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Learning from Monocyte-Macrophage Fusion and Multinucleation: Potential Therapeutic Targets for Osteoporosis and Rheumatoid Arthritis

机译:从单核细胞 - 巨噬细胞融合和多核:骨质疏松症和类风湿性关节炎的潜在治疗靶标

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摘要

Excessive bone resorption by osteoclasts (OCs) covers an essential role in developing bone diseases, such as osteoporosis (OP) and rheumatoid arthritis (RA). Monocytes or macrophages fusion and multinucleation (M-FM) are key processes for generating multinucleated mature cells with essential roles in bone remodelling. Depending on the phenotypic heterogeneity of monocyte/macrophage precursors and the extracellular milieu, two distinct morphological and functional cell types can arise mature OCs and giant cells (GCs). Despite their biological relevance in several physiological and pathological responses, many gaps exist in our understanding of their formation and role in bone, including the molecular determinants of cell fusion and multinucleation. Here, we outline fusogenic molecules during M-FM involved in OCs and GCs formation in healthy conditions and during OP and RA. Moreover, we discuss the impact of the inflammatory milieu on modulating macrophages phenotype and their differentiation towards mature cells. Methodological approach envisaged searches on Scopus, Web of Science Core Collection, and EMBASE databases to select relevant studies on M-FM, osteoclastogenesis, inflammation, OP, and RA. This review intends to give a state-of-the-art description of mechanisms beyond osteoclastogenesis and M-FM, with a focus on OP and RA, and to highlight potential biological therapeutic targets to prevent extreme bone loss.
机译:破骨细胞(OCS)的过度骨吸收涵盖在发育骨病(如骨质疏松症(OP)和类风湿性关节炎(RA)中的重要作用。单核细胞或巨噬细胞融合和多核(M-FM)是用于在骨重塑中产生多核成熟细胞的关键方法。取决于单核细胞/巨噬细胞前体和细胞外环境的表型异质性,两个不同的形态学和功能细胞类型可以出现成熟的OC和巨细胞(GCS)。尽管在若干生理和病理反应中存在生物相关性,但我们对其在骨骼的形成和作用的理解中存在许多间隙,包括细胞融合和多核的分子决定因素。在此,我们在M-FM期间概述致致致致致素分子和在健康条件和OP和Ra期间的GCS形成。此外,我们讨论了炎症内部炎炎症对巨噬细胞表型的影响及其对成熟细胞的分化。方法论方法设想在Scopus,科学核心系列网站上进行搜索,并开设数据库,以选择对M-FM,骨质细胞发生,炎症,OP和RA相关的相关研究。本综述打算在骨核细胞发生和M-FM之外的机制提供最先进的描述,重点在OP和RA上,并突出潜在的生物治疗靶标以防止极端骨质损失。

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