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本文引用的文献

1
Activation of the prolyl-hydroxylase oxygen-sensing signal cascade leads to AMPK activation in cardiomyocytes.脯氨酰羟化酶氧感知信号级联的激活导致心肌细胞中 AMPK 的激活。
J Cell Mol Med. 2012 Sep;16(9):2049-59. doi: 10.1111/j.1582-4934.2011.01500.x.
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O-GlcNAcylation, novel post-translational modification linking myocardial metabolism and cardiomyocyte circadian clock.O-GlcNAcylation,一种连接心肌代谢和心肌细胞生物钟的新型翻译后修饰。
J Biol Chem. 2011 Dec 30;286(52):44606-19. doi: 10.1074/jbc.M111.278903. Epub 2011 Nov 8.
3
Detection and analysis of proteins modified by O-linked N-acetylglucosamine.O-连接的N-乙酰葡糖胺修饰的蛋白质的检测与分析
Curr Protoc Protein Sci. 2011 Nov;Chapter 12:12.8.1-12.8.33. doi: 10.1002/0471140864.ps1208s66.
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How low should you go? The limbo of glycemic control in intensive care units.血糖究竟该降至多低?重症监护病房中的血糖控制困境
Crit Care Nurse. 2011 Aug;31(4):e9-e18. doi: 10.4037/ccn2011188.
5
O-GlcNAc-specific antibody CTD110.6 cross-reacts with N-GlcNAc2-modified proteins induced under glucose deprivation.O-GlcNAc 特异性抗体 CTD110.6 与葡萄糖剥夺诱导的 N-GlcNAc2 修饰蛋白发生交叉反应。
PLoS One. 2011 Apr 19;6(4):e18959. doi: 10.1371/journal.pone.0018959.
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Acute regulation of cardiac metabolism by the hexosamine biosynthesis pathway and protein O-GlcNAcylation.己糖胺生物合成途径和蛋白质 O-GlcNAc 修饰对心脏代谢的急性调节。
PLoS One. 2011 Apr 11;6(4):e18417. doi: 10.1371/journal.pone.0018417.
7
Cross talk between O-GlcNAcylation and phosphorylation: roles in signaling, transcription, and chronic disease.O-糖基化与磷酸化的对话:在信号转导、转录和慢性疾病中的作用。
Annu Rev Biochem. 2011;80:825-58. doi: 10.1146/annurev-biochem-060608-102511.
8
The hexosamine biosynthetic pathway couples growth factor-induced glutamine uptake to glucose metabolism.己糖胺生物合成途径将生长因子诱导的谷氨酰胺摄取与葡萄糖代谢偶联。
Genes Dev. 2010 Dec 15;24(24):2784-99. doi: 10.1101/gad.1985910. Epub 2010 Nov 24.
9
O-linked beta-N-acetylglucosamine (O-GlcNAc) regulates stress-induced heat shock protein expression in a GSK-3beta-dependent manner.O-连接的β-N-乙酰氨基葡萄糖(O-GlcNAc)通过 GSK-3β依赖的方式调节应激诱导的热休克蛋白表达。
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10
Severe hypoglycemia and risks of vascular events and death.严重低血糖与血管事件和死亡风险。
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葡萄糖剥夺诱导的心肌细胞蛋白质 O-GlcNAcylation 增加是钙离子依赖性的。

Glucose deprivation-induced increase in protein O-GlcNAcylation in cardiomyocytes is calcium-dependent.

机构信息

Division of Molecular and Cellular Pathology, Department of Pathology, University of Alabama at Birmingham, Birmingham, Alabama 35294-0019, USA.

出版信息

J Biol Chem. 2012 Oct 5;287(41):34419-31. doi: 10.1074/jbc.M112.393207. Epub 2012 Aug 20.

DOI:10.1074/jbc.M112.393207
PMID:22908225
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3464547/
Abstract

The posttranslational modification of nuclear and cytosolic proteins by O-linked β-N-acetylglucosamine (O-GlcNAc) has been shown to play an important role in cellular response to stress. Although increases in O-GlcNAc levels have typically been thought to be substrate-driven, studies in several transformed cell lines reported that glucose deprivation increased O-GlcNAc levels by a number of different mechanisms. A major goal of this study therefore was to determine whether in primary cells, such as neonatal cardiomyocytes, glucose deprivation increases O-GlcNAc levels and if so by what mechanism. Glucose deprivation significantly increased cardiomyocyte O-GlcNAc levels in a time-dependent manner and was associated with decreased O-GlcNAcase (OGA) but not O-GlcNAc transferase (OGT) protein. This response was unaffected by either the addition of pyruvate as an alternative energy source or by the p38 MAPK inhibitor SB203580. However, the response to glucose deprivation was blocked completely by glucosamine, but not by inhibition of OGA with 2-acetamido-2-deoxy-d-glucopyranosylidene)amino-N-phenylcarbamate. Interestingly, the CaMKII inhibitor KN93 also significantly reduced the response to glucose deprivation. Lowering extracellular Ca(2+) with EGTA or blocking store operated Ca(2+) entry with SKF96365 also attenuated the glucose deprivation-induced increase in O-GlcNAc. In C2C12 and HEK293 cells both glucose deprivation and heat shock increased O-GlcNAc levels, and CaMKII inhibitor KN93 attenuated the response to both stresses. These results suggest that increased intracellular calcium and subsequent activation of CaMKII play a key role in regulating the stress-induced increase in cellular O-GlcNAc levels.

摘要

核蛋白和胞浆蛋白的 O-连接β-N-乙酰氨基葡萄糖(O-GlcNAc)的翻译后修饰在细胞对应激的反应中发挥着重要作用。尽管 O-GlcNAc 水平的增加通常被认为是底物驱动的,但在一些转化细胞系的研究中报道,葡萄糖剥夺通过多种不同的机制增加了 O-GlcNAc 水平。因此,本研究的主要目标是确定在原代细胞(如新生心肌细胞)中,葡萄糖剥夺是否会增加 O-GlcNAc 水平,如果是,其机制是什么。葡萄糖剥夺以时间依赖性方式显著增加心肌细胞的 O-GlcNAc 水平,与 O-GlcNAcase(OGA)但不是 O-GlcNAc 转移酶(OGT)蛋白减少有关。这种反应不受添加丙酮酸作为替代能源源或 p38 MAPK 抑制剂 SB203580 的影响。然而,葡萄糖剥夺的反应被完全阻断由葡萄糖胺,但不是通过 2-乙酰氨基-2-脱氧-d-葡萄糖吡喃糖基)氨基-N-苯基氨基甲酰阻止 OGA 的抑制。有趣的是,CaMKII 抑制剂 KN93 也显著降低了葡萄糖剥夺的反应。用 EGTA 降低细胞外 Ca(2+)或用 SKF96365 阻断储存操作的 Ca(2+)内流也减弱了葡萄糖剥夺诱导的 O-GlcNAc 增加。在 C2C12 和 HEK293 细胞中,葡萄糖剥夺和热休克都增加了 O-GlcNAc 水平,CaMKII 抑制剂 KN93 减弱了对这两种应激的反应。这些结果表明,细胞内钙增加和随后的 CaMKII 激活在调节应激诱导的细胞 O-GlcNAc 水平增加中起着关键作用。