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在牵张成骨过程中,机械张力应力可诱导骨形态发生蛋白(BMP)-2和BMP-4的表达,但不诱导BMP-6、BMP-7和生长分化因子(GDF)-5 mRNA的表达。

Mechanical tension-stress induces expression of bone morphogenetic protein (BMP)-2 and BMP-4, but not BMP-6, BMP-7, and GDF-5 mRNA, during distraction osteogenesis.

作者信息

Sato M, Ochi T, Nakase T, Hirota S, Kitamura Y, Nomura S, Yasui N

机构信息

Department of Orthopaedic Surgery, Osaka University Medical School, Suita, Japan.

出版信息

J Bone Miner Res. 1999 Jul;14(7):1084-95. doi: 10.1359/jbmr.1999.14.7.1084.

Abstract

Bone lengthening with osteotomy and gradual distraction was achieved in 57 rats, and the effect of mechanical tension-stress on gene expression of bone morphogenetic proteins (BMPs) was investigated by in situ hybridization and Northern blot analysis using probes of BMP-2, BMP-4, BMP-6, BMP-7, and growth/differentiation factor (GDF)-5. There was a lag phase for 7 days after femoral osteotomy until gradual distraction was carried out for 21 days at a rate of 0. 25 mm/12 h using a small external fixator. The signals of the above BMPs mRNA were not detected in the intact rat bone but they were induced after osteotomy except those for BMP-7. By 4 days after osteotomy, BMP-2 and BMP-4 mRNAs were detected in chondrogenic precursor cells in the subperiosteal immature callus. BMP-6 and GDF-5 mRNA were detected in more differentiated cells in chondroid bone. By 7 days after osteotomy, cartilaginous external callus and bony endosteal callus were formed. Meanwhile, the signals of BMP-2 and BMP-4 mRNAs declined to preoperative levels, whereas the signals of BMP-6 and GDF-5 mRNAs were rather elevated. As distraction was started, the callus elongated and eventually separated into proximal and distal segments forming a fibrous interzone in the middle. Expression of BMP-2 and BMP-4 mRNAs was markedly induced at this stage. Their signals were detected widely among chondrogenic and osteogenic cells and their precursor cells sustaining mechanical tension-stress at the fibrous interzone. BMP-6 and GDF-5 mRNAs were detected exclusively in chondrogenic cells at both ends of the fibrous interzone, where endochondral ossification occurred. But neither mRNA was detected in terminally differentiated hypertrophic chondrocytes. As distraction advanced, the cartilage was progressively resorbed from both ends and new bone was formed directly by intramembranous ossification. There was no new cartilage formation in the advanced stage of distraction. The signals of BMP-6 and GDF-5 mRNA declined by this stage, while those of BMP-2 and BMP-4 were maintained at high level for as long as distraction was continued. After completion of distraction, the fibrous interzone fused and the lengthened segment was consolidated. BMP-2, BMP-4, BMP-6, nor GDF-5 was expressed at this stage. The signals of BMP-7 were not detected throughout the experiment. The present results suggest that excellent and uninterrupted bone formation during distraction osteogenesis owes to enhanced expression of BMP-2 and BMP-4 genes by mechanical tension-stress. Abundant gene products of BMP-2 and BMP-4 could induce in situ bone formation by paracrine and autocrine mechanisms.

摘要

对57只大鼠进行截骨术并逐步牵引以实现骨延长,使用骨形态发生蛋白(BMP)-2、BMP-4、BMP-6、BMP-7和生长/分化因子(GDF)-5的探针,通过原位杂交和Northern印迹分析研究机械牵张应力对骨形态发生蛋白基因表达的影响。股骨截骨术后有7天的延迟期,之后使用小型外固定器以0.25 mm/12 h的速度进行21天的逐步牵引。在完整的大鼠骨骼中未检测到上述BMPs mRNA的信号,但截骨术后除BMP-7外均被诱导表达。截骨术后4天,在骨膜下未成熟骨痂的软骨形成前体细胞中检测到BMP-2和BMP-4 mRNA。在类软骨骨中更分化的细胞中检测到BMP-6和GDF-5 mRNA。截骨术后7天,形成软骨性外骨痂和骨性骨内膜骨痂。同时,BMP-2和BMP-4 mRNA的信号下降至术前水平,而BMP-6和GDF-5 mRNA的信号则有所升高。开始牵引后,骨痂拉长并最终分为近端和远端节段,中间形成纤维中间区。在此阶段,BMP-2和BMP-4 mRNA的表达明显被诱导。在纤维中间区承受机械牵张应力的软骨形成细胞、成骨细胞及其前体细胞中广泛检测到它们的信号。BMP-6和GDF-5 mRNA仅在纤维中间区两端发生软骨内成骨的软骨形成细胞中检测到。但在终末分化的肥大软骨细胞中均未检测到mRNA。随着牵引的进行,软骨从两端逐渐被吸收,新骨通过膜内成骨直接形成。在牵引后期没有新的软骨形成。此阶段BMP-6和GDF-5 mRNA的信号下降,而BMP-2和BMP-4的信号在持续牵引期间一直维持在高水平。牵引完成后,纤维中间区融合,延长节段巩固。此阶段未表达BMP-2、BMP-4、BMP-6和GDF-5。在整个实验过程中均未检测到BMP-7的信号。目前的结果表明,牵张成骨过程中良好且不间断的骨形成归因于机械牵张应力增强了BMP-2和BMP-4基因的表达。BMP-2和BMP-4丰富的基因产物可通过旁分泌和自分泌机制诱导原位骨形成。

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