Discoidin domain receptor 2 is an important modulator of BMP signaling during heterotopic bone formation

IF 14.3 1区 医学 Q1 CELL & TISSUE ENGINEERING Bone Research Pub Date : 2025-01-02 DOI:10.1038/s41413-024-00391-z
Fashuai Wu, Chunxi Ge, Haichun Pan, Yuanyuan Han, Yuji Mishina, Vesa Kaartinen, Renny T. Franceschi
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Abstract

Bone morphogenetic proteins are essential for bone regeneration/fracture healing but can also induce heterotopic ossification (HO). Understanding accessory factors modulating BMP signaling would provide both a means of enhancing BMP-dependent regeneration while preventing HO. This study focuses on the ability of the collagen receptor, discoidin domain receptor 2 (DDR2), to regulate BMP activity. As will be shown, induction of bone formation by subcutaneous BMP2 implants is severely compromised in Ddr2-deficient mice. In addition, Ddr2 deficiency attenuates HO in mice expressing the ACVR1 mutation associated with human fibrodysplasia ossificans progressiva. In cells migrating into BMP2 implants, DDR2 is co-expressed with GLI1, a skeletal stem cell marker, and DDR2/GLI1-positive cells participate in BMP2-induced bone formation where they contribute to chondrogenic and osteogenic lineages. Consistent with this distribution, conditional knockout of Ddr2 in Gli1-expressing cells inhibited bone formation to the same extent seen in globally Ddr2-deficient animals. This response was explained by selective inhibition of Gli1+ cell proliferation without changes in apoptosis. The basis for this DDR2 requirement was explored further using bone marrow stromal cells. Although Ddr2 deficiency inhibited BMP2-dependent chondrocyte and osteoblast differentiation and in vivo, bone formation, early BMP responses including SMAD phosphorylation remained largely intact. Instead, Ddr2 deficiency reduced the nuclear/cytoplasmic ratio of the Hippo pathway intermediates, YAP and TAZ. This suggests that DDR2 regulates Hippo pathway-mediated responses to the collagen matrix, which subsequently affect BMP responsiveness. In summary, DDR2 is an important modulator of BMP signaling and a potential therapeutic target both for enhancing regeneration and treating HO.

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盘状蛋白结构域受体2是异位骨形成过程中BMP信号的重要调节剂
骨形态发生蛋白对骨再生/骨折愈合至关重要,但也可诱导异位骨化(HO)。了解调节BMP信号的辅助因子将提供增强BMP依赖性再生和预防HO的方法。本研究的重点是胶原受体盘状蛋白结构域受体2 (DDR2)调节BMP活性的能力。结果表明,在ddr2缺陷小鼠中,皮下植入BMP2诱导骨形成的功能严重受损。此外,Ddr2缺乏会减弱表达与人类进行性骨化性纤维发育不良相关的ACVR1突变的小鼠的HO。在迁移到BMP2植入物的细胞中,DDR2与骨骼干细胞标志物GLI1共表达,DDR2/GLI1阳性细胞参与BMP2诱导的骨形成,促进软骨和成骨谱系。与这种分布一致的是,在gli1表达细胞中条件敲除Ddr2抑制骨形成的程度与全球Ddr2缺陷动物相同。这种反应是通过选择性抑制Gli1+细胞增殖而不改变凋亡来解释的。利用骨髓基质细胞进一步探讨了DDR2需求的基础。尽管Ddr2缺乏抑制bmp2依赖性软骨细胞和成骨细胞的分化和体内骨形成,但早期BMP反应包括SMAD磷酸化在很大程度上保持不变。相反,Ddr2缺失降低了Hippo通路中间体YAP和TAZ的核/细胞质比例。这表明DDR2调节Hippo通路介导的对胶原基质的反应,从而影响BMP的反应。综上所述,DDR2是BMP信号的重要调节剂,也是促进再生和治疗HO的潜在治疗靶点。
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来源期刊
Bone Research
Bone Research CELL & TISSUE ENGINEERING-
CiteScore
20.00
自引率
4.70%
发文量
289
审稿时长
20 weeks
期刊介绍: Established in 2013, Bone Research is a newly-founded English-language periodical that centers on the basic and clinical facets of bone biology, pathophysiology, and regeneration. It is dedicated to championing key findings emerging from both basic investigations and clinical research concerning bone-related topics. The journal's objective is to globally disseminate research in bone-related physiology, pathology, diseases, and treatment, contributing to the advancement of knowledge in this field.
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