用于测试生物材料的骨软骨缺损动物模型

IF 3.4 Q2 BIOCHEMICAL RESEARCH METHODS Biochemistry Research International Pub Date : 2020-01-28 eCollection Date: 2020-01-01 DOI:10.1155/2020/9659412
Xiangbo Meng, Reihane Ziadlou, Sibylle Grad, Mauro Alini, Chunyi Wen, Yuxiao Lai, Ling Qin, Yanyan Zhao, Xinluan Wang
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引用次数: 0

摘要

骨软骨缺损(OCD)的治疗仍然是骨科领域的一大挑战。组织工程为 OCD 的再生带来了良好的前景。鉴于组织工程的重要性,建立一个合适的动物模型来评估植入生物材料的降解性、生物相容性以及与宿主骨/软骨组织的相互作用对于体内 OCD 修复至关重要。目前,通常用于制造骨软骨损伤的模型动物包括大鼠、兔子、狗、猪、山羊和绵羊马以及非人灵长类动物。了解每种动物模型在实验准确性和有效性方面的优缺点至关重要。因此,本综述旨在介绍用于测试生物材料的常见 OCD 动物模型,并讨论它们在转化研究中的应用。此外,我们还综述了建立 OCD 模型的手术方案和促进骨软骨再生的生物材料。对于小动物,通常选择股骨髁沟等非承重区域来测试生物材料的降解、生物相容性以及植入生物材料与宿主组织的相互作用。对于更接近临床应用的大型动物,则选择负重区(股骨内侧髁)来测试生物材料的耐久性和愈合效果。这篇综述为骨软骨再生新策略的开发选择合适的动物模型提供了重要参考。
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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Animal Models of Osteochondral Defect for Testing Biomaterials.

The treatment of osteochondral defects (OCD) remains a great challenge in orthopaedics. Tissue engineering holds a good promise for regeneration of OCD. In the light of tissue engineering, it is critical to establish an appropriate animal model to evaluate the degradability, biocompatibility, and interaction of implanted biomaterials with host bone/cartilage tissues for OCD repair in vivo. Currently, model animals that are commonly deployed to create osteochondral lesions range from rats, rabbits, dogs, pigs, goats, and sheep horses to nonhuman primates. It is essential to understand the advantages and disadvantages of each animal model in terms of the accuracy and effectiveness of the experiment. Therefore, this review aims to introduce the common animal models of OCD for testing biomaterials and to discuss their applications in translational research. In addition, we have reviewed surgical protocols for establishing OCD models and biomaterials that promote osteochondral regeneration. For small animals, the non-load-bearing region such as the groove of femoral condyle is commonly chosen for testing degradation, biocompatibility, and interaction of implanted biomaterials with host tissues. For large animals, closer to clinical application, the load-bearing region (medial femoral condyle) is chosen for testing the durability and healing outcome of biomaterials. This review provides an important reference for selecting a suitable animal model for the development of new strategies for osteochondral regeneration.

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来源期刊
Biochemistry Research International
Biochemistry Research International BIOCHEMICAL RESEARCH METHODS-
CiteScore
6.30
自引率
0.00%
发文量
27
审稿时长
14 weeks
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