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降低葡萄糖激酶活性以增强胰岛素分泌:一种维持细胞功能和葡萄糖内稳态的反直觉理论。

Reducing Glucokinase Activity to Enhance Insulin Secretion: A Counterintuitive Theory to Preserve Cellular Function and Glucose Homeostasis.

机构信息

Translational Biomedical Sciences Program, Graduate College, Ohio University, Athens, OH, United States.

Diabetes Institute, Heritage College of Osteopathic Medicine, Ohio University, Athens OH, United States.

出版信息

Front Endocrinol (Lausanne). 2020 Jun 9;11:378. doi: 10.3389/fendo.2020.00378. eCollection 2020.

DOI:10.3389/fendo.2020.00378
PMID:32582035
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7296051/
Abstract

Pancreatic beta-cells are the only cells in the body that can synthesize and secrete insulin. Through the process of glucose-stimulated insulin secretion, beta-cells release insulin into circulation, stimulating GLUT4-dependent glucose uptake into peripheral tissue. Insulin is normally secreted in pulses that promote signaling at the liver. Long before type 2 diabetes is diagnosed, beta-cells become oversensitive to glucose, causing impaired pulsatility and overstimulation in fasting levels of glucose. The resulting hypersecretion of insulin can cause poor insulin signaling and clearance at the liver, leading to hyperinsulinemia and insulin resistance. Continued overactivity can eventually lead to beta-cell exhaustion and failure at which point type 2 diabetes begins. To prevent or reverse the negative effects of overstimulation, beta-cell activity can be reduced. Clinical studies have revealed the potential of beta-cell rest to reverse new cases of diabetes, but treatments lack durable benefits. In this perspective, we propose an intervention that reduces overactive glucokinase activity in the beta-cell. Glucokinase is known as the glucose sensor of the beta-cell due to its high control over insulin secretion. Therefore, glycolytic overactivity may be responsible for hyperinsulinemia early in the disease and can be reduced to restore normal stimulus-secretion coupling. We have previously reported that reducing glucokinase activity in prediabetic mouse islets can restore pulsatility and enhance insulin secretion. Building on this counterintuitive finding, we review the importance of pulsatile insulin secretion and highlight how normalizing glucose sensing in the beta cell during prediabetic hyperinsulinemia may restore pulsatility and improve glucose homeostasis.

摘要

胰岛β细胞是体内唯一能够合成和分泌胰岛素的细胞。通过葡萄糖刺激的胰岛素分泌过程,β细胞将胰岛素释放到循环中,刺激外周组织中 GLUT4 依赖性葡萄糖摄取。胰岛素通常以脉冲形式分泌,促进肝脏信号传递。在 2 型糖尿病被诊断之前,β细胞对葡萄糖变得过于敏感,导致空腹血糖水平的脉冲性和过度刺激受损。由此导致的胰岛素过度分泌会导致肝脏胰岛素信号和清除不良,导致高胰岛素血症和胰岛素抵抗。持续的过度活跃最终可能导致β细胞衰竭和功能衰竭,此时 2 型糖尿病开始。为了预防或逆转过度刺激的负面影响,可以降低β细胞的活性。临床研究表明,β细胞休息有可能逆转新的糖尿病病例,但这些治疗方法缺乏持久的益处。在这篇观点文章中,我们提出了一种干预措施,以降低β细胞中过度活跃的葡萄糖激酶活性。葡萄糖激酶因其对胰岛素分泌的高度控制作用,被称为β细胞的葡萄糖传感器。因此,糖酵解过度活跃可能是疾病早期高胰岛素血症的原因,可以通过降低其活性来恢复正常的刺激-分泌偶联。我们之前曾报道过,在糖尿病前期小鼠胰岛中降低葡萄糖激酶活性可以恢复脉冲性并增强胰岛素分泌。基于这一反直觉的发现,我们回顾了脉冲性胰岛素分泌的重要性,并强调了在糖尿病前期高胰岛素血症期间使β细胞中的葡萄糖感测正常化如何恢复脉冲性并改善葡萄糖稳态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ccab/7296051/fafb95292831/fendo-11-00378-g0002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ccab/7296051/b8565ec8f98b/fendo-11-00378-g0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ccab/7296051/fafb95292831/fendo-11-00378-g0002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ccab/7296051/b8565ec8f98b/fendo-11-00378-g0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ccab/7296051/fafb95292831/fendo-11-00378-g0002.jpg

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本文引用的文献

1
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J Endocr Soc. 2019 Jul 24;3(9):1727-1747. doi: 10.1210/js.2019-00065. eCollection 2019 Sep 1.
2
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Islets. 2019;11(2):21-32. doi: 10.1080/19382014.2019.1581544. Epub 2019 May 3.
3
Hepatic Insulin Clearance: Mechanism and Physiology.肝脏胰岛素清除:机制与生理学。
肠促胰岛素激动剂是否具有可持续疗效?
Cells. 2024 Nov 7;13(22):1842. doi: 10.3390/cells13221842.
4
Conserved glucokinase regulation in zebrafish confirms therapeutic utility for pharmacologic modulation in diabetes.斑马鱼中葡萄糖激酶的调节作用较为保守,这一发现为药物调节糖尿病治疗提供了潜在的应用价值。
Commun Biol. 2024 Nov 23;7(1):1557. doi: 10.1038/s42003-024-07264-5.
5
Targeting Protein Kinases to Protect Beta-Cell Function and Survival in Diabetes.靶向蛋白激酶以保护糖尿病中的β细胞功能和存活。
Int J Mol Sci. 2024 Jun 11;25(12):6425. doi: 10.3390/ijms25126425.
6
Challenges of CRISPR/Cas-Based Cell Therapy for Type 1 Diabetes: How Not to Engineer a "Trojan Horse".基于 CRISPR/Cas 的 1 型糖尿病细胞治疗的挑战:如何不制造“特洛伊木马”。
Int J Mol Sci. 2023 Dec 10;24(24):17320. doi: 10.3390/ijms242417320.
7
Human Beta Cell Functional Adaptation and Dysfunction in Insulin Resistance and Its Reversibility.人类胰岛β细胞在胰岛素抵抗及其逆转中的功能适应性和失能。
Nephron. 2024;148(2):78-84. doi: 10.1159/000534667. Epub 2023 Oct 26.
8
Novel regulators of islet function identified from genetic variation in mouse islet Ca oscillations.从胰岛 Ca 振荡的遗传变异中鉴定出的胰岛功能新调节因子。
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9
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10
Short-term high glucose culture potentiates pancreatic beta cell function.短期高糖培养增强胰岛β细胞功能。
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