Abaci Hasan Erbil, Gledhill Karl, Guo Zongyou, Christiano Angela M, Shuler Michael L
Department of Biomedical Engineering, Cornell University, 115 Weill Hall, Ithaca, New York, USA.
Lab Chip. 2015 Feb 7;15(3):882-8. doi: 10.1039/c4lc00999a.
Advances in bio-mimetic in vitro human skin models increase the efficiency of drug screening studies. In this study, we designed and developed a microfluidic platform that allows for long-term maintenance of full thickness human skin equivalents (HSE) which are comprised of both the epidermal and dermal compartments. The design is based on the physiologically relevant blood residence times in human skin tissue and allows for the establishment of an air-epidermal interface which is crucial for maturation and terminal differentiation of HSEs. The small scale of the design reduces the amount of culture medium and the number of cells required by 36 fold compared to conventional transwell cultures. Our HSE-on-a-chip platform has the capability to recirculate the medium at desired flow rates without the need for pump or external tube connections. We demonstrate that the platform can be used to maintain HSEs for three weeks with proliferating keratinocytes similar to conventional HSE cultures. Immunohistochemistry analyses show that the differentiation and localization of keratinocytes was successfully achieved, establishing all sub-layers of the epidermis after one week. Basal keratinocytes located at the epidermal-dermal interface remain in a proliferative state for three weeks. We use a transdermal transport model to show that the skin barrier function is maintained for three weeks. We also validate the capability of the HSE-on-a-chip platform to be used for drug testing purposes by examining the toxic effects of doxorubucin on skin cells and structure. Overall, the HSE-on-a-chip is a user-friendly and cost-effective in vitro platform for drug testing of candidate molecules for skin disorders.
仿生体外人类皮肤模型的进展提高了药物筛选研究的效率。在本研究中,我们设计并开发了一种微流控平台,该平台能够长期维持由表皮和真皮部分组成的全层人类皮肤等效物(HSE)。该设计基于人类皮肤组织中生理相关的血液停留时间,并允许建立气-表皮界面,这对HSE的成熟和终末分化至关重要。与传统的Transwell培养相比,该设计的小规模将培养基用量和所需细胞数量减少了36倍。我们的芯片上HSE平台能够以所需流速再循环培养基,而无需泵或外部管连接。我们证明该平台可用于维持HSE三周,角质形成细胞增殖情况与传统HSE培养相似。免疫组织化学分析表明,角质形成细胞的分化和定位成功实现,一周后建立了表皮的所有亚层。位于表皮-真皮界面的基底角质形成细胞在三周内保持增殖状态。我们使用经皮转运模型表明皮肤屏障功能维持了三周。我们还通过检查阿霉素对皮肤细胞和结构的毒性作用,验证了芯片上HSE平台用于药物测试目的的能力。总体而言,芯片上HSE是一种用户友好且经济高效的体外平台,用于皮肤疾病候选分子的药物测试。