破骨细胞
重编程
细胞外
细胞生物学
巨噬细胞
谷氨酸受体
化学
炎症
表观遗传学
成骨细胞
生物化学
生物
细胞
免疫学
基因
体外
受体
作者
Xiaoyuan Huang,Yanhua Lan,Jiahui Shen,Xiaomin Zhao,Yanyan Zhou,Wenzhi Wu,Jiajie Mao,Yuzhu Wu,Zhijian Xie,Zhuo Chen
标识
DOI:10.1016/j.ymthe.2024.02.005
摘要
Osteoclast precursors (OCPs) are thought to commit to osteoclast differentiation, which is accelerated by aging-related chronic inflammation, thereby leading to osteoporosis. However, whether the fate of OCPs can be reshaped to transition into other cell lineages is unknown. Here, we showed that M2 macrophage-derived extracellular vesicles (M2-EVs) could reprogram OCPs to downregulate osteoclast-specific gene expression and convert OCPs to M2 macrophage-like lineage cells, which reshaped the fate of OCPs by delivering the molecular metabolite glutamate. Upon delivery of glutamate, glutamine metabolism in OCPs was markedly enhanced, resulting in the increased production of α-ketoglutarate (αKG), which participates in Jmjd3-dependent epigenetic reprogramming, causing M2-like macrophage differentiation. Thus, we revealed a novel transformation of OCPs into M2-like macrophages via M2-EVs-initiated metabolic reprogramming and epigenetic modification. Our findings suggest that M2-EVs can reestablish the balance between osteoclasts and M2 macrophages, alleviate the symptoms of bone loss, and constitute a new approach for bone-targeted therapy to treat osteoporosis.
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