Suppr超能文献

芯片胰岛:用于三维胰岛细胞培养的基于仿生微柱的微流控系统。

Islet-on-a-chip: Biomimetic micropillar-based microfluidic system for three-dimensional pancreatic islet cell culture.

作者信息

Sokolowska Patrycja, Zukowski Kamil, Janikiewicz Justyna, Jastrzebska Elzbieta, Dobrzyn Agnieszka, Brzozka Zbigniew

机构信息

Medical Biotechnology, Faculty of Chemistry, Warsaw University of Technology, Poland; Laboratory of Cell Signaling and Metabolic Disorders, Nencki Institute of Experimental Biology of Polish Academy of Sciences, Warsaw, Poland.

Centre for Advanced Materials and Technologies CEZAMAT, Warsaw University of Technology, Poland.

出版信息

Biosens Bioelectron. 2021 Jul 1;183:113215. doi: 10.1016/j.bios.2021.113215. Epub 2021 Apr 2.

Abstract

Type 2 diabetes is currently one of the most common metabolic diseases, affecting all ages worldwide. As the incidence of type 2 diabetes increases, a growing number of studies focus on islets of Langerhans. A three-dimensional research model that maps islet morphology and maintains hormonal balance in vivo is still needed. In this work, we present an Islet-on-a-chip system, specifically a micropillar-based microfluidic platform for three-dimensional pancreatic islet cell culture and analysis. The microfluidic system consisted of two culture chambers that were equipped with 15 circular microtraps each, which were built with seven round micropillars each. Micropillars in the structure of microtraps supported cell aggregation by limiting the growth surface and minimizing wall shear stress, thereby ensuring proper medium diffusion and optimal culture conditions for cell aggregates. Our system is compatible with microwell plate readers and confocal laser scanning microscopes. Because of optimization of the immunostaining method, the appropriate cell distribution and high viability and proliferation up to 72 h of culture were confirmed. Enzyme-linked immunosorbent assays were performed to measure insulin and glucagon secretion after stimulation with different glucose concentrations. To our knowledge, this is the first Lab-on-a-chip system which enables the formation and three-dimensional culture of cell aggregates composed of commercially available α and β pancreatic islet cells. The specific composition and arrangement of cells in the obtained model corresponds to the arrangement of the cells in rodent pancreatic islets in vivo. This Islet-on-a-chip system may be utilized to test pathogenic effectors and future therapeutic agents.

摘要

2型糖尿病是目前最常见的代谢性疾病之一,影响着全球所有年龄段的人群。随着2型糖尿病发病率的上升,越来越多的研究聚焦于胰岛。目前仍需要一种能够在体内绘制胰岛形态并维持激素平衡的三维研究模型。在这项工作中,我们展示了一种胰岛芯片系统,具体来说是一种基于微柱的微流控平台,用于三维胰岛细胞培养和分析。该微流控系统由两个培养室组成,每个培养室配备15个圆形微阱,每个微阱由七个圆形微柱构建而成。微阱结构中的微柱通过限制生长表面和最小化壁面剪切应力来支持细胞聚集,从而确保细胞聚集体有适当的培养基扩散和最佳培养条件。我们的系统与微孔板读数器和共聚焦激光扫描显微镜兼容。由于免疫染色方法的优化,证实了细胞分布合适,且在长达72小时的培养过程中具有较高的活力和增殖能力。在用不同葡萄糖浓度刺激后,进行酶联免疫吸附测定以测量胰岛素和胰高血糖素的分泌。据我们所知,这是首个能够实现由市售α和β胰岛细胞组成的细胞聚集体的形成和三维培养的芯片实验室系统。所获得模型中细胞的具体组成和排列与啮齿动物体内胰腺胰岛中的细胞排列相对应。这种胰岛芯片系统可用于测试致病因子和未来的治疗药物。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验