缺氧信号在骨生理和能量代谢中的作用

Roger Valle-Tenney, Seppe Melis, Christa Maes
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引用次数: 1

摘要

成骨细胞谱系细胞中的缺氧诱导因子(HIF)信号激活可能通过多种关键下游效应物的联合作用来增加骨量。其中包括强效血管生成刺激因子血管内皮生长因子(VEGF),它介导骨中的骨血管生成反应,以及其他非细胞自主贡献者。此外,骨细胞中局部HIF的激活本质上触发了糖酵解的增加,这与成骨细胞葡萄糖消耗的强烈增强有关。引人注目的是,除了对骨量的局部影响外,骨谱系中细胞代谢的增强还与骨骼整体葡萄糖摄取的增加以及对全身葡萄糖稳态的伴随影响有关。本文综述了成骨细胞系细胞缺氧信号通路在骨生理学中的细胞自主和非细胞自主作用,以及在骨中观察到的对该通路激活的平行系统性影响。根据目前的证据,将讨论扩展骨骼对全球能量代谢控制的新的潜在机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hypoxia signaling in bone physiology and energy metabolism

Hypoxia-inducible factor (HIF) signaling activation in osteoblast lineage cells increases bone mass, likely through the combined actions of multiple key downstream effectors. These include the potent angiogenesis stimulator vascular endothelial growth factor (VEGF), which mediates coupled osteo-angiogenic responses in bone, among other non-cell-autonomous contributors. Additionally, local HIF activation in bone cells cell-intrinsically triggers increased glycolysis, which is associated with strongly enhanced osteoblastic glucose consumption. Strikingly, besides its local impact on bone mass, this boosting of cellular metabolism in the osteolineage has been linked to increased overall glucose uptake by the skeleton and concomitant effects on systemic glucose homeostasis. This review summarizes the cell-autonomous and non-cell-autonomous roles of the hypoxia signaling pathway in osteoblast lineage cells on bone physiology and the parallel systemic impact observed upon activation of the pathway in bone. New potential mechanisms extending the control of global energy metabolism by the skeleton will be discussed in light of the current evidence.

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来源期刊
Current Opinion in Endocrine and Metabolic Research
Current Opinion in Endocrine and Metabolic Research Medicine-Endocrinology, Diabetes and Metabolism
CiteScore
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