong Yang, Xixi Zhou, Ke Jian Liu
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引用次数: 2

摘要

出血性中风是导致死亡的主要原因。脑出血(ICH)引起的脑损伤的原因被认为包括红细胞溶解、血红素释放和铁超载。然而,这些机制尚未被证明非常适合治疗干预,因此正在寻找其他机制靶点。在这里,我们报道内源性形成的原卟啉锌(ZnPP)的积累也对ich诱导的脑损伤起关键作用。脑出血导致脑组织血肿周围有明显的ZnPP积聚,通过ZnPP荧光显微镜观察证实,并通过荧光光谱和超临界液相色谱-质谱联用进一步证实。ZnPP的形成依赖于ich诱导的缺氧和游离锌积累的增加。值得注意的是,抑制铁螯合酶(催化锌插入原卟啉)可大大减少ich诱导的内源性ZnPP生成。此外,铁螯合酶抑制显著降低脑损伤,提示内源性ZnPP参与了脑出血损伤。我们的研究结果揭示了一种通过铁螯合酶介导的脑出血组织中ZnPP形成的脑出血诱导脑损伤的新机制。由于铁螯合酶可以很容易地被小分子抑制,如蛋白激酶抑制剂,这可能为脑出血治疗提供一个有希望的新的药物靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Endogenous zinc protoporphyrin formation critically contributes to hemorrhagic stroke-induced brain damage.

Endogenous zinc protoporphyrin formation critically contributes to hemorrhagic stroke-induced brain damage.

Endogenous zinc protoporphyrin formation critically contributes to hemorrhagic stroke-induced brain damage.

Hemorrhagic stroke is a leading cause of death. The causes of intracerebral hemorrhage (ICH)-induced brain damage are thought to include lysis of red blood cells, hemin release and iron overload. These mechanisms, however, have not proven very amenable to therapeutic intervention, and so other mechanistic targets are being sought. Here we report that accumulation of endogenously formed zinc protoporphyrin (ZnPP) also critically contributes to ICH-induced brain damage. ICH caused a significant accumulation of ZnPP in brain tissue surrounding hematoma, as evidenced by fluorescence microscopy of ZnPP, and further confirmed by fluorescence spectroscopy and supercritical fluid chromatography-mass spectrometry. ZnPP formation was dependent upon both ICH-induced hypoxia and an increase in free zinc accumulation. Notably, inhibiting ferrochelatase, which catalyzes insertion of zinc into protoporphyrin, greatly decreased ICH-induced endogenous ZnPP generation. Moreover, a significant decrease in brain damage was observed upon ferrochelatase inhibition, suggesting that endogenous ZnPP contributes to the damage in ICH. Our findings reveal a novel mechanism of ICH-induced brain damage through ferrochelatase-mediated formation of ZnPP in ICH tissue. Since ferrochelatase can be readily inhibited by small molecules, such as protein kinase inhibitors, this may provide a promising new and druggable target for ICH therapy.

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