生长板中的初级纤毛协调长骨发育

IF 6.3 3区 综合性期刊 Q1 Multidisciplinary
Lei Zhang , Xiaoqiao Xu , Dike Tao , Xinyu Li , Pingping Niu , Xuyan Gong , Gongchen Li , Mengfei Yu , Yao Sun
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引用次数: 0

摘要

生长板在长骨发育和伸长中起着至关重要的作用,容纳有助于骨形成的干细胞。本研究探讨了调节干细胞命运的特化细胞器初级纤毛在长骨发育和修复中的作用。在这里,我们报告了初级纤毛在生长板的所有区域的存在,特别是在胚胎发育期间。空间转录组学和条件敲除(CKO)小鼠的分析发现,初级纤毛介导生长板内关键的发育信号通路。破坏生长板成软骨细胞或成骨细胞的初级纤毛通过激活Wnt信号通路和破坏细胞干性来破坏长骨发育。这导致Mmp13分泌升高,矿化异常和结构缺陷,最终阻碍骨伸长。延时成像显示CKO小鼠骨骼干细胞(ssc)异常有丝分裂频率增加,不对称分裂率降低。总之,我们的研究结果表明,初级纤毛对长骨发育至关重要,通过关键的信号通路调节干细胞的命运。初级纤毛的缺失导致Wnt信号过多和SSC干性破坏,损害骨伸长。这项研究强调了初级纤毛在骨骼发育中的重要作用,并提出了骨骼疾病的潜在治疗靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Primary cilia in growth plates orchestrate long bone development

Primary cilia in growth plates orchestrate long bone development
The growth plate plays a crucial role in long bone development and elongation, housing stem cells that contribute to bone formation. This study investigates the role of primary cilia, specialized organelles that regulate stem cell fate, in the development and repair of long bones. Here, we report the presence of primary cilia in all zones of the growth plate, particularly during embryonic development. Spatial transcriptomics and analysis of conditional knockout (CKO) mice identified that primary cilia mediate critical developmental signaling pathways within the growth plate. Disruption of primary cilia in growth plate chondroblasts or osteoblasts impaired long bone development by activating the Wnt signaling pathway and disrupting the cellular stemness. This resulted in elevated Mmp13 secretion, abnormal mineralization, and structural defects, ultimately hindering bone elongation. Time-lapse imaging showed an increased frequency of abnormal mitosis and a reduced rate of asymmetric division in skeletal stem cells (SSCs) from CKO mice. In conclusion, our findings indicated that primary cilia are critical for long bone development, regulating stem cell fate through key signaling pathways. Loss of primary cilia leads to excessive Wnt signaling and disruption of SSC stemness, impairing bone elongation. This study highlights the essential role of primary cilia in bone development and suggests potential therapeutic targets for skeletal disorders.
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来源期刊
Fundamental Research
Fundamental Research Multidisciplinary-Multidisciplinary
CiteScore
4.00
自引率
1.60%
发文量
294
审稿时长
79 days
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