Prrx1和miR-140-3p之间的相互负反馈调节再生鹿角的快速软骨形成

IF 9.2 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Pengfei Hu, Guokun Zhang, Hengxing Ba, Jing Ren, Jiping Li, Zhen Wang, Chunyi Li
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引用次数: 0

摘要

在生长阶段,鹿角的软骨形成速度非常快。鹿角是由其生长中心储备间充质(RM)细胞形成的,这些细胞是成对相关同工酶 1(Prrx1)阳性骨膜细胞的衍生物。然而,驱动快速软骨形成的潜在机制尚不清楚。在此,我们通过RNA测序和ATAC测序分析了鹿茸生长中心内处于不同分化阶段的三个组织层(RM、前软骨和软骨)的miRNA表达谱和染色质状态。我们发现,在快速生长的鹿茸中,miR-140-3p 是上调程度最高的 miRNA,从 RM 到软骨层,上调程度不断增加。我们还发现,Prrx1 是 miR-140-3p 的关键上游调控因子,这一点通过对 RM 细胞进行 Prrx1 CUT&Tag 测序得到了证实。通过多种方法(三维软骨培养和异种鹿茸模型),我们证明了Prrx1和miR-140-3p在鹿茸生长中心起着相互负反馈的作用,下调PRRX1/上调miR-140-3p促进了RM细胞和异种鹿茸的快速软骨形成。因此,我们得出结论,Prrx1 和 miR-140-3p 之间的相互负反馈对于平衡再生鹿茸的间充质增殖和软骨分化至关重要。我们进一步提出,再生鹿角的软骨生成机制将为理解人类软骨再生和修复的调控提供参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reciprocal negative feedback between Prrx1 and miR-140-3p regulates rapid chondrogenesis in the regenerating antler
During growth phase, antlers exhibit a very rapid rate of chondrogenesis. The antler is formed from its growth center reserve mesenchyme (RM) cells, which have been found to be the derivatives of paired related homeobox 1 (Prrx1)-positive periosteal cells. However, the underlying mechanism that drives rapid chondrogenesis is not known. Herein, the miRNA expression profiles and chromatin states of three tissue layers (RM, precartilage, and cartilage) at different stages of differentiation within the antler growth center were analyzed by RNA-sequencing and ATAC-sequencing. We found that miR-140-3p was the miRNA that exhibited the greatest degree of upregulation in the rapidly growing antler, increasing from the RM to the cartilage layer. We also showed that Prrx1 was a key upstream regulator of miR-140-3p, which firmly confirmed by Prrx1 CUT&Tag sequencing of RM cells. Through multiple approaches (three-dimensional chondrogenic culture and xenogeneic antler model), we demonstrated that Prrx1 and miR-140-3p functioned as reciprocal negative feedback in the antler growth center, and downregulating PRRX1/upregulating miR-140-3p promoted rapid chondrogenesis of RM cells and xenogeneic antler. Thus, we conclude that the reciprocal negative feedback between Prrx1 and miR-140-3p is essential for balancing mesenchymal proliferation and chondrogenic differentiation in the regenerating antler. We further propose that the mechanism underlying chondrogenesis in the regenerating antler would provide a reference for helping understand the regulation of human cartilage regeneration and repair.
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来源期刊
Cellular & Molecular Biology Letters
Cellular & Molecular Biology Letters 生物-生化与分子生物学
CiteScore
11.60
自引率
13.30%
发文量
101
审稿时长
3 months
期刊介绍: Cellular & Molecular Biology Letters is an international journal dedicated to the dissemination of fundamental knowledge in all areas of cellular and molecular biology, cancer cell biology, and certain aspects of biochemistry, biophysics and biotechnology.
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