巴基斯坦卢比
成骨细胞
间充质干细胞
细胞生物学
内分泌学
化学
骨质疏松症
内科学
糖酵解
癌症研究
生物
丙酮酸激酶
医学
生物化学
新陈代谢
体外
作者
Jinhui Wu,Miao Hu,Heng Jiang,Jun Ma,Chong Xie,Zheng Zhang,Xin Zhou,Jinqiu Zhao,Zhengbo Tao,Yichen Meng,Zhuyun Cai,Tengfei Song,Chenglin Zhang,Rui Gao,Hongyuan Song,Yang Gao,Tong Lin,Ce Wang,Xuhui Zhou
标识
DOI:10.1101/2023.03.06.531262
摘要
Abstract Blood vessels play a role in osteogenesis and osteoporosis; however, the role of vascular metabolism is unclear. The present study found that ovariectomized mice exhibit reductions in bone blood vessel density and expression of endothelial glycolytic regulator pyruvate kinase M2 (PKM2). Additional data showed that endothelial cell (EC)-specific deletion of Pkm2 impair osteogenesis and worsen osteoporosis in mice. This was attributed to the impaired differentiation ability toward osteoblast of bone mesenchymal stem cells (BMSCs). Mechanistically, EC-specific deletion of Pkm2 reduce serum lactate levels secreted by ECs, which affect histone lactylation of BMSCs. We identified collagen type I alpha 2 chain, cartilage oligomeric matrix protein, ectonucleotide pyrophosphatase/phosphodiesterase 1, and transcription factor 7 like 2 as histone H3K18 lactylation-regulated osteogenic genes using joint CUT&Tag and RNA-sequencing analyses. The overexpression of PKM2 in ECs, addition of lactate, and exercise were observed to restore the phenotype of endothelial Pkm2-deficient mice. Furthermore, metabolomics of the serum indicated that osteoporosis patients showed a relatively low lactate level. The histone lactylation and related osteogenic genes of BMSCs in osteoporosis patients also decreased. In conclusion, the glycolysis of ECs fuels the differentiation of BMSCs into osteoblasts through histone lactylation, and exercise partially ameliorates osteoporosis through increased serum lactate.
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