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大鼠中骨形态发生蛋白2诱导的缺损愈合与固定器刚度的相互作用调节基质排列和收缩。

The Interaction of BMP2-Induced Defect Healing in Rat and Fixator Stiffness Modulates Matrix Alignment and Contraction.

作者信息

Schwarz Carolin, Ott Claus-Eric, Wulsten Dag, Brauer Erik, Schreivogel Sophie, Petersen Ansgar, Hassanein Kerstin, Roewer Linda, Schmidt Tanja, Willie Bettina M, Duda Georg N

机构信息

Julius Wolff Institute and Center for Musculoskeletal Surgery Charité - Universitätsmedizin Berlin corporate member of Freie Universität Berlin Humboldt-Universität zu Berlin and Berlin Institute of Health Berlin Germany.

Berlin-Brandenburg Center for Regenerative Therapies (BCRT) Charité - Universitätsmedizin Berlin corporate member of Freie Universität Berlin Humboldt-Universität zu Berlin and Berlin Institute of Health Berlin Germany.

出版信息

JBMR Plus. 2018 Apr 17;2(3):174-186. doi: 10.1002/jbm4.10031. eCollection 2018 May.

Abstract

Successful fracture healing requires a tight interplay between mechanical and biological cues. In vitro studies illustrated that mechanical loading modulates bone morphogenetic protein (BMP) signaling. However, in the early phases of large bone defect regeneration in vivo, the underlying mechanisms leading to this mechanosensation remained unknown. We investigated the interaction of BMP2 stimulation and mechanical boundary conditions in a rat critical-sized femoral defect model (5 mm) stabilized with three distinctly different external fixator stiffness. Defects were treated with 5 μg rhBMP2 loaded on an absorbable collagen sponge. Early matrix alignment was monitored by second-harmonic generation imaging. Bony bridging of defects and successive healing was monitored by histology at day 7 and day 14 as well as in vivo microCT at days 10, 21, and 42 post-operation. Femora harvested at day 42 were characterized mechanically assessing torsional load to failure ex vivo. At tissue level, differences between groups were visible at day 14 with manifest bone formation in the microCT. Histologically, we observed prolonged chondrogenesis upon flexible fixation, whereas osteogenesis started earlier after rigid and semirigid fixation. At later time points, there was a boost of bone tissue formation upon flexible fixation, whereas other groups already displayed signs of tissue maturation. Based on gene expression profiling, we analyzed the mechanobiological interplay. Already at day 3, these analyses revealed differences in expression pattern, specifically of genes involved in extracellular matrix formation. Gene regulation correlating with fixator stiffness was pronounced at day 7 comprising genes related to immunological processes and cellular contraction. The influence of loading on matrix contraction was further investigated and confirmed in a 3D bioreactor. Taken together, we demonstrate an early onset of mechanical conditions influencing BMP2-induced defect healing and shed light on gene regulatory networks associated with extracellular matrix organization and contraction that seemed to directly impact healing outcomes. © 2018 The Authors. is published by Wiley Periodicals, Inc. on behalf of the American Society for Bone and Mineral Research.

摘要

成功的骨折愈合需要机械信号和生物信号之间紧密的相互作用。体外研究表明,机械负荷可调节骨形态发生蛋白(BMP)信号传导。然而,在体内大骨缺损再生的早期阶段,导致这种机械感觉的潜在机制仍然未知。我们在大鼠临界大小股骨缺损模型(5毫米)中研究了BMP2刺激与机械边界条件的相互作用,该模型用三种截然不同的外固定器刚度进行稳定。缺损用负载于可吸收胶原海绵上的5μg重组人BMP2进行治疗。通过二次谐波产生成像监测早期基质排列。在术后第7天和第14天通过组织学以及在术后第10天、第21天和第42天通过体内微型计算机断层扫描(microCT)监测缺损的骨桥接和连续愈合。在第42天收获的股骨进行力学特性分析,通过体外扭转负荷至破坏进行评估。在组织水平,各组之间的差异在第14天可见,微型计算机断层扫描中有明显的骨形成。组织学上,我们观察到柔性固定时软骨形成延长,而刚性和半刚性固定后成骨开始较早。在后期时间点,柔性固定时骨组织形成增加,而其他组已经显示出组织成熟的迹象。基于基因表达谱分析,我们分析了机械生物学相互作用。在第3天,这些分析就揭示了表达模式的差异,特别是参与细胞外基质形成的基因。与固定器刚度相关的基因调控在第7天很明显,包括与免疫过程和细胞收缩相关 的基因。在三维生物反应器中进一步研究并证实了负荷对基质收缩的影响。综上所述,我们证明了机械条件对BMP2诱导的缺损愈合有早期影响,并揭示了与细胞外基质组织和收缩相关 的基因调控网络,这些网络似乎直接影响愈合结果。©2018作者。本文由Wiley Periodicals, Inc.代表美国骨与矿物质研究学会发表。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3991/6124159/8c7cbacd1ae1/JBM4-2-174-g001.jpg

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