Abou-Khalil Rana, Colnot Céline
INSERM UMR1163, Université Paris Descartes-Sorbonne Paris Cité, Institut Imagine, Paris, France.
INSERM UMR1163, Université Paris Descartes-Sorbonne Paris Cité, Institut Imagine, Paris, France.
Bone. 2014 Jul;64:211-21. doi: 10.1016/j.bone.2014.03.046. Epub 2014 Apr 4.
Although bone repairs through a very efficient regenerative process in 90% of the patients, many factors can cause delayed or impaired healing. To date, there are no reliable biological parameters to predict or diagnose bone repair defects. Orthopedic surgeons mostly base their diagnoses on radiographic analyses. With the recent progress in our understanding of the bone repair process, new methods may be envisioned. Animal models have allowed us to define the key steps of bone regeneration and the biological and mechanical factors that may influence bone healing in positive or negative ways. Most importantly, small animal models such as mice have provided powerful tools to apprehend the genetic bases of normal and impaired bone healing. The current review presents a state of the art of the genetically modified mouse models that have advanced our understanding of the cellular and molecular components of bone regeneration and repair. The review illustrates the use of these models to define the role of inflammation, skeletal cell lineages, signaling pathways, the extracellular matrix, osteoclasts and angiogenesis. These genetic mouse models promise to change the field of orthopedic surgery to help establish genetic predispositions for delayed repair, develop models of non-union that mimic the human conditions and elaborate new therapeutic approaches to enhance bone regeneration.
尽管90%的患者可通过非常有效的再生过程实现骨修复,但许多因素可导致愈合延迟或受损。迄今为止,尚无可靠的生物学参数来预测或诊断骨修复缺陷。骨科医生大多依据影像学分析进行诊断。随着我们对骨修复过程认识的最新进展,或许可以设想新的方法。动物模型使我们能够确定骨再生的关键步骤以及可能以正面或负面方式影响骨愈合的生物学和力学因素。最重要的是,诸如小鼠等小动物模型为理解正常和受损骨愈合的遗传基础提供了强大工具。本综述介绍了转基因小鼠模型的现状,这些模型增进了我们对骨再生和修复的细胞及分子成分的理解。该综述阐述了利用这些模型来确定炎症、骨骼细胞谱系、信号通路、细胞外基质、破骨细胞和血管生成的作用。这些基因小鼠模型有望改变骨科手术领域,以帮助确定延迟修复的遗传易感性,开发模拟人类情况的骨不连模型,并精心设计新的治疗方法来促进骨再生。