破骨细胞
生物
细胞生物学
骨重建
骨吸收
骨细胞
线粒体
基因沉默
成骨细胞
内分泌学
生物化学
体外
基因
作者
Lingxin Zhu,Yi Tang,Xiaoyan Li,Samuel A. Kerk,Costas A. Lyssiotis,Wenqing Feng,Xiaoyue Sun,Geoffrey E. Hespe,Zijun Wang,Marc P. Stemmler,Simone Brabletz,Thomas Brabletz,Evan T. Keller,Jun Ma,Jung‐Sun Cho,Jingwen Yang,Stephen J. Weiss
标识
DOI:10.15252/embj.2022111148
摘要
Abstract Osteoclasts are bone‐resorbing polykaryons responsible for skeletal remodeling during health and disease. Coincident with their differentiation from myeloid precursors, osteoclasts undergo extensive transcriptional and metabolic reprogramming in order to acquire the cellular machinery necessary to demineralize bone and digest its interwoven extracellular matrix. While attempting to identify new regulatory molecules critical to bone resorption, we discovered that murine and human osteoclast differentiation is accompanied by the expression of Zeb1, a zinc‐finger transcriptional repressor whose role in normal development is most frequently linked to the control of epithelial‐mesenchymal programs. However, following targeting, we find that Zeb1 serves as an unexpected regulator of osteoclast energy metabolism. In vivo , Zeb1‐null osteoclasts assume a hyperactivated state, markedly decreasing bone density due to excessive resorptive activity. Mechanistically, Zeb1 acts in a rheostat‐like fashion to modulate murine and human osteoclast activity by transcriptionally repressing an ATP‐buffering enzyme, mitochondrial creatine kinase 1 (MtCK1), thereby controlling the phosphocreatine energy shuttle and mitochondrial respiration. Together, these studies identify a novel Zeb1/MtCK1 axis that exerts metabolic control over bone resorption in vitro and in vivo .
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