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Dnmt3b ablation impairs fracture repair through upregulation of Notch pathway
Jun Ying, Taotao Xu, Cuicui Wang, Hongting Jin, Peijian Tong, Jianjun Guan, Yousef Abu-Amer, Regis O’Keefe, Jie Shen
Jun Ying, Taotao Xu, Cuicui Wang, Hongting Jin, Peijian Tong, Jianjun Guan, Yousef Abu-Amer, Regis O’Keefe, Jie Shen
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Research Article Bone biology

Dnmt3b ablation impairs fracture repair through upregulation of Notch pathway

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Abstract

We previously established that DNA methyltransferase 3b (Dnmt3b) is the sole Dnmt responsive to fracture repair and that Dnmt3b expression is induced in progenitor cells during fracture repair. In the current study, we confirmed that Dnmt3b ablation in mesenchymal progenitor cells (MPCs) resulted in impaired endochondral ossification, delayed fracture repair, and reduced mechanical strength of the newly formed bone in Prx1-Cre;Dnmt3bf/f (Dnmt3bPrx1) mice. Mechanistically, deletion of Dnmt3b in MPCs led to reduced chondrogenic and osteogenic differentiation in vitro. We further identified Rbpjκ as a downstream target of Dnmt3b in MPCs. In fact, we located 2 Dnmt3b binding sites in the murine proximal Rbpjκ promoter and gene body and confirmed Dnmt3b interaction with the 2 binding sites by ChIP assays. Luciferase assays showed functional utilization of the Dnmt3b binding sites in murine C3H10T1/2 cells. Importantly, we showed that the MPC differentiation defect observed in Dnmt3b deficiency cells was due to the upregulation of Rbpjκ, evident by restored MPC differentiation upon Rbpjκ inhibition. Consistent with in vitro findings, Rbpjκ blockage via dual antiplatelet therapy reversed the differentiation defect and accelerated fracture repair in Dnmt3bPrx1 mice. Collectively, our data suggest that Dnmt3b suppresses Notch signaling during MPC differentiation and is necessary for normal fracture repair.

Authors

Jun Ying, Taotao Xu, Cuicui Wang, Hongting Jin, Peijian Tong, Jianjun Guan, Yousef Abu-Amer, Regis O’Keefe, Jie Shen

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Figure 2

Ablation of Dnmt3b in mesenchymal progenitor cells led to delayed bone callus remodeling and decreased biomechanical properties of the newly formed bone during fracture repair.

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Ablation of Dnmt3b in mesenchymal progenitor cells led to delayed bone c...
(A) Tartrate-resistant acid phosphatase (TRAP) staining of fracture callus sections of Dnmt3bPrx1 mice and control mice at the indicated times (n = 5). Scale bar: 200 μm. (B) Histomorphometry analysis of osteoclast surface per bone surface (Oc. S/BS) was performed on TRAP staining of Dnmt3bPrx1 and control fractures at the indicated times (n = 5). (C) Biomechanical torsion testing was performed on fractured tibiae of Dnmt3bPrx1 mice and control mice 28 days after fracture (dpf). Maximum torque, torsional rigidity, and energy to maximum were measured and calculated to represent the bone strength, bone stiffness, and bone toughness (n = 10). Data are presented as mean ± SD. *P < 0.05 by 2-way ANOVA test (B) and Student’s t test (C).

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