Hypoxic regulation of osteoclast differentiation and bone resorption activity

H. Knowles
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引用次数: 85

Abstract

Bone integrity is maintained throughout life via the homeostatic actions of bone cells, namely, osteoclasts, which resorb bone, and osteoblasts, which produce bone. Disruption of this balance in favor of osteoclast activation results in pathological bone loss, which occurs in conditions including osteoporosis, rheumatoid arthritis, primary bone cancer, and cancer metastasis to bone. Hypoxia also plays a major role in these conditions, where it is associated with disease progression and poor prognosis. In recent years, considerable interest has arisen in the mechanisms whereby hypoxia and the hypoxia-inducible transcription factors, HIF-1α and HIF-2α, affect bone remodeling and bone pathologies. This review summarizes the current evidence for hypoxia-mediated regulation of osteoclast differentiation and bone resorption activity. Role(s) of HIF and HIF target genes in the formation of multinucleated osteoclasts from cells of the monocyte–macrophage lineage and in the activation of bone resorption by mature osteoclasts will be discussed. Specific attention will be paid to hypoxic metabolism and generation of ATP by osteoclasts. Hypoxia-driven increases in both glycolytic flux and mitochondrial metabolic activity, along with consequent generation of mitochondrial reactive oxygen species, have been found to be essential for osteoclast formation and resorption activity. Finally, evidence for the use of HIF inhibitors as potential therapeutic agents targeting bone resorption in osteolytic disease will be discussed.
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缺氧对破骨细胞分化和骨吸收活性的调节
骨的完整性是通过骨细胞的稳态作用维持的,即吸收骨的破骨细胞和产生骨的成骨细胞。这种平衡的破坏有利于破骨细胞的激活,导致病理性骨质流失,发生在骨质疏松症、类风湿关节炎、原发性骨癌和癌症转移到骨的情况下。缺氧在这些疾病中也起着重要作用,它与疾病进展和预后不良有关。近年来,人们对缺氧和缺氧诱导的转录因子HIF-1α和HIF-2α影响骨重塑和骨病理的机制产生了相当大的兴趣。本文综述了目前缺氧介导的破骨细胞分化和骨吸收活性调节的证据。HIF和HIF靶基因在单核-巨噬细胞系细胞形成多核破骨细胞和成熟破骨细胞骨吸收激活中的作用将被讨论。我们将特别关注破骨细胞的缺氧代谢和ATP的生成。缺氧驱动的糖酵解通量和线粒体代谢活性的增加,以及随之而来的线粒体活性氧的产生,已被发现对破骨细胞的形成和吸收活性至关重要。最后,将讨论HIF抑制剂作为溶骨性疾病中靶向骨吸收的潜在治疗剂的证据。
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审稿时长
16 weeks
期刊最新文献
Abstract IA-015: Hypoxia-induced SETX links replication stress with the unfolded protein response Abstract PO-033: Papaverine derivative smv-32 alleviates tumor hypoxia and radiosensitizes tumors by inhibiting mitochondrial metabolism Abstract PO-034: Changes in cancer associated fibroblast subsets following angiotensin II type I receptor blocker (ARB) treatment reduces transient hypoxia and radiation resistance Abstract IA-017: Chromatin and gene transcription in hypoxia Abstract IA-016: Metabolic deregulation drives a redox vulnerability in pancreatic cancer
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