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衰老相关的脑微血管生物能量学损伤涉及氧化磷酸化和糖酵解途径。

Aging related impairment of brain microvascular bioenergetics involves oxidative phosphorylation and glycolytic pathways.

机构信息

Department of Pharmacology, Tulane University School of Medicine, New Orleans, LA, USA.

Neuroscience Program, Tulane Brain Institute, Tulane University, New Orleans, LA, USA.

出版信息

J Cereb Blood Flow Metab. 2022 Aug;42(8):1410-1424. doi: 10.1177/0271678X211069266. Epub 2022 Mar 16.

Abstract

Mitochondrial and glycolytic energy pathways regulate the vascular functions. Aging impairs the cerebrovascular function and increases the risk of stroke and cognitive dysfunction. The goal of our study is to characterize the impact of aging on brain microvascular energetics. We measured the oxygen consumption and extracellular acidification rates of freshly isolated brain microvessels (BMVs) from young (2-4 months) and aged (20-22 months) C57Bl/6 male mice. Cellular ATP production in BMVs was predominantly dependent on oxidative phosphorylation (OXPHOS) with glucose as the preferred energy substrate. Aged BMVs exhibit lower ATP production rate with diminished OXPHOS and glycolytic rate accompanied by increased utilization of glutamine. Impairments of glycolysis displayed by aged BMVs included reduced compensatory glycolysis whereas impairments of mitochondrial respiration involved reduction of spare respiratory capacity and proton leak. Aged BMVs showed reduced levels of key glycolysis proteins including glucose transporter 1 and 6-phosphofructo-2-kinase/fructose-2,6-biphosphatase 3 but normal lactate dehydrogenase activity. Mitochondrial protein levels were mostly unchanged whereas citrate synthase activity was reduced, and glutamate dehydrogenase was increased in aged BMVs. Thus, for the first time, we identified the dominant role of mitochondria in bioenergetics of BMVs and the alterations of the energy pathways that make the aged BMVs vulnerable to injury.

摘要

线粒体和糖酵解能量途径调节血管功能。衰老会损害脑血管功能,增加中风和认知功能障碍的风险。我们研究的目的是描述衰老对脑微血管能量代谢的影响。我们测量了来自年轻(2-4 个月)和年老(20-22 个月)C57Bl/6 雄性小鼠的新鲜分离脑微血管(BMV)的耗氧量和细胞外酸化率。BMV 中的细胞内 ATP 生成主要依赖于氧化磷酸化(OXPHOS),以葡萄糖为首选能量底物。与氧化磷酸化和糖酵解率降低伴随谷氨酰胺利用率增加相比,年老的 BMV 表现出较低的 ATP 生成率。年老的 BMV 显示出糖酵解的代偿性降低,而线粒体呼吸的损伤涉及备用呼吸能力和质子泄漏的减少。年老的 BMV 表现出关键糖酵解蛋白水平降低,包括葡萄糖转运蛋白 1 和 6-磷酸果糖激酶/果糖-2,6-二磷酸酶 3,但乳酸脱氢酶活性正常。线粒体蛋白水平大多保持不变,而柠檬酸合酶活性降低,谷氨酸脱氢酶在年老的 BMV 中增加。因此,我们首次确定了线粒体在 BMV 生物能量学中的主导作用,以及改变能量途径使年老的 BMV 易受损伤的机制。

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