DNA methylation–mediated Rbpjk suppression protects against fracture nonunion caused by systemic inflammation

DNMT3B型 祖细胞 表观遗传学 生物 炎症 DNA甲基化 骨愈合 细胞生物学 骨不连 下调和上调 背景(考古学) 再生(生物学) 祖细胞 癌症研究 免疫学 干细胞 遗传学 解剖 基因表达 基因 古生物学
作者
Ding Xiao,Liang Fang,Zhongting Liu,Yan He,Jun Ying,Haocheng Qin,Aiwu Lu,Meng Shi,Tiandao Li,Bo Zhang,Jianjun Guan,Cuicui Wang,Yousef Abu‐Amer,Jie Shen
出处
期刊:Journal of Clinical Investigation [American Society for Clinical Investigation]
卷期号:134 (3) 被引量:4
标识
DOI:10.1172/jci168558
摘要

Challenging skeletal repairs are frequently seen in patients experiencing systemic inflammation. To tackle the complexity and heterogeneity of the skeletal repair process, we performed single-cell RNA sequencing and revealed that progenitor cells were one of the major lineages responsive to elevated inflammation and this response adversely affected progenitor differentiation by upregulation of Rbpjk in fracture nonunion. We then validated the interplay between inflammation (via constitutive activation of Ikk2, Ikk2ca) and Rbpjk specifically in progenitors by using genetic animal models. Focusing on epigenetic regulation, we identified Rbpjk as a direct target of Dnmt3b. Mechanistically, inflammation decreased Dnmt3b expression in progenitor cells, consequently leading to Rbpjk upregulation via hypomethylation within its promoter region. We also showed that Dnmt3b loss-of-function mice phenotypically recapitulated the fracture repair defects observed in Ikk2ca-transgenic mice, whereas Dnmt3b-transgenic mice alleviated fracture repair defects induced by Ikk2ca. Moreover, Rbpjk ablation restored fracture repair in both Ikk2ca mice and Dnmt3b loss-of-function mice. Altogether, this work elucidates a common mechanism involving a NF-κB/Dnmt3b/Rbpjk axis within the context of inflamed bone regeneration. Building on this mechanistic insight, we applied local treatment with epigenetically modified progenitor cells in a previously established mouse model of inflammation-mediated fracture nonunion and showed a functional restoration of bone regeneration under inflammatory conditions through an increase in progenitor differentiation potential.
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