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Full-thickness human skin-on-chip with enhanced epidermal morphogenesis and barrier function

机译:具有增强表皮形态发生和屏障功能的全厚人皮芯片

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摘要

Reconstruction of full-thickness skin equivalents with physiologically relevant cellular and matrix architecture is gaining importance as an in vitro tool for basic research, and for the pharmaceutical, toxicological, and cosmetic industries. However, human skin equivalents reconstructed on traditional culture systems are limited by a weak skin barrier function compared to normal human skin. Probable reasons include the lack of mechanical forces and dynamic flow system that provide necessary mechanistic signals and continuous supply and/or drainage of nutrients and metabolites. Here, we combine a fibrin-based dermal matrix with a biomimetic ‘organ-on-chip’ system for the development of human skin equivalents that better recapitulate the structure and functionalities of human skin, compared to conventional static culture systems. We demonstrate that dynamic perfusion and a fine control of the microenvironment enable improved epidermal morphogenesis and differentiation, and enhanced barrier function. It is also shown that integrated 3D culturing and integrity/permeability testing can be conducted directly on the organ-on-chip device owing to the non-contracting properties of the fibrin-based dermal matrix, thus overcoming the limitations of collagen-based skin equivalents used in conventional cell culture inserts and diffusion cells. With this scalable system, it is possible to achieve higher throughput and automation of culture and testing protocols, and deliver low-cost alternatives to animal and clinical studies for drug screening and toxicological applications.
机译:具有生理相关的细胞和基质建筑的全厚皮肤等同物的重建是一种重要的基础研究的体外工具,以及制药,毒理学和化妆品行业。然而,与正常人体皮肤相比,在传统培养系统上重建的人体皮肤等同物受到弱皮肤屏障功能的限制。可能的原因包括缺乏机械力和动态流动系统,可提供必要的机械信号和营养和代谢物的连续供应和/或引流。在这里,与传统的静态培养系统相比,我们将基于纤维蛋白的皮肤基质与生物摩尔蛋白的皮肤基质进行了仿生学的“片上”系统,以便更好地概念人体皮肤的结构和功能。我们证明了动态灌注和微环境对微环境的精细控制能够改善表皮形态发生和分化,以及增强的屏障功能。还表明,由于纤维蛋白的皮肤基质的非收缩性能,可以直接在片上器件上直接进行集成的3D培养和完整性/渗透性测试,从而克服基于胶原的皮肤等同物的限制用于常规细胞培养插入件和扩散电池。利用这种可扩展系统,可以实现培养和测试方案的更高吞吐量和自动化,并为药物筛选和毒理学应用提供动物和临床研究的低成本替代品。

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