膝关节骨关节炎的再生工程动物模型。

IF 2.2 Q3 ENGINEERING, BIOMEDICAL
Caldon Jayson Esdaille, Chinedu Cletus Ude, Cato T Laurencin
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引用次数: 7

摘要

膝关节骨关节炎(OA)是世界范围内最常见的滑膜关节疾病,由于肥胖和人口老龄化的增加,其发病率不断上升。目前正在进行大量的研究,以进一步了解膝关节骨关节炎的病理生理学,以便在保守治疗失败后设计更少侵入性和更有效的治疗方案。再生工程技术由于其创新的方法,在治疗OA方面显示出有希望的临床前结果,并已成为一个热门的研究领域。为了研究这些治疗方法,OA动物模型已用于临床前试验。在动物的膝关节/膝关节中诱发OA的机制有多种,这些机制可以根据OA的病因进行分类。因此,在研究再生工程技术以将其有效性正确转化为临床试验的研究中,利用正确的动物模型是至关重要的。本文综述了可用于临床前再生工程试验的OA动物模型及其分类系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Regenerative Engineering Animal Models for Knee Osteoarthritis.

Regenerative Engineering Animal Models for Knee Osteoarthritis.

Regenerative Engineering Animal Models for Knee Osteoarthritis.

Regenerative Engineering Animal Models for Knee Osteoarthritis.

Osteoarthritis (OA) of the knee is the most common synovial joint disorder worldwide, with a growing incidence due to increasing rates of obesity and an aging population. A significant amount of research is currently being conducted to further our understanding of the pathophysiology of knee osteoarthritis to design less invasive and more effective treatment options once conservative management has failed. Regenerative engineering techniques have shown promising preclinical results in treating OA due to their innovative approaches and have emerged as a popular area of study. To investigate these therapeutics, animal models of OA have been used in preclinical trials. There are various mechanisms by which OA can be induced in the knee/stifle of animals that are classified by the etiology of the OA that they are designed to recapitulate. Thus, it is essential to utilize the correct animal model in studies that are investigating regenerative engineering techniques for proper translation of efficacy into clinical trials. This review discusses the various animal models of OA that may be used in preclinical regenerative engineering trials and the corresponding classification system.

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来源期刊
CiteScore
4.90
自引率
11.50%
发文量
41
期刊介绍: Regenerative Engineering is an international journal covering convergence of the disciplines of tissue engineering, advanced materials science, stem cell research, the physical sciences, and areas of developmental biology. This convergence brings exciting opportunities to translate bench-top research into bedside methods, allowing the possibility of moving beyond maintaining or repairing tissues to regenerating them. The journal encourages both top-down engineering approaches and bottom-up strategies integrating materials science with stem cell research and developmental biology. Convergence papers on instructive biomaterials, stimuli-responsive biomaterials, micro- and nano-patterning for regenerative engineering, elastomeric biomaterials, hydrogels for tissue engineering, and rapid prototyping and bioprinting approaches are particularly welcome. The journal provides a premier, single-blind peer-reviewed forum for the publication of original papers, authoritative reviews, rapid communications, news and views, and opinion papers addressing the most important issues and efforts toward successfully regenerating complex human tissues and organs. All research articles feature a lay abstract highlighting the relevance and future impact for patients, government and other health officials, and members of the general public. Bridging the gap between the lab and the clinic, the journal also serves as a dedicated platform for showcasing translational research that brings basic scientific research and discoveries into clinical methods and therapies, contributing to the improvement of human health care. Topics covered in Regenerative Engineering and Translational Medicine include: Advanced materials science for regenerative and biomedical applicationsStem cells for tissue regenerationDrug delivery for tissue regenerationNanomaterials and nanobiotechnology for tissue regenerationStudies combining tissue engineering/regeneration with developmental biologyConvergence research in pre-clinical and clinical phases
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