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本文引用的文献

1
Lactate production is a prioritized feature of adipocyte metabolism.产乳酸是脂肪细胞代谢的优先特征。
J Biol Chem. 2020 Jan 3;295(1):83-98. doi: 10.1074/jbc.RA119.011178. Epub 2019 Nov 5.
2
Muscle and adipose tissue insulin resistance: malady without mechanism?肌肉和脂肪组织胰岛素抵抗:无机制之病?
J Lipid Res. 2019 Oct;60(10):1720-1732. doi: 10.1194/jlr.R087510. Epub 2018 Jul 27.
3
Mitochondrial oxidative stress causes insulin resistance without disrupting oxidative phosphorylation.线粒体氧化应激导致胰岛素抵抗而不破坏氧化磷酸化。
J Biol Chem. 2018 May 11;293(19):7315-7328. doi: 10.1074/jbc.RA117.001254. Epub 2018 Mar 29.
4
Mitochondrial CoQ deficiency is a common driver of mitochondrial oxidants and insulin resistance.线粒体 CoQ 缺乏是线粒体氧化剂和胰岛素抵抗的常见驱动因素。
Elife. 2018 Feb 6;7:e32111. doi: 10.7554/eLife.32111.
5
A gas trapping method for high-throughput metabolic experiments.一种用于高通量代谢实验的气体捕获方法。
Biotechniques. 2018 Jan 1;64(1):27-29. doi: 10.2144/000114629.
6
The transcriptional response to oxidative stress is part of, but not sufficient for, insulin resistance in adipocytes.氧化应激的转录反应是脂肪细胞胰岛素抵抗的一部分,但不足以导致其发生。
Sci Rep. 2018 Jan 29;8(1):1774. doi: 10.1038/s41598-018-20104-x.
7
Dynamic Metabolomics Reveals that Insulin Primes the Adipocyte for Glucose Metabolism.动态代谢组学揭示胰岛素使脂肪细胞为葡萄糖代谢做好准备。
Cell Rep. 2017 Dec 19;21(12):3536-3547. doi: 10.1016/j.celrep.2017.11.085.
8
Production of superoxide and hydrogen peroxide from specific mitochondrial sites under different bioenergetic conditions.在不同生物能量条件下特定线粒体位点产生超氧化物和过氧化氢。
J Biol Chem. 2017 Oct 13;292(41):16804-16809. doi: 10.1074/jbc.R117.789271. Epub 2017 Aug 24.
9
An improved Akt reporter reveals intra- and inter-cellular heterogeneity and oscillations in signal transduction.一种改进的Akt报告基因揭示了细胞内和细胞间的信号转导异质性及振荡。
J Cell Sci. 2017 Aug 15;130(16):2757-2766. doi: 10.1242/jcs.205369. Epub 2017 Jun 29.
10
Bicarbonate alters cellular responses in respiration assays.碳酸氢盐会改变呼吸测定中的细胞反应。
Biochem Biophys Res Commun. 2017 Aug 5;489(4):399-403. doi: 10.1016/j.bbrc.2017.05.151. Epub 2017 May 27.

脂肪细胞中的线粒体氧化剂对葡萄糖敏感,但呼吸作用却不敏感。

Mitochondrial oxidants, but not respiration, are sensitive to glucose in adipocytes.

机构信息

School of Life and Environmental Sciences, The University of Sydney, Sydney, New South Wales 2006, Australia; Charles Perkins Centre, The University of Sydney, Sydney, New South Wales 2006, Australia.

East Carolina Diabetes and Obesity Institute, Brody School of Medicine, East Carolina University, Greenville, North Carolina 27834.

出版信息

J Biol Chem. 2020 Jan 3;295(1):99-110. doi: 10.1074/jbc.RA119.011695. Epub 2019 Nov 19.

DOI:10.1074/jbc.RA119.011695
PMID:31744882
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6952605/
Abstract

Insulin action in adipose tissue is crucial for whole-body glucose homeostasis, with insulin resistance being a major risk factor for metabolic diseases such as type 2 diabetes. Recent studies have proposed mitochondrial oxidants as a unifying driver of adipose insulin resistance, serving as a signal of nutrient excess. However, neither the substrates for nor sites of oxidant production are known. Because insulin stimulates glucose utilization, we hypothesized that glucose oxidation would fuel respiration, in turn generating mitochondrial oxidants. This would impair insulin action, limiting further glucose uptake in a negative feedback loop of "glucose-dependent" insulin resistance. Using primary rat adipocytes and cultured 3T3-L1 adipocytes, we observed that insulin increased respiration, but notably this occurred independently of glucose supply. In contrast, glucose was required for insulin to increase mitochondrial oxidants. Despite rising to similar levels as when treated with other agents that cause insulin resistance, glucose-dependent mitochondrial oxidants failed to cause insulin resistance. Subsequent studies revealed a temporal relationship whereby mitochondrial oxidants needed to increase before the insulin stimulus to induce insulin resistance. Together, these data reveal that () adipocyte respiration is principally fueled from nonglucose sources; () there is a disconnect between respiration and oxidative stress, whereby mitochondrial oxidant levels do not rise with increased respiration unless glucose is present; and () mitochondrial oxidative stress must precede the insulin stimulus to cause insulin resistance, explaining why short-term, insulin-dependent glucose utilization does not promote insulin resistance. These data provide additional clues to mechanistically link nutrient excess to adipose insulin resistance.

摘要

脂肪组织中的胰岛素作用对于全身葡萄糖稳态至关重要,胰岛素抵抗是 2 型糖尿病等代谢疾病的主要危险因素。最近的研究提出,线粒体氧化剂是脂肪胰岛素抵抗的统一驱动因素,作为营养过剩的信号。然而,氧化剂的产生底物和部位尚不清楚。由于胰岛素刺激葡萄糖利用,我们假设葡萄糖氧化将为呼吸供能,进而产生线粒体氧化剂。这将损害胰岛素作用,在“葡萄糖依赖性”胰岛素抵抗的负反馈循环中限制进一步的葡萄糖摄取。使用原代大鼠脂肪细胞和培养的 3T3-L1 脂肪细胞,我们观察到胰岛素增加了呼吸,但值得注意的是,这是在不依赖葡萄糖供应的情况下发生的。相比之下,葡萄糖是胰岛素增加线粒体氧化剂所必需的。尽管上升到与用其他导致胰岛素抵抗的药物处理时相似的水平,但葡萄糖依赖性线粒体氧化剂未能引起胰岛素抵抗。随后的研究揭示了一种时间关系,即线粒体氧化剂需要在胰岛素刺激之前增加,才能诱导胰岛素抵抗。总之,这些数据表明:(1)脂肪细胞呼吸主要由非葡萄糖来源提供燃料;(2)呼吸和氧化应激之间存在脱节,除非存在葡萄糖,否则线粒体氧化剂水平不会随着呼吸增加而升高;(3)线粒体氧化应激必须先于胰岛素刺激才能引起胰岛素抵抗,这解释了为什么短期、胰岛素依赖性葡萄糖利用不会促进胰岛素抵抗。这些数据为将营养过剩与脂肪胰岛素抵抗在机制上联系起来提供了更多线索。