Hypoxia-driven pathways in bone development, regeneration and disease

旁分泌信号 自分泌信号 缺氧诱导因子 平衡 缺氧(环境) 转录因子 细胞生物学 血管内皮生长因子 血管生成 医学 细胞适应 生物 癌症研究 内科学 化学 生物化学 血管内皮生长因子受体 基因 受体 有机化学 氧气
作者
Christa Maes,Geert Carmeliet,Ernestina Schipani
出处
期刊:Nature Reviews Rheumatology [Springer Nature]
卷期号:8 (6): 358-366 被引量:253
标识
DOI:10.1038/nrrheum.2012.36
摘要

Oxygen is thought to be an indispensable regulatory signal in tissue development and homeostasis, via its controlling of specific genetic programs. Hypoxia-inducible transcription factors (HIFs), which are regulated by oxygen tension, are central mediators of the homeostatic response that enables cells to survive and differentiate in low-oxygen conditions. In this Review, the authors summarize the current knowledge of HIF signalling in cartilage, bone and blood, and pay particular attention to the complex relationship between HIF and VEGF in these tissues based on data collected from animal models, which can also be relevant in diseases like cancer and ischemia. Adaptation to hypoxia is a critical cellular event both in pathological settings, such as cancer and ischaemia, and in normal development and differentiation. Oxygen is thought to be not only an indispensable metabolic substrate for a variety of in vivo enzymatic reactions, including mitochondrial respiration, but also a key regulatory signal in tissue development and homeostasis by controlling a specific genetic program. Hypoxia-inducible transcription factors (HIFs) HIF-1 and HIF-2 are central mediators of the homeostatic response that enables cells to survive and differentiate in low-oxygen conditions. Genetically altered mice have been used to identify important roles for HIF-1 and HIF-2 as well as vascular endothelial growth factor (VEGF)—a potent angiogenic factor and a downstream target of the HIF pathway—in the regulation of skeletal development, bone homeostasis and haematopoiesis. In this Review, we summarize the current knowledge of HIF signalling in cartilage, bone and blood, and pay particular attention to the complex relationship between HIF and VEGF in these tissues revealed by data from research using animal models. The study of these models expands our understanding of the cell autonomous, paracrine and autocrine effects that mediate the homeostatic responses downstream of HIFs and VEGF.
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