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一种基于微流控悬滴的胰岛灌流系统,用于研究多个单个胰岛的葡萄糖刺激胰岛素分泌。

A Microfluidic Hanging-Drop-Based Islet Perifusion System for Studying Glucose-Stimulated Insulin Secretion From Multiple Individual Pancreatic Islets.

作者信息

Wu Jin Patricia, Rousset Nassim, Hierlemann Andreas, Misun Patrick M

机构信息

Bio Engineering Laboratory, Department of Biosystems Science and Engineering, ETH Zürich, Basel, Switzerland.

出版信息

Front Bioeng Biotechnol. 2021 May 12;9:674431. doi: 10.3389/fbioe.2021.674431. eCollection 2021.

Abstract

Islet perifusion systems can be used to monitor the highly dynamic insulin release of pancreatic islets in glucose-stimulated insulin secretion (GSIS) assays. Here, we present a new generation of the microfluidic hanging-drop-based islet perifusion platform that was developed to study the alterations in insulin secretion dynamics from single pancreatic islet microtissues at high temporal resolution. The platform was completely redesigned to increase experimental throughput and to reduce operational complexity. The experimental throughput was increased fourfold by implementing a network of interconnected hanging drops, which allows for performing GSIS assays with four individual islet microtissues in parallel with a sampling interval of 30 s. We introduced a self-regulating drop-height mechanism that enables continuous flow and maintains a constant liquid volume in the chip, which enables simple and robust operation. Upon glucose stimulation, reproducible biphasic insulin release was simultaneously observed from all islets in the system. The measured insulin concentrations showed low sample-to-sample variation as a consequence of precise liquid handling with stable drop volumes, equal flow rates in the channels, and accurately controlled sampling volumes in all four drops. The presented device will be a valuable tool in islet and diabetes research for studying dynamic insulin secretion from individual pancreatic islets.

摘要

胰岛灌注系统可用于在葡萄糖刺激胰岛素分泌(GSIS)试验中监测胰岛高度动态的胰岛素释放。在此,我们展示了新一代基于微流控悬滴的胰岛灌注平台,该平台旨在以高时间分辨率研究单个胰岛微组织胰岛素分泌动力学的变化。该平台经过全面重新设计,以提高实验通量并降低操作复杂性。通过实施相互连接的悬滴网络,实验通量提高了四倍,这使得能够以30秒的采样间隔对四个单独的胰岛微组织并行进行GSIS试验。我们引入了一种自调节滴高机制,该机制能够实现连续流动并在芯片中保持恒定的液体体积,从而实现简单且稳健的操作。在葡萄糖刺激下,系统中所有胰岛同时观察到可重复的双相胰岛素释放。由于精确的液体处理、稳定的滴体积、通道中相等的流速以及所有四个滴中准确控制的采样体积,测得的胰岛素浓度显示出低样本间变异性。所展示的设备将成为胰岛和糖尿病研究中用于研究单个胰岛动态胰岛素分泌的有价值工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6fa7/8149801/d5f1c1be3316/fbioe-09-674431-g001.jpg

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