软骨内骨化
假关节
转录组
骨愈合
骨形态发生蛋白
癌症研究
信号转导
细胞生物学
Wnt信号通路
医学
生物
遗传学
基因
解剖
软骨
基因表达
作者
Jonathan J. Rios,Conan Juan,John M. Shelton,Nandina Paria,Ila Oxendine,Meghan Wassell,Yared H. Kidane,Reuel Cornelia,Elise Jeffery,David A. Podeszwa,Simon J. Conway,Carol A. Wise,Robert J. Tower
出处
期刊:JCI insight
[American Society for Clinical Investigation]
日期:2024-07-11
卷期号:9 (16)
被引量:7
标识
DOI:10.1172/jci.insight.176802
摘要
The neurofibromatosis type 1 (NF1) RASopathy is associated with persistent fibrotic nonunions (pseudarthrosis) in human and mouse skeletal tissue. Here, we performed spatial transcriptomics to define the molecular signatures occurring during normal endochondral healing following fracture in mice. Within the control fracture callus, we observed spatially restricted activation of morphogenetic pathways, such as TGF-β, WNT, and BMP. To investigate the molecular mechanisms contributing to Nf1-deficient delayed fracture healing, we performed spatial transcriptomic analysis on a Postn-cre;Nf1fl/- (Nf1Postn) fracture callus. Transcriptional analyses, subsequently confirmed through phospho-SMAD1/5/8 immunohistochemistry, demonstrated a lack of BMP pathway induction in Nf1Postn mice. To gain further insight into the human condition, we performed spatial transcriptomic analysis of fracture pseudarthrosis tissue from a patient with NF1. Analyses detected increased MAPK signaling at the fibrocartilaginous-osseus junction. Similar to that in the Nf1Postn fracture, BMP pathway activation was absent within the pseudarthrosis tissue. Our results demonstrate the feasibility of delineating the molecular and tissue-specific heterogeneity inherent in complex regenerative processes, such as fracture healing, and reconstructing phase transitions representing endochondral bone formation in vivo. Furthermore, our results provide in situ molecular evidence of impaired BMP signaling underlying NF1 pseudarthrosis, potentially informing the clinical relevance of off-label BMP2 as a therapeutic intervention.
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