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一种类似千斤顶的机械装置促进了新生小鼠的自发性骨折愈合。

A mechanical Jack-like Mechanism drives spontaneous fracture healing in neonatal mice.

机构信息

Department of Molecular Genetics, Weizmann Institute of Science, P.O. Box 26, Rehovot 76100, Israel.

Department of Molecular Genetics, Weizmann Institute of Science, P.O. Box 26, Rehovot 76100, Israel.

出版信息

Dev Cell. 2014 Oct 27;31(2):159-70. doi: 10.1016/j.devcel.2014.08.026.

Abstract

Treatment of fractured bones involves correction of displacement or angulation, known as reduction. However, angulated long-bone fractures in infants often heal and regain proper morphology spontaneously, without reduction. To study the mechanism underlying spontaneous regeneration of fractured bones, we left humeral fractures induced in newborn mice unstabilized, and rapid realignment of initially angulated bones was seen. This realignment was surprisingly not mediated by bone remodeling, but instead involved substantial movement of the two fragments prior to callus ossification. Analysis of gene expression profiles, cell proliferation, and bone growth revealed the formation of a functional, bidirectional growth plate at the concave side of the fracture. This growth plate acts like a mechanical jack, generating opposing forces that straighten the two fragments. Finally, we show that muscle force is important in this process, as blocking muscle contraction disrupts growth plate formation, leading to premature callus ossification and failed reduction.

摘要

骨折的治疗包括纠正移位或成角,即复位。然而,婴儿的长骨成角骨折往往会自行愈合并恢复正常形态,无需复位。为了研究骨折自发再生的机制,我们让新生小鼠的肱骨骨折不固定,可见最初成角的骨头迅速重新对齐。令人惊讶的是,这种重新对齐不是由骨重塑介导的,而是在骨痂骨化之前,两个骨段发生了大量的移动。对基因表达谱、细胞增殖和骨生长的分析表明,在骨折的凹侧形成了一个功能性的、双向的生长板。这个生长板就像一个机械千斤顶,产生相反的力使两个骨段变直。最后,我们表明肌肉力量在这个过程中很重要,因为阻断肌肉收缩会破坏生长板的形成,导致过早的骨痂骨化和复位失败。

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