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Elevated markers of DNA damage and senescence are associated with the progression of albuminuria and restrictive lung disease in patients with type 2 diabetes.高水平的 DNA 损伤和衰老标志物与 2 型糖尿病患者白蛋白尿和限制性肺病的进展有关。
EBioMedicine. 2023 Apr;90:104516. doi: 10.1016/j.ebiom.2023.104516. Epub 2023 Mar 17.
3
Decreased expression of mitochondrial aminoacyl-tRNA synthetases causes downregulation of OXPHOS subunits in type 2 diabetic muscle.线粒体氨酰-tRNA 合成酶表达降低导致 2 型糖尿病肌肉中 OXPHOS 亚基下调。
Redox Biol. 2023 May;61:102630. doi: 10.1016/j.redox.2023.102630. Epub 2023 Feb 8.
4
Pancreatic INS-1 β-Cell Response to Thapsigargin and Rotenone: A Comparative Proteomics Analysis Uncovers Key Pathways of β-Cell Dysfunction.用噻嗪酮和鱼藤酮处理的胰岛 INS-1β 细胞反应:比较蛋白质组学分析揭示 β 细胞功能障碍的关键途径。
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5
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Sci Rep. 2022 Apr 27;12(1):6889. doi: 10.1038/s41598-022-10652-8.
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A guide to antigen processing and presentation.抗原加工和呈递指南。
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Enhanced Wild-Type MET Receptor Levels in Mouse Hepatocytes Attenuates Insulin-Mediated Signaling.增强型野生型 MET 受体在小鼠肝细胞中的水平可减弱胰岛素介导的信号转导。
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8
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9
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多种应激源对人胰岛蛋白质组的影响揭示了相关通路的新见解。

Effects of multiple stressors on pancreatic human islets proteome reveal new insights into the pathways involved.

作者信息

Weldemariam Mehari Muuz, Sudhir Putty-Reddy, Woo Jongmin, Zhang Qibin

机构信息

Center for Translational Biomedical Research, University of North Carolina at Greensboro, North Carolina Research Campus, Kannapolis, North Carolina, USA.

Department of Chemistry and Biochemistry, University of North Carolina at Greensboro, Greensboro, North Carolina, USA.

出版信息

Proteomics. 2023 Oct;23(19):e2300022. doi: 10.1002/pmic.202300022. Epub 2023 Jul 24.

DOI:10.1002/pmic.202300022
PMID:37489002
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10591809/
Abstract

Pancreatic β-cell dysfunction is an early hallmark of type 1 diabetes mellitus. Among the potentially critical factors that cause β-cell dysfunction are cytokine attack, glucotoxicity, induction of endoplasmic reticulum (ER) or mitochondria stress. However, the exact molecular mechanism underlying β-cell's inability to maintain glucose homeostasis under severe stresses is unknown. This study used proinflammatory cytokines, thapsigargin, and rotenone in the presence of high concentration glucose to mimicking the conditions experienced by dysfunctional β-cells in human pancreatic islets, and profiled the alterations to the islet proteome with TMT-based proteomics. The results were further verified with label-free quantitative proteomics. The differentially expressed proteins under stress conditions reveal that immune related pathways are mostly perturbed by cytokines, while the respiratory electron transport chains and protein processing in ER pathways by rotenone. Thapsigargin together with high glucose induces dramatic increases of proteins in lipid synthesis and peroxisomal protein import pathways, with energy metabolism and vesicle secretion related pathways downregulated. High concentration glucose, on the other hand, alleviated complex I inhibition induced by rotenone. Our results contribute to a more comprehensive understanding of the molecular events involved in β-cell dysfunction.

摘要

胰腺β细胞功能障碍是1型糖尿病的早期标志。导致β细胞功能障碍的潜在关键因素包括细胞因子攻击、糖毒性、内质网(ER)或线粒体应激的诱导。然而,在严重应激下β细胞无法维持葡萄糖稳态的确切分子机制尚不清楚。本研究在高浓度葡萄糖存在的情况下使用促炎细胞因子、毒胡萝卜素和鱼藤酮来模拟人类胰岛中功能失调的β细胞所经历的条件,并通过基于TMT的蛋白质组学分析胰岛蛋白质组的变化。结果用无标记定量蛋白质组学进一步验证。应激条件下差异表达的蛋白质表明,免疫相关途径大多受到细胞因子的干扰,而鱼藤酮则影响呼吸电子传递链和ER途径中的蛋白质加工。毒胡萝卜素与高葡萄糖一起诱导脂质合成和过氧化物酶体蛋白质导入途径中的蛋白质显著增加,而能量代谢和囊泡分泌相关途径则下调。另一方面,高浓度葡萄糖减轻了鱼藤酮诱导的复合体I抑制。我们的结果有助于更全面地了解β细胞功能障碍所涉及的分子事件。