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Cbl与PI3K相互作用的丧失通过增强成骨定向和分化来调节骨膜对骨折的反应。

Loss of Cbl-PI3K interaction modulates the periosteal response to fracture by enhancing osteogenic commitment and differentiation.

作者信息

Scanlon Vanessa, Walia Bhavita, Yu Jungeun, Hansen Marc, Drissi Hicham, Maye Peter, Sanjay Archana

机构信息

Department of Orthopaedic Surgery, United States.

Department of Orthopaedic Surgery, United States; Department of Genetics and Genome Sciences, United States.

出版信息

Bone. 2017 Feb;95:124-135. doi: 10.1016/j.bone.2016.11.020. Epub 2016 Nov 22.

Abstract

The periosteum contains multipotent skeletal progenitors that contribute to bone repair. The signaling pathways regulating the response of periosteal cells to fracture are largely unknown. Phosphatidylinositol-3 Kinase (PI3K), a prominent lipid kinase, is a major signaling protein downstream of several factors that regulate osteoblast differentiation. Cbl is an E3 ubiquitin ligase and a major adaptor protein that binds to the p85 regulatory subunit and modulates PI3K activity. Substitution of tyrosine 737 to phenylalanine (Y737F) in Cbl abolishes the interaction between Cbl and p85 subunit without affecting the Cbl's ubiquitin ligase function. Here, we investigated the role of PI3K signaling during the very early stages of fracture healing using Osterix reporter mice. We found that the absence of PI3K regulation by Cbl resulted in robust periosteal thickening, with increased proliferation of periosteal cells. While the multipotent properties of periosteal progenitors to differentiate into chondrocytes and adipocytes did not change, osteogenic differentiation in the absence of Cbl-PI3K interaction was highly augmented. The increased stability and nuclear localization of Osterix observed in periosteal cells lacking Cbl-PI3K interaction may explain this enhanced osteogenic differentiation since the expression of Osterix transcriptional target genes including osteocalcin and BSP are increased in YF cells. Overall, our findings highlight a hitherto unexplored and novel role for Cbl and PI3K in modulating the osteogenic response of periosteal cells during the early stages of fracture repair.

摘要

骨膜含有有助于骨修复的多能骨骼祖细胞。调节骨膜细胞对骨折反应的信号通路在很大程度上尚不清楚。磷脂酰肌醇-3激酶(PI3K)是一种重要的脂质激酶,是调节成骨细胞分化的几个因子下游的主要信号蛋白。Cbl是一种E3泛素连接酶,也是一种主要的衔接蛋白,它与p85调节亚基结合并调节PI3K活性。将Cbl中的酪氨酸737替换为苯丙氨酸(Y737F)可消除Cbl与p85亚基之间的相互作用,而不影响Cbl的泛素连接酶功能。在此,我们使用Osterix报告基因小鼠研究了PI3K信号在骨折愈合早期阶段的作用。我们发现,Cbl缺失导致的PI3K调节缺失会导致骨膜显著增厚,骨膜细胞增殖增加。虽然骨膜祖细胞分化为软骨细胞和脂肪细胞的多能特性没有改变,但在缺乏Cbl-PI3K相互作用的情况下,成骨分化显著增强。在缺乏Cbl-PI3K相互作用的骨膜细胞中观察到的Osterix稳定性和核定位增加,可能解释了这种增强的成骨分化,因为包括骨钙素和骨桥蛋白在内的Osterix转录靶基因在YF细胞中的表达增加。总体而言,我们的研究结果突出了Cbl和PI3K在骨折修复早期阶段调节骨膜细胞成骨反应方面迄今未被探索的新作用。

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