软骨内骨化
细胞生物学
骨化
软骨
生物
解剖
再生(生物学)
软骨发生
骨化中心
细胞生长
旁分泌信号
胚芽
鹿角
膜内骨化
细胞
细胞分化
过程(计算)
体细胞
软骨膜
延伸率
作者
Hengxing Ba,Shidian He,Hai‐Xi Sun,Xin Wang,Hang Zhang,Qiuting Deng,Yue Yuan,Chang Liu,Chang Liu,Zhen Wang,Jiping Li,Liuwei Xie,Yujiao Tang,Jimei Wang,Chao Ma,Nan Li,Pengfei Hu,Qianqian Guo,Guokun Zhang,Dawn Coates
出处
期刊:iMeta
[Wiley]
日期:2025-12-01
卷期号:4 (6): e70097-e70097
摘要
Bone growth and regeneration remain major clinical challenges. Deer antlers, the fastest-growing mammalian bone, regenerate via endochondral ossification and elongate up to 2 cm per day, far surpassing the ~2 cm annual growth of human growth plates. Here, we systematically mapped the cellular landscape of the antler growth center (AGC) using single-nucleus RNA sequencing, chromatin accessibility profiling, and spatial transcriptomics. The AGC harbors a large stem-progenitor pool that drives rapid elongation through vigorous proliferation supported by paracrine signaling. These proliferative cells exhibit a transcriptional program with intrinsically low tumorigenic potential, associated with apoptotic regulation. The AGC also establishes a vascularized niche that supports robust angiogenesis, sustains accelerated cartilage growth, and enables efficient recruitment of osteogenic cells. Notably, antlers employ a hybrid ossification strategy, combining endochondral ossification with direct hypertrophic chondrocyte-to-osteoblast transdifferentiation, likely via PHEX⁺ intermediates. Collectively, these findings refine fundamental concepts of endochondral ossification and offer insights for regenerative bone therapies.
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