首页> 外文期刊>Journal of ocular pharmacology and therapeutics: The official journal of the Association for Ocular Pharmacology and Therapeutics >Nanofiber Scaffold-Based Tissue-Engineered Retinal Pigment Epithelium to Treat Degenerative Eye Diseases
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Nanofiber Scaffold-Based Tissue-Engineered Retinal Pigment Epithelium to Treat Degenerative Eye Diseases

机译:基于纳米纤维支架的组织工程视网膜色素上皮细胞治疗退行性眼病

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摘要

Clinical-grade manufacturing of a functional retinal pigment epithelium (RPE) monolayer requires reproducing, as closely as possible, the natural environment in which RPE grows. In vitro, this can be achieved by a tissue engineering approach, in which the RPE is grown on a nanofibrous biological or synthetic scaffold. Recent research has shown that nanofiber scaffolds perform better for cell growth and transplantability compared with their membrane counterparts and that the success of the scaffold in promoting cell growth/function is not heavily material dependent. With these strides, the field has advanced enough to begin to consider implementation of one, or a combination, of the tissue engineering strategies discussed herein. In this study, we review the current state of tissue engineering research for in vitro culture of RPE/scaffolds and the parameters for optimal scaffold design that have been uncovered during this research. Next, we discuss production methods and manufacturers that are capable of producing the nanofiber scaffolds in such a way that would be biologically, regulatory, clinically, and commercially viable. Then, a discussion of how the scaffolds could be characterized, both morphologically and mechanically, to develop a testing process that is viable for regulatory screening is performed. Finally, an example of a tissue-engineered RPE/scaffold construct is given to provide the reader a framework for understanding how these pieces could fit together to develop a tissue-engineered RPE/scaffold construct that could pass regulatory scrutiny and can be commercially successful.
机译:功能性视网膜色素上皮(RPE)单层的临床级生产要求尽可能接近地复制RPE生长的自然环境。在体外,这可以通过组织工程方法来实现,其中RPE在纳米纤维生物或合成支架上生长。最近的研究表明,纳米纤维支架与其膜对应物相比,在细胞生长和可移植性方面表现更好,并且支架在促进细胞生长/功能方面的成功与材料无关。有了这些进步,该领域已经发展到足以考虑实施本文讨论的一种或多种组织工程策略的方法。在这项研究中,我们回顾了RPE /支架体外培养的组织工程研究的现状,以及在此研究中发现的最佳支架设计参数。接下来,我们讨论能够以生物学,调控,临床和商业上可行的方式生产纳米纤维支架的生产方法和制造商。然后,进行了关于如何表征支架的形态和机械特性的讨论,以开发适用于监管筛选的测试过程。最后,给出了一个组织工程化的RPE /支架构建体的例子,为读者提供了一个框架,以了解如何将这些部件装配在一起以开发出一个组织工程化的RPE /支架构建体,该组织可以通过监管审查并在商业上取得成功。

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