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平面细胞极性响应底物应变来使成骨细胞分裂对齐。

Planar cell polarity aligns osteoblast division in response to substrate strain.

作者信息

Galea Gabriel L, Meakin Lee B, Savery Dawn, Taipaleenmaki Hanna, Delisser Peter, Stein Gary S, Copp Andrew J, van Wijnen Andre J, Lanyon Lance E, Price Joanna S

机构信息

School of Veterinary Sciences, University of Bristol, Bristol, UK.

出版信息

J Bone Miner Res. 2015 Mar;30(3):423-35. doi: 10.1002/jbmr.2377.

Abstract

Exposure of bone to dynamic strain increases the rate of division of osteoblasts and also influences the directional organization of the cellular and molecular structure of the bone tissue that they produce. Here, we report that brief exposure to dynamic substrate strain (sufficient to rapidly stimulate cell division) influences the orientation of osteoblastic cell division. The initial proliferative response to strain involves canonical Wnt signaling and can be blocked by sclerostin. However, the strain-related orientation of cell division is independently influenced through the noncanonical Wnt/planar cell polarity (PCP) pathway. Blockade of Rho-associated coiled kinase (ROCK), a component of the PCP pathway, prevents strain-related orientation of division in osteoblast-like Saos-2 cells. Heterozygous loop-tail mutation of the core PCP component van Gogh-like 2 (Vangl2) in mouse osteoblasts impairs the orientation of division in response to strain. Examination of bones from Vangl2 loop-tail heterozygous mice by µCT and scanning electron microscopy reveals altered bone architecture and disorganized bone-forming surfaces. Hence, in addition to the well-accepted role of PCP involvement in response to developmental cues during skeletal morphogenesis, our data reveal that this pathway also acts postnatally, in parallel with canonical Wnt signaling, to transduce biomechanical cues into skeletal adaptive responses. The simultaneous and independent actions of these two pathways appear to influence both the rate and orientation of osteoblast division, thus fine-tuning bone architecture to meet the structural demands of functional loading.

摘要

骨骼暴露于动态应变会增加成骨细胞的分裂速率,还会影响它们所产生的骨组织的细胞和分子结构的定向组织。在此,我们报告短暂暴露于动态基质应变(足以快速刺激细胞分裂)会影响成骨细胞分裂的方向。对应变的初始增殖反应涉及经典Wnt信号传导,并且可被硬化蛋白阻断。然而,细胞分裂的应变相关方向是通过非经典Wnt/平面细胞极性(PCP)途径独立影响的。阻断PCP途径的一个组成部分Rho相关卷曲激酶(ROCK)可防止成骨样Saos-2细胞中与应变相关的分裂方向。小鼠成骨细胞中核心PCP成分类原钙粘蛋白2(Vangl2)的杂合环尾突变会损害对应变的分裂方向。通过µCT和扫描电子显微镜检查Vangl2环尾杂合小鼠的骨骼,发现骨结构改变且骨形成表面紊乱。因此,除了PCP在骨骼形态发生过程中参与对发育线索的反应这一广为人知的作用外,我们的数据还表明该途径在出生后也发挥作用,与经典Wnt信号传导并行,将生物力学线索转化为骨骼适应性反应。这两条途径的同时且独立作用似乎会影响成骨细胞分裂的速率和方向,从而微调骨骼结构以满足功能负荷的结构需求。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a7dc/4359016/db3b635ce723/jbmr0030-0423-f1.jpg

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