微工程皮肤研究平台的进展

Sireesh Kumar Teertam , Vijayasaradhi Setaluri , Jose M. Ayuso
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引用次数: 0

摘要

皮肤在人体生理中起着至关重要的作用,它既是抵御环境伤害的屏障,也是接受环境刺激的窗口。这种平衡状态的破坏会导致许多皮肤疾病。人类和动物的皮肤差异很大,这限制了以动物为基础的研究在促进人类皮肤病治疗方面的转化潜力。因此,亟需与生理相关的人类皮肤模型来探索新的治疗策略。微流体技术的最新进展现在可以设计和生成模拟组织结构关键特征的片上器官装置。片上皮肤和微流控平台有望成为各种皮肤病学应用的有用模型。与传统的体外模型相比,微流体平台能更好地控制流体流动,进而精确控制细胞和分子的分布。这些特性使多层体外模型得以产生,在模仿人体皮肤结构的同时,还能对营养物质和药物的分布进行出色的控制。研究人员已将微流控平台用于皮肤研究的多种应用,包括表皮-真皮细胞串联、细胞迁移、机械生物学、微生物-免疫反应相互作用、血管生物学和伤口愈合。在这篇综述中,我们全面回顾了最先进的皮肤研究微流控模型。我们讨论了当前片上皮肤技术所面临的挑战和前景,并为这一活跃领域的未来研究提供了路线图。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advances in Microengineered Platforms for Skin Research
The skin plays a critical role in human physiology, acting both as a barrier to environmental insults and as a window to environmental stimuli. Disruption of this homeostasis leads to numerous skin disorders. Human and animal skin differ significantly, limiting the translational potential of animal-based investigations to advance therapeutics to human skin diseases. Hence, there is a critical need for physiologically relevant human skin models to explore novel treatment strategies. Recent advances in microfluidic technologies now allow design and generation of organ-on-chip devices that mimic critical features of tissue architecture. Skin-on-a-chip and microfluidic platforms hold promise as useful models for diverse dermatology applications. Compared with traditional in vitro models, microfluidic platforms offer improved control of fluid flow, which in turn allows precise manipulation of cell and molecular distribution. These properties enable the generation of multilayered in vitro models that mimic human skin structure while simultaneously offering superior control over nutrient and drug distribution. Researchers have used microfluidic platforms for a variety of applications in skin research, including epidermal–dermal cellular crosstalk, cell migration, mechanobiology, microbiome–immune response interactions, vascular biology, and wound healing. In this review, we comprehensively review state-of-the-art microfluidic models for skin research. We discuss the challenges and promise of current skin-on-a-chip technologies and provide a roadmap for future research in this active field.
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