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Simultaneous Monitoring of Insulin and Islet Amyloid Polypeptide Secretion from Islets of Langerhans on a Microfluidic Device

机译:在微流控装置上同时监测郎格罕氏岛的胰岛素和胰岛淀粉样多肽分泌

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A method was developed that allowed simultaneous monitoring of the acute secretory dynamics of insulin and islet amyloid polypeptide (IAPP) from islets of Langerhans using a microfluidic system with two-color detection. A flow-switching feature enabled changes in the perfusion media within 5 s, allowing rapid exchange of the glucose concentrations delivered to groups of islets. The perfusate was continuously sampled by electroosmotic flow and mixed online with Cy5-labeled insulin, fluorescein isothiocyanate (FITC)-labeled IAPP, anti-insulin, and anti-IAPP antibodies in an 8.15 cm mixing channel maintained at 37℃. The immunoassay mixture was injected for 0.3 s onto a 1.5 cm separation channel at 11.75 s intervals and immunoassay reagents detected using 488 and 635 nm lasers with two independent photomultiplier tubes for detection of the FITC and Cy5 signal. RSD of the bound-to-free immunoassay ratios ranged from 2 to 7% with LODs of 20 nM for insulin and 1 nM for IAPP. Simultaneous secretion profiles of the two peptides were monitored from groups of 4-10 islets during multiple step changes in glucose concentration. Insulin and IAPP were secreted in an approximately 10:1 ratio and displayed similar responses to step changes from 3 to 11 or 20 mM glucose. The ability to monitor the secretory dynamics of multiple peptides from islets of Langerhans in a highly automated fashion is expected to be a useful tool for investigating hormonal regulation of glucose homeostasis.
机译:开发了一种方法,该方法可以使用带有双色检测的微流体系统,同时监测朗格汉斯岛的胰岛素和胰岛淀粉样多肽(IAPP)的急性分泌动态。流量切换功能可在5 s内改变灌注介质,从而使输送至胰岛的葡萄糖浓度快速交换。通过电渗流连续取样灌流液,并在维持在37℃的8.15 cm混合通道中与Cy5标记的胰岛素,异硫氰酸荧光素(FITC)标记的IAPP,抗胰岛素和抗IAPP抗体在线混合。将免疫分析混合物以11.75 s的间隔注入0.3 s的1.5 cm分离通道中0.3 s,并使用带有两个独立光电倍增管的488和635 nm激光器检测免疫分析试剂,以检测FITC和Cy5信号。结合自由免疫测定比率的RSD为2%至7%,胰岛素的LOD为20 nM,IAPP的LOD为1 nM。在葡萄糖浓度的多步变化过程中,从4-10个胰岛的组中监测了这两种肽的同时分泌情况。胰岛素和IAPP的分泌比例约为10:1,并且对3到11或20 mM葡萄糖的阶跃变化显示出相似的响应。期望以高度自动化的方式监测朗格罕氏岛的多种肽的分泌动力学的能力是研究葡萄糖稳态的激素调节的有用工具。

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