ER氧化还原稳态调节胰岛β细胞中胰岛素原的运输和胰岛素颗粒的形成。

IF 5.1 Q2 CELL BIOLOGY Function (Oxford, England) Pub Date : 2022-09-28 eCollection Date: 2022-01-01 DOI:10.1093/function/zqac051
Kristen E Rohli, Cierra K Boyer, Shelby C Bearrows, Marshall R Moyer, Weston S Elison, Casey J Bauchle, Sandra E Blom, Jianchao Zhang, Yanzhuang Wang, Samuel B Stephens
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引用次数: 4

摘要

胰腺β细胞分泌系统的缺陷在2型糖尿病(T2D)中有很好的描述,包括胰岛素原加工受损和成熟的含胰岛素分泌颗粒缺陷;然而,这些缺陷背后的细胞机制仍知之甚少。为了解决这个问题,我们使用了原位荧光脉冲追踪策略来研究胰岛素原的贩运。我们发现,在糖尿病前期和高血糖的啮齿动物和细胞培养模型中,胰岛素颗粒的形成和质膜上新生颗粒的出现减少了。此外,我们将胰岛素颗粒形成的缺陷与胰岛素原内质网(ER)输出的早期运输延迟联系起来,这与明显的ER应激无关。使用比率氧化还原传感器,我们发现啮齿类糖尿病前期饮食模型中的ER在β细胞中变得过氧化,添加还原当量可以恢复胰岛素原的ER输出和胰岛素颗粒的形成,并部分恢复β细胞功能。总之,这些数据确定了ER氧化还原稳态在胰岛素原运输中的调节作用,并表明ER氧化还原平衡的改变直接导致T2D中胰岛素颗粒产生的下降。该模型强调了ER氧化还原和ER功能改变与T2D胰岛素原转运缺陷之间的关键联系。ER管腔的过度氧化,如过氧化氢所示,会损害胰岛素原的折叠和二硫键的形成,从而阻止胰岛素原从ER有效地进入高尔基体。这种运输缺陷限制了T2D发展过程中胰岛素分泌颗粒形成的可用胰岛素原。
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ER Redox Homeostasis Regulates Proinsulin Trafficking and Insulin Granule Formation in the Pancreatic Islet β-Cell.

Defects in the pancreatic β-cell's secretion system are well-described in type 2 diabetes (T2D) and include impaired proinsulin processing and a deficit in mature insulin-containing secretory granules; however, the cellular mechanisms underlying these defects remain poorly understood. To address this, we used an in situ fluorescent pulse-chase strategy to study proinsulin trafficking. We show that insulin granule formation and the appearance of nascent granules at the plasma membrane are decreased in rodent and cell culture models of prediabetes and hyperglycemia. Moreover, we link the defect in insulin granule formation to an early trafficking delay in endoplasmic reticulum (ER) export of proinsulin, which is independent of overt ER stress. Using a ratiometric redox sensor, we show that the ER becomes hyperoxidized in β-cells from a dietary model of rodent prediabetes and that addition of reducing equivalents restores ER export of proinsulin and insulin granule formation and partially restores β-cell function. Together, these data identify a critical role for the regulation of ER redox homeostasis in proinsulin trafficking and suggest that alterations in ER redox poise directly contribute to the decline in insulin granule production in T2D. This model highlights a critical link between alterations in ER redox and ER function with defects in proinsulin trafficking in T2D. Hyperoxidation of the ER lumen, shown as hydrogen peroxide, impairs proinsulin folding and disulfide bond formation that prevents efficient exit of proinsulin from the ER to the Golgi. This trafficking defect limits available proinsulin for the formation of insulin secretory granules during the development of T2D.

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