Metabolic regulation of exercise-induced angiogenesis.

Vascular biology (Bristol, England) Pub Date : 2019-03-11 eCollection Date: 2019-01-01 DOI:10.1530/VB-19-0008
Tatiane Gorski, Katrien De Bock
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引用次数: 28

Abstract

Skeletal muscle relies on an ingenious network of blood vessels, which ensures optimal oxygen and nutrient supply. An increase in muscle vascularization is an early adaptive event to exercise training, but the cellular and molecular mechanisms underlying exercise-induced blood vessel formation are not completely clear. In this review, we provide a concise overview on how exercise-induced alterations in muscle metabolism can evoke metabolic changes in endothelial cells (ECs) that drive muscle angiogenesis. In skeletal muscle, angiogenesis can occur via sprouting and splitting angiogenesis and is dependent on vascular endothelial growth factor (VEGF) signaling. In the resting muscle, VEGF levels are controlled by the estrogen-related receptor γ (ERRγ). Upon exercise, the transcriptional coactivator peroxisome-proliferator-activated receptor-γ coactivator-1α (PGC1α) orchestrates several adaptations to endurance exercise within muscle fibers and simultaneously promotes transcriptional activation of Vegf expression and increased muscle capillary density. While ECs are highly glycolytic and change their metabolism during sprouting angiogenesis in development and disease, a similar role for EC metabolism in exercise-induced angiogenesis in skeletal muscle remains to be elucidated. Nonetheless, recent studies have illustrated the importance of endothelial hydrogen sulfide and sirtuin 1 (SIRT1) activity for exercise-induced angiogenesis, suggesting that EC metabolic reprogramming may be fundamental in this process. We hypothesize that the exercise-induced angiogenic response can also be modulated by metabolic crosstalk between muscle and the endothelium. Defining the underlying molecular mechanisms responsible for skeletal muscle angiogenesis in response to exercise will yield valuable insight into metabolic regulation as well as the determinants of exercise performance.

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运动诱导血管生成的代谢调节。
骨骼肌依赖于一个精巧的血管网络,以确保最佳的氧气和营养供应。肌肉血管形成的增加是运动训练的早期适应性事件,但运动诱导血管形成的细胞和分子机制尚不完全清楚。在这篇综述中,我们简要概述了运动诱导的肌肉代谢改变如何引起内皮细胞(ECs)的代谢变化,从而驱动肌肉血管生成。在骨骼肌中,血管生成可以通过发芽和分裂血管生成发生,并依赖于血管内皮生长因子(VEGF)信号。在静息肌肉中,VEGF水平受雌激素相关受体γ (ERRγ)控制。运动后,转录辅激活因子过氧化物酶体增殖因子激活受体-γ辅激活因子-1α (PGC1α)在肌肉纤维内协调耐力运动的几种适应,同时促进Vegf表达的转录激活和肌肉毛细血管密度的增加。虽然EC具有高度的糖酵解作用,并在发育和疾病的新生血管生成过程中改变其代谢,但EC代谢在运动诱导的骨骼肌血管生成中的类似作用仍有待阐明。尽管如此,最近的研究表明,内皮细胞硫化氢和SIRT1 (SIRT1)活性在运动诱导的血管生成中的重要性,表明EC代谢重编程可能是这一过程的基础。我们假设运动诱导的血管生成反应也可以通过肌肉和内皮细胞之间的代谢串扰来调节。定义运动后骨骼肌血管生成的潜在分子机制将对代谢调节以及运动表现的决定因素产生有价值的见解。
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