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本文引用的文献

1
Metformin, metabolic stress, and mitochondria. Focus on "A novel inverse relationship between metformin-triggered AMPK-SIRT1 signaling and p53 protein abundance in high glucose-exposed HepG2 cells".二甲双胍、代谢应激与线粒体。聚焦于“高糖处理的HepG2细胞中二甲双胍触发的AMPK-SIRT1信号与p53蛋白丰度之间的新型反向关系”
Am J Physiol Cell Physiol. 2012 Jul 1;303(1):C1-3. doi: 10.1152/ajpcell.00090.2012. Epub 2012 Mar 21.
2
Sirtuin 1 (SIRT1) protein degradation in response to persistent c-Jun N-terminal kinase 1 (JNK1) activation contributes to hepatic steatosis in obesity.持久的 c-Jun N 端激酶 1(JNK1)激活导致 Sirtuin 1(SIRT1)蛋白降解,从而导致肥胖中的肝脂肪变性。
J Biol Chem. 2011 Jun 24;286(25):22227-34. doi: 10.1074/jbc.M111.228874. Epub 2011 May 3.
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AMPK phosphorylates and inhibits SREBP activity to attenuate hepatic steatosis and atherosclerosis in diet-induced insulin-resistant mice.AMPK 通过磷酸化和抑制 SREBP 的活性来减轻饮食诱导的胰岛素抵抗小鼠的肝脂肪变性和动脉粥样硬化。
Cell Metab. 2011 Apr 6;13(4):376-388. doi: 10.1016/j.cmet.2011.03.009.
4
The PPARβ/δ activator GW501516 prevents the down-regulation of AMPK caused by a high-fat diet in liver and amplifies the PGC-1α-Lipin 1-PPARα pathway leading to increased fatty acid oxidation.过氧化物酶体增殖物激活受体β/δ 激动剂 GW501516 可防止高脂肪饮食引起的肝脏中 AMPK 的下调,并放大 PGC-1α-脂肪酶 1-PPARα 通路,导致脂肪酸氧化增加。
Endocrinology. 2011 May;152(5):1848-59. doi: 10.1210/en.2010-1468. Epub 2011 Mar 1.
5
Metformin and cancer: new applications for an old drug.二甲双胍与癌症:老药新用。
Med Oncol. 2012 Jun;29(2):1314-27. doi: 10.1007/s12032-011-9846-7. Epub 2011 Feb 8.
6
Role of AMP-activated protein kinase and adiponectin during development of hepatic steatosis in high-fat diet-induced obesity in rats.AMP激活的蛋白激酶和脂联素在高脂饮食诱导的大鼠肥胖症肝脂肪变性发展过程中的作用
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7
Nicotinamide phosphoribosyltransferase protects against ischemic stroke through SIRT1-dependent adenosine monophosphate-activated kinase pathway.烟酰胺磷酸核糖转移酶通过 SIRT1 依赖的单磷酸腺苷激活的蛋白激酶途径保护缺血性脑卒中。
Ann Neurol. 2011 Feb;69(2):360-74. doi: 10.1002/ana.22236. Epub 2011 Jan 19.
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p53 at a glance.p53 一览。
J Cell Sci. 2010 Aug 1;123(Pt 15):2527-32. doi: 10.1242/jcs.064501.
9
AMP-activated protein kinase (AMPK) negatively regulates Nox4-dependent activation of p53 and epithelial cell apoptosis in diabetes.腺苷酸活化蛋白激酶 (AMPK) 负调控糖尿病中 Nox4 依赖性 p53 激活和上皮细胞凋亡。
J Biol Chem. 2010 Nov 26;285(48):37503-12. doi: 10.1074/jbc.M110.136796. Epub 2010 Sep 22.
10
SIRT1 deacetylates and inhibits SREBP-1C activity in regulation of hepatic lipid metabolism.SIRT1 通过去乙酰化作用抑制 SREBP-1C 的活性,从而调节肝脏的脂质代谢。
J Biol Chem. 2010 Oct 29;285(44):33959-70. doi: 10.1074/jbc.M110.122978. Epub 2010 Sep 3.

高糖暴露的 HepG2 细胞中二甲双胍触发的 AMPK-SIRT1 信号与 p53 蛋白丰度之间的新的负相关关系。

A novel inverse relationship between metformin-triggered AMPK-SIRT1 signaling and p53 protein abundance in high glucose-exposed HepG2 cells.

机构信息

Endocrinology, Diabetes, and Nutrition Section, Department of Medicine, Boston University School of Medicine, Massachusetts, USA.

出版信息

Am J Physiol Cell Physiol. 2012 Jul 1;303(1):C4-C13. doi: 10.1152/ajpcell.00296.2011. Epub 2012 Feb 29.

DOI:10.1152/ajpcell.00296.2011
PMID:22378745
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3404529/
Abstract

AMP-activated protein kinase (AMPK) and the NAD(+)-dependent histone/protein deacetylase sirtuin 1 (SIRT1) are metabolic sensors that can increase each other's activity. They are also both activated by the antidiabetic drug metformin and downregulated in the liver under conditions of nutrient excess (e.g., hyperglycemia, high-fat diet, obesity). In these situations, the abundance of the tumor suppressor p53 is increased; however, the relevance of this to the changes in AMPK and SIRT1 is not known. In the present study we investigated this question in HepG2 cells under high glucose conditions. Metformin induced activation of AMPK and SIRT1 and decreased p53 protein abundance. It also decreased triglyceride accumulation and cytosolic oxidative stress (a trigger for p53 accumulation) and increased the deacetylation of p53 at a SIRT1-targeted site. The decrease in p53 abundance caused by metformin was abolished by inhibition of murine double minute 2 (MDM2), a ubiquitin ligase that mediates p53 degradation, as well as by overexpression of a dominant-negative AMPK or a shRNA-mediated knockdown of SIRT1. In addition, overexpression of p53 decreased SIRT1 gene expression and protein abundance, as well as AMPK activity in metformin-treated cells. It also diminished the triglyceride-lowering action of metformin, an effect that was rescued by incubation with the SIRT1 activator SRT2183. Collectively, these findings suggest the existence of a novel reciprocal interaction between AMPK/SIRT1 and p53 that may have implications for the pathogenesis and treatment of metabolic diseases.

摘要

AMP 激活的蛋白激酶 (AMPK) 和烟酰胺腺嘌呤二核苷酸 (NAD(+)) 依赖性组蛋白/蛋白去乙酰化酶 SIRT1 是代谢传感器,可增加彼此的活性。它们还都可被抗糖尿病药物二甲双胍激活,并在营养过剩(如高血糖、高脂肪饮食、肥胖)的情况下在肝脏中下调。在这些情况下,肿瘤抑制因子 p53 的丰度增加;然而,这与 AMPK 和 SIRT1 变化的相关性尚不清楚。在本研究中,我们在高葡萄糖条件下的 HepG2 细胞中研究了这个问题。二甲双胍诱导 AMPK 和 SIRT1 的激活,并降低 p53 蛋白丰度。它还降低了甘油三酯的积累和细胞质氧化应激(p53 积累的触发因素),并增加了 SIRT1 靶向位点的 p53 去乙酰化。二甲双胍引起的 p53 丰度降低被鼠双微体 2 (MDM2) 的抑制所消除,MDM2 是一种介导 p53 降解的泛素连接酶,以及通过过表达显性负性 AMPK 或 SIRT1 的 shRNA 介导的敲低。此外,p53 的过表达降低了 SIRT1 基因表达和蛋白丰度,以及二甲双胍处理细胞中的 AMPK 活性。它还减弱了二甲双胍的降低甘油三酯作用,该作用可通过用 SIRT1 激活剂 SRT2183 孵育来挽救。总的来说,这些发现表明 AMPK/SIRT1 和 p53 之间存在一种新的相互作用,这可能对代谢性疾病的发病机制和治疗有影响。