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Sirtuin 5 介导的赖氨酸去琥珀酰化作用可保护小鼠蛛网膜下腔出血后的线粒体代谢。

Sirtuin 5-Mediated Lysine Desuccinylation Protects Mitochondrial Metabolism Following Subarachnoid Hemorrhage in Mice.

机构信息

Department of Neurosurgery (Z.-P.X., T.L., Y.J., F.J., Q.H., X.Z.), Renji Hospital, Shanghai Jiao Tong University School of Medicine, China.

Central Laboratory (P.-P.H., L.G., Q.H.), Renji Hospital, Shanghai Jiao Tong University School of Medicine, China.

出版信息

Stroke. 2021 Dec;52(12):4043-4053. doi: 10.1161/STROKEAHA.121.034850. Epub 2021 Nov 22.

Abstract

BACKGROUND AND PURPOSE

Sirt5 (Sirtuin 5) desuccinylates multiple metabolic enzymes and plays an important role in maintaining energy homeostasis. The goal of this study was to determine whether Sirt5-mediated desuccinylation restores the energy metabolism and protects brain against subarachnoid hemorrhage (SAH).

METHODS

Male C57BL/6 or Sirt5 mice were used. The endovascular perforation SAH model was applied. Protein lysine succinylation in the brain cortex was examined using liquid chromatography-tandem mass spectrometry analysis. The brain metabolism was evaluated by measurement of brain pH as well as ATP and reactive oxygen species level. Neuronal cell death and neurobehavioral deficits were assessed 24 hours after SAH. The expression and desuccinylation activity of Sirt5, lysine succinylation of citrate synthase and ATP synthase subunits were investigated by Western blot, immunohistochemistry, and ELISA in SAH mice and patients. Furthermore, the benefits of resveratrol-mediated Sirt5 activation were investigated.

RESULTS

A total of 211 lysine succinylation sites were differentially expressed on 170 proteins in mice brain after SAH. Thirty-nine percent of these succinylated proteins were localized in mitochondria and they are related to energy metabolism. SAH caused a decrease of Sirt5 expression and succinylated citrate synthase as well as the subunits of ATP synthase, subsequently lowered brain pH, reduced ATP and increased reactive oxygen species production, leading to neuronal cell death, and neurological deficits. Knockdown of Sirt5 aggravated SAH-induced effects, mentioned above. Administration of resveratrol resulted in activation of Sirt5. The activation was accompanied both with restoration of the mitochondrial metabolism and alleviation of early brain injury as well as with desuccinylating citrate synthase and ATP synthase.

CONCLUSIONS

Protein lysine succinylation is a biochemical hallmark of metabolic crisis after SAH, and disruption of lysine succinylation through activation of Sirt5 might be a promising therapeutic strategy for the treatment of SAH.

摘要

背景与目的

Sirt5(Sirtuin 5)去琥珀酰化多种代谢酶,在维持能量平衡中发挥重要作用。本研究旨在确定 Sirt5 介导的去琥珀酰化是否能恢复能量代谢并保护大脑免受蛛网膜下腔出血(SAH)的影响。

方法

使用雄性 C57BL/6 或 Sirt5 小鼠。应用血管内穿孔 SAH 模型。通过液相色谱-串联质谱分析检测大脑皮质中蛋白质赖氨酸琥珀酰化。通过测量脑 pH 值以及 ATP 和活性氧水平来评估脑代谢。SAH 后 24 小时评估神经元细胞死亡和神经行为缺陷。通过 Western blot、免疫组化和 ELISA 检测 SAH 小鼠和患者中 Sirt5 的表达和去琥珀酰化活性、柠檬酸合酶和 ATP 合酶亚基的赖氨酸琥珀酰化。此外,还研究了白藜芦醇介导的 Sirt5 激活的益处。

结果

SAH 后,小鼠大脑中共有 211 个赖氨酸琥珀酰化位点在 170 种蛋白质上差异表达。这些琥珀酰化蛋白中有 39%定位于线粒体,与能量代谢有关。SAH 导致 Sirt5 表达和琥珀酰化柠檬酸合酶以及 ATP 合酶亚基减少,随后降低脑 pH 值,减少 ATP 并增加活性氧物质产生,导致神经元细胞死亡和神经功能缺陷。Sirt5 敲低加重了上述 SAH 诱导的作用。给予白藜芦醇导致 Sirt5 激活。这种激活伴随着线粒体代谢的恢复以及早期脑损伤的减轻,同时还伴随着柠檬酸合酶和 ATP 合酶的去琥珀酰化。

结论

蛋白质赖氨酸琥珀酰化是 SAH 后代谢危机的生化标志,通过激活 Sirt5 破坏赖氨酸琥珀酰化可能是治疗 SAH 的一种有前途的治疗策略。

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