综述或非传感器论文 2011 非传感器论文

α-Synuclein binds the K(ATP) channel at insulin-secretory granules and inhibits insulin secretion.

American journal of physiology. Endocrinology and metabolism Geng X, Lou H, Wang J, Li L, Swanson AL, Sun M, Beers-Stolz D, Watkins S, Perez RG, Drain P
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组成图示

示意图生成中

传感器类型

综述或非传感器论文

检测对象

α-突触核蛋白(α-synuclein)、胰岛素分泌(insulin secretion);样品基质:小鼠胰岛、INS1-832/13细胞、胰腺组织

检测原理

本文并非报道生物传感器,其实验信号来自免疫识别与分泌定量。抗α-突触核蛋白抗体识别β细胞内α-synuclein,并与KATP通道亚基Kir6.2/SUR1、胰岛素/C肽共定位;荧光二抗或BodipyTR-格列本脲标记KATP通道,共聚焦显微镜将蛋白分布转换为荧光点状信号。免疫沉淀中抗体捕获α-synuclein/Kir6.2复合物,Western blot以红外二抗产生条带。ELISA检测培养基中胰岛素,比较2.8、8.4、16.7 mM葡萄糖下分泌速率。α-synuclein过表达使基础分泌降低,敲除使低/中葡萄糖分泌升高,高葡萄糖可克服抑制。

检测灵敏度

原文未报告LOD、线性范围、灵敏度斜率或相关系数。

效应效果

免疫荧光与免疫沉淀均设封闭肽、预免疫血清或珠子对照,显示特异性。α-synuclein过表达使INS1细胞2.8 mM葡萄糖基础胰岛素分泌由2.8–2.9降至1.7 ng·min−1·mg−1,降低41%(P<0.05);16.7 mM刺激分泌9.0对10.2–10.4,降低13%不显著。ASKO胰岛在2.8和8.4 mM葡萄糖分泌分别为3.8对13.4、16.2对25.8 pg·min−1·islet−1,显著升高;16.7 mM为43.1对44.8,无差异。表面胰岛素颗粒密度WT 0.93±0.04、ASKO 0.54±0.02个/μm,降低42%。α-synuclein为分泌刹车,高葡萄糖可克服。

传感器的构成

  • 基底/换能器:不适用(本文未报道生物传感器,无电极或换能器材料)
  • 纳米材料修饰层:不适用(本文未报道纳米材料修饰层)
  • 识别元件:抗α-突触核蛋白抗体(anti-α-synuclein antibody)用于免疫荧光与免疫沉淀,非传感器识别层
  • 信号标记物:Alexa Fluor 488/594二抗与BodipyTR-glibenclamide用于荧光成像,非传感器信号层
  • 封闭剂:2% BSA用于免疫封闭,非传感器封闭层

中文摘要

α-突触核蛋白在多种分泌细胞中发挥作用。本研究检测其在胰岛β细胞胰岛素分泌颗粒中的定位,并表征其对葡萄糖刺激胰岛素分泌的影响。采用免疫组化与荧光磺脲类探针检测α-突触核蛋白定位;免疫沉淀联合Western blot分析其与KATP通道的相互作用;ELISA检测上调或下调α-突触核蛋白表达对INS1细胞或小鼠胰岛胰岛素分泌的影响;共聚焦成像Ins-C-emGFP并透射电镜比较敲除与野生型β细胞表型。结果显示,抗α-突触核蛋白抗体标记β细胞分泌细胞器,并与KATP通道、胰岛素和C肽抗体共定位;α-突触核蛋白与KATP通道共沉淀。过表达α-突触核蛋白在2.8 mM葡萄糖下降低胰岛素分泌,16.7 mM刺激后影响较小;敲除胰岛在2.8和8.4 mM葡萄糖下分泌升高,16.7 mM无差异,与β细胞表面胰岛素颗粒密度降低一致。结果表明α-突触核蛋白与KATP通道及胰岛素分泌颗粒相互作用,并作为可被葡萄糖克服的分泌刹车。

英文摘要

α-Synuclein has been studied in numerous cell types often associated with secretory processes. In pancreatic β-cells, α-synuclein might therefore play a similar role by interacting with organelles involved in insulin secretion. We tested for α-synuclein localizing to insulin-secretory granules and characterized its role in glucose-stimulated insulin secretion. Immunohistochemistry and fluorescent sulfonylureas were used to test for α-synuclein localization to insulin granules in β-cells, immunoprecipitation with Western blot analysis for interaction between α-synuclein and K(ATP) channels, and ELISA assays for the effect of altering α-synuclein expression up or down on insulin secretion in INS1 cells or mouse islets, respectively. Differences in cellular phenotype between α-synuclein knockout and wild-type β-cells were found by using confocal microscopy to image the fluorescent insulin biosensor Ins-C-emGFP and by using transmission electron microscopy. The results show that anti-α-synuclein antibodies labeled secretory organelles within β-cells. Anti-α-synuclein antibodies colocalized with K(ATP) channel, anti-insulin, and anti-C-peptide antibodies. α-Synuclein coimmunoprecipitated in complexes with K(ATP) channels. Expression of α-synuclein downregulated insulin secretion at 2.8 mM glucose with little effect following 16.7 mM glucose stimulation. α-Synuclein knockout islets upregulated insulin secretion at 2.8 and 8.4 mM but not 16.7 mM glucose, consistent with the depleted insulin granule density at the β-cell surface membranes observed in these islets. These findings demonstrate that α-synuclein interacts with K(ATP) channels and insulin-secretory granules and functionally acts as a brake on secretion that glucose stimulation can override. α-Synuclein might play similar roles in diabetes as it does in other degenerative diseases, including Alzheimer's and Parkinson's diseases.

关键词

α-突触核蛋白KATP通道胰岛素分泌胰岛β细胞共定位ELISA