Jayson Sueters, Rowan van Heiningen, Ralph de Vries, Zeliha Guler, Judith Huirne, Theo Smit
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引用次数: 0
Abstract
Although various options are available to treat injured organs and peripheral nerves, none is without limitations. Auto- and allografts are the first choice of treatment, but tissue survival or functionality is not guaranteed due to often limited vascular and neural networks. In response, tissue-engineered solutions have been developed, yet clinical translations is rare. In this study, a systematic review was performed on tissue-engineered advancements for peripheral nerves and tissues, to aid future developments in bridging the gap toward the clinic by identifying high-potential solutions and unexplored areas. A systematic search was performed in PubMed, Embase, Web of Science, and Scopus until November 9, 2023. Search terms involved "tissue engineering," "guided," "tissue scaffold," and "tissue graft," together with "innervation" and "reinnervation." Original in vivo or in vitro studies meeting the inclusion criteria (tissue-engineered peripheral nerve/innervation of tissue) and no exclusion criteria (no full text available; written in foreign language; nonoriginal article; tissue-engineering of central nervous system; publication before 2012; insufficient study quality or reproducibility) were assessed. A total of 68 out of 3626 original studies were included. Data extraction was based on disease model, cell origin and host species, biomaterial nature and composition, and external stimuli of biological, chemical or physical origin. Although tissue engineering is still in its infancy, explored innervation strategies of today were highlighted with respect to biomaterials, cell types, and external stimuli. The findings emphasize that natural biomaterials, pre-seeding with autologous cell sources, and solutions for reproductive organs are beneficial for future research. Natural biomaterials possess important cues required for cell-material interaction and closely resemble native tissue in terms of biomechanical, geometrical and chemical composition. Autologous cells induce biomaterial functionalization. As these solutions pose no risk of immunorejection and have demonstrated good outcomes, they are most likely to fulfill the clinical demands.
虽然治疗受损器官和周围神经的方法多种多样,但没有一种是没有局限性的。自体和同种异体移植物是治疗的首选,但由于血管和神经网络的限制,组织存活或功能不能保证。作为回应,组织工程解决方案已经开发出来,但临床转化很少。在本研究中,系统回顾了周围神经和组织的组织工程进展,通过确定高潜力的解决方案和未开发的领域,帮助未来的发展弥合临床的差距。系统检索PubMed、Embase、Web of Science和Scopus,检索截止日期为2023年11月9日。搜索词包括“组织工程”、“引导”、“组织支架”和“组织移植”,以及“神经支配”和“神经再支配”。原始的体内或体外研究符合纳入标准(组织工程周围神经/组织的神经支配),没有排除标准(没有全文可用;用外语写的;nonoriginal文章;中枢神经系统组织工程;2012年以前出版;评估研究质量或可重复性不足。总共纳入了3626项原始研究中的68项。数据提取基于疾病模型、细胞来源和宿主物种、生物材料的性质和组成,以及生物、化学或物理来源的外部刺激。虽然组织工程仍处于起步阶段,但今天探索的神经支配策略在生物材料,细胞类型和外部刺激方面得到了强调。这些发现强调了天然生物材料、自体细胞源预播种和生殖器官解决方案对未来的研究是有益的。天然生物材料具有细胞-物质相互作用所需的重要线索,在生物力学、几何和化学组成方面与天然组织非常相似。自体细胞诱导生物材料功能化。由于这些解决方案不存在免疫排斥的风险,并且已经证明了良好的结果,它们最有可能满足临床需求。
期刊介绍:
The Journal of Tissue Engineering (JTE) is a peer-reviewed, open-access journal dedicated to scientific research in the field of tissue engineering and its clinical applications. Our journal encompasses a wide range of interests, from the fundamental aspects of stem cells and progenitor cells, including their expansion to viable numbers, to an in-depth understanding of their differentiation processes. Join us in exploring the latest advancements in tissue engineering and its clinical translation.