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微流控 3D 肝培养与基于液滴的生物分析单元集成。

Microfluidic 3D hepatic cultures integrated with a droplet-based bioanalysis unit.

机构信息

Department of Physiology and Biomedical Engineering, Mayo Clinic, Rochester, MN, USA.

Laboratory of Microtechnologies Applied to Biomedicine, Centro de Investigación y de Estudios Avanzados (Cinvestav), Monterrey, NL, Mexico.

出版信息

Biosens Bioelectron. 2024 Mar 15;248:115896. doi: 10.1016/j.bios.2023.115896. Epub 2023 Nov 30.

Abstract

A common challenge in microfluidic cell cultures has to do with analysis of cell function without replacing a significant fraction of the culture volume and disturbing local concentration gradients of signals. To address this challenge, we developed a microfluidic cell culture device with an integrated bioanalysis unit to enable on-chip analysis of picoliter volumes of cell-conditioned media. The culture module consisted of an array of 140 microwells with a diameter of 300 m which were made low-binding to promote organization of cells into 3D spheroids. The bioanalysis module contained a droplet generator unit, 15 micromechanical valves and reservoirs loaded with reagents. Each 0.8 nL droplet contained an aliquot of conditioned media mixed with assay reagents. The use of microvalves allowed us to load enzymatic assay and immunoassay into sequentially generated droplets for detection of glucose and albumin, respectively. As a biological application of the microfluidic device, we evaluated hormonal stimulation and glucose consumption of hepatic spheroids. To mimic physiological processes occurring during feeding and fasting, hepatic spheroids were exposed to pancreatic hormones, insulin or glucagon. The droplet-based bioanalysis module was used to measure uptake or release of glucose upon hormonal stimulation. In the future, we intend to use this microfluidic device to mimic and measure pathophysiological processes associated with hepatic insulin resistance and diabetes in the context of metabolic syndrome.

摘要

微流控细胞培养中的一个常见挑战是在不更换大量培养体积并干扰信号的局部浓度梯度的情况下分析细胞功能。为了解决这个挑战,我们开发了一种带有集成生物分析单元的微流控细胞培养设备,以实现对皮升体积的细胞条件培养基的芯片级分析。培养模块由一个直径为 300 微米的 140 个微井阵列组成,这些微井的结合力很低,以促进细胞组织成 3D 球体。生物分析模块包含一个液滴生成单元、15 个微机械阀和装有试剂的储液器。每个 0.8nL 的液滴包含一份条件培养基与分析试剂的混合物。微阀的使用允许我们将酶分析和免疫分析加载到顺序生成的液滴中,分别用于检测葡萄糖和白蛋白。作为微流控设备的生物学应用,我们评估了肝球体的激素刺激和葡萄糖消耗。为了模拟进食和禁食期间发生的生理过程,肝球体暴露于胰腺激素、胰岛素或胰高血糖素中。基于液滴的生物分析模块用于测量激素刺激下葡萄糖的摄取或释放。将来,我们打算使用这种微流控设备来模拟和测量与代谢综合征相关的肝胰岛素抵抗和糖尿病的病理生理过程。

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