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亮氨酸通过直接调节α细胞中的环磷酸腺苷(cAMP)来抑制胰岛分泌胰高血糖素。

Leucine suppresses glucagon secretion from pancreatic islets by directly modulating α-cell cAMP.

作者信息

Knuth Emily R, Foster Hannah R, Jin Erli, Merrins Matthew J

机构信息

Department of Medicine, Division of Endocrinology, Diabetes, and Metabolism, University of Wisconsin-Madison, Madison, WI 53705, USA.

William S. Middleton Memorial Veterans Hospital, Madison, WI 53705, USA.

出版信息

bioRxiv. 2023 Aug 16:2023.07.31.551113. doi: 10.1101/2023.07.31.551113.

Abstract

OBJECTIVE

Pancreatic islets are nutrient sensors that regulate organismal blood glucose homeostasis. Glucagon release from the pancreatic α-cell is important under fasted, fed, and hypoglycemic conditions, yet metabolic regulation of α-cells remains poorly understood. Here, we identified a previously unexplored role for physiological levels of leucine, which is classically regarded as a β-cell fuel, in the intrinsic regulation of α-cell glucagon release.

METHODS

GcgCre:CAMPER and GcgCre:GCaMP6s mice were generated to perform dynamic, high-throughput functional measurements of α-cell cAMP and Ca within the intact islet. Islet perifusion assays were used for simultaneous, time-resolved measurements of glucagon and insulin release from mouse and human islets. The effects of leucine were compared with glucose and the mitochondrial fuels 2-aminobicyclo(2,2,1)heptane-2-carboxylic acid (BCH, non-metabolized leucine analog that activates glutamate dehydrogenase), α-ketoisocaproate (KIC, leucine metabolite), and methyl-succinate (complex II fuel). CYN154806 (Sstr2 antagonist), diazoxide (K activator, which prevents Ca-dependent exocytosis from α, β, and δ-cells), and dispersed α-cells were used to inhibit islet paracrine signaling and identify α-cell intrinsic effects.

RESULTS

Mimicking the effect of glucose, leucine strongly suppressed amino acid-stimulated glucagon secretion. Mechanistically, leucine dose-dependently reduced α-cell cAMP at physiological concentrations, with an IC of 57, 440, and 1162 μM at 2, 6, and 10 mM glucose, without affecting α-cell Ca. Leucine also reduced α-cell cAMP in islets treated with Sstr2 antagonist or diazoxide, as well as dispersed α-cells, indicating an α-cell intrinsic effect. The effect of leucine was matched by KIC and the glutamate dehydrogenase activator BCH, but not methyl-succinate, indicating a dependence on mitochondrial anaplerosis. Glucose, which stimulates anaplerosis via pyruvate carboxylase, had the same suppressive effect on α-cell cAMP but with lower potency. Similarly to mouse islets, leucine suppressed glucagon secretion from human islets under hypoglycemic conditions.

CONCLUSIONS

These findings highlight an important role for physiological levels of leucine in the metabolic regulation of α-cell cAMP and glucagon secretion. Leucine functions primarily through an α-cell intrinsic effect that is dependent on glutamate dehydrogenase, in addition to the well-established α-cell regulation by β/δ-cell paracrine signaling. Our results suggest that mitochondrial anaplerosis-cataplerosis facilitates the glucagonostatic effect of both leucine and glucose, which cooperatively suppress α-cell tone by reducing cAMP.

摘要

目的

胰岛是调节机体血糖稳态的营养传感器。在禁食、进食和低血糖条件下,胰腺α细胞释放胰高血糖素很重要,但α细胞的代谢调节仍知之甚少。在这里,我们发现了亮氨酸生理水平在α细胞胰高血糖素释放的内在调节中一个以前未被探索的作用,亮氨酸传统上被认为是β细胞的燃料。

方法

构建GcgCre:CAMPER和GcgCre:GCaMP6s小鼠,以对完整胰岛内的α细胞cAMP和Ca进行动态、高通量功能测量。胰岛灌流测定用于同时、实时测量小鼠和人类胰岛中胰高血糖素和胰岛素的释放。将亮氨酸的作用与葡萄糖以及线粒体燃料2-氨基双环(2,2,1)庚烷-2-羧酸(BCH,激活谷氨酸脱氢酶的非代谢亮氨酸类似物)、α-酮异己酸(KIC,亮氨酸代谢物)和甲基琥珀酸(复合物II燃料)的作用进行比较。使用CYN154806(Sstr2拮抗剂)、二氮嗪(K激活剂,可防止α、β和δ细胞的Ca依赖性胞吐作用)和分散的α细胞来抑制胰岛旁分泌信号并确定α细胞的内在作用。

结果

亮氨酸模拟葡萄糖的作用,强烈抑制氨基酸刺激的胰高血糖素分泌。从机制上讲,亮氨酸在生理浓度下剂量依赖性地降低α细胞cAMP,在2、6和10 mM葡萄糖浓度下的IC分别为57、440和1162 μM,而不影响α细胞Ca。亮氨酸还降低了用Sstr2拮抗剂或二氮嗪处理的胰岛以及分散的α细胞中的α细胞cAMP,表明是α细胞的内在作用。亮氨酸的作用与KIC和谷氨酸脱氢酶激活剂BCH相当,但与甲基琥珀酸不同,表明依赖于线粒体的回补作用。通过丙酮酸羧化酶刺激回补作用的葡萄糖对α细胞cAMP具有相同的抑制作用,但效力较低。与小鼠胰岛类似,亮氨酸在低血糖条件下抑制人类胰岛中胰高血糖素的分泌。

结论

这些发现突出了亮氨酸生理水平在α细胞cAMP代谢调节和胰高血糖素分泌中的重要作用。除了已确立的β/δ细胞旁分泌信号对α细胞的调节外,亮氨酸主要通过依赖于谷氨酸脱氢酶的α细胞内在作用发挥功能。我们的结果表明,线粒体回补-流出促进了亮氨酸和葡萄糖的胰高血糖素抑制作用,它们通过降低cAMP协同抑制α细胞张力。

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