Animal models for studying metaphyseal bone fracture healing.

IF 3.2 3区 医学 Q3 CELL & TISSUE ENGINEERING European cells & materials Pub Date : 2020-10-29 DOI:10.22203/eCM.v040a11
M Haffner-Luntzer, A Ignatius
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引用次数: 7

Abstract

An estimated 2 million osteoporotic fractures occur annually in the US, resulting in a dramatic reduction in quality of life for affected patients and a high economic burden for society. Osteoporotic fractures are frequently located in metaphyseal bone regions. They are often associated with healing complications, because of the reduced healing capacity of the diseased bone tissue, the poor primary stability of the fracture fixation in the fragile bone, and the high frequency of comorbidities in these patients. Therefore, osteoporotic fractures require optimised treatment strategies to ensure proper bone healing. Preclinical animal models can help understanding of the underlying mechanisms and development of new therapies. However, whereas diaphyseal fracture models are widely available, appropriate animal models for metaphyseal fracture healing are scarce, although essential for translational research. This review covers large and small animal models for metaphyseal fracture healing. General requirements for suitable animal models are presented, as well as advantages and disadvantages of the current models. Furthermore, differences and similarities between metaphyseal and diaphyseal bone fracture healing are discussed. Both large- and small-animal models are available for studying metaphyseal fracture healing, which mainly differ in fracture location and geometry as well as stabilisation techniques. Most common used fracture sites are distal femur and proximal tibia. Each model found in the literature has certain advantages and disadvantages; however, many lack standardisation resulting in a high variability or poor mimicking of the clinical situation. Therefore, further refinement ofanimal models is needed especially to study osteoporotic metaphyseal fracture healing.

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研究干骺端骨折愈合的动物模型。
据估计,美国每年发生200万例骨质疏松性骨折,严重降低了患者的生活质量,给社会带来了沉重的经济负担。骨质疏松性骨折常发生在干骺端。由于患病骨组织的愈合能力降低,骨折固定在脆弱骨中的初级稳定性差,并且这些患者的合并症发生率高,因此它们通常与愈合并发症有关。因此,骨质疏松性骨折需要优化治疗策略,以确保适当的骨愈合。临床前动物模型可以帮助理解潜在的机制和开发新的治疗方法。然而,尽管干骺端骨折模型广泛可用,但适合干骺端骨折愈合的动物模型却很少,尽管这对转化研究至关重要。本文综述了用于干骺端骨折愈合的大型和小型动物模型。介绍了适合动物模型的一般要求,以及现有模型的优缺点。此外,本文还讨论了干骺端和干骺端骨折愈合的异同。大型和小型动物模型均可用于研究干骺端骨折愈合,主要在骨折位置和几何形状以及稳定技术方面存在差异。最常见的骨折部位是股骨远端和胫骨近端。文献中发现的每种模型都有一定的优点和缺点;然而,许多缺乏标准化,导致高度可变性或对临床情况的模仿能力差。因此,需要进一步完善动物模型,特别是研究骨质疏松性干骺端骨折愈合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
European cells & materials
European cells & materials 生物-材料科学:生物材料
CiteScore
6.00
自引率
6.50%
发文量
55
审稿时长
1.5 months
期刊介绍: eCM provides an interdisciplinary forum for publication of preclinical research in the musculoskeletal field (Trauma, Maxillofacial (including dental), Spine and Orthopaedics). The clinical relevance of the work must be briefly mentioned within the abstract, and in more detail in the paper. Poor abstracts which do not concisely cover the paper contents will not be sent for review. Incremental steps in research will not be entertained by eCM journal.Cross-disciplinary papers that go across our scope areas are welcomed.
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