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本文引用的文献

1
FOXO3A directs a protective autophagy program in haematopoietic stem cells.FOXO3A 指导造血干细胞中的保护性自噬程序。
Nature. 2013 Feb 21;494(7437):323-7. doi: 10.1038/nature11895. Epub 2013 Feb 6.
2
Sestrin2 integrates Akt and mTOR signaling to protect cells against energetic stress-induced death.Sestrin2 将 Akt 和 mTOR 信号整合在一起,以保护细胞免受能量应激诱导的死亡。
Cell Death Differ. 2013 Apr;20(4):611-9. doi: 10.1038/cdd.2012.157. Epub 2012 Dec 14.
3
p53 is a major component of the transcriptional and apoptotic program regulated by PI 3-kinase/Akt/GSK3 signaling.p53 是受 PI 3-激酶/Akt/GSK3 信号转导调控的转录和凋亡程序的主要组成部分。
Cell Death Dis. 2012 Oct 11;3(10):e400. doi: 10.1038/cddis.2012.138.
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Proliferation and tissue remodeling in cancer: the hallmarks revisited.癌症中的增殖和组织重塑:重新审视标志性特征。
Cell Death Dis. 2012 Oct 4;3(10):e397. doi: 10.1038/cddis.2012.140.
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TAp73 depletion accelerates aging through metabolic dysregulation.TAp73 缺失通过代谢失调加速衰老。
Genes Dev. 2012 Sep 15;26(18):2009-14. doi: 10.1101/gad.197640.112.
6
Induction of autophagy does not alter the anti-tumor effects of HDAC inhibitors.自噬的诱导并不改变组蛋白去乙酰化酶抑制剂的抗肿瘤作用。
Cell Death Dis. 2012 Sep 6;3(9):e387. doi: 10.1038/cddis.2012.128.
7
Functional interplay between p63 and p53 controls RUNX1 function in the transition from proliferation to differentiation in human keratinocytes.p63 和 p53 之间的功能相互作用控制着人角质细胞从增殖到分化过程中 RUNX1 的功能。
Cell Death Dis. 2012 Jun 7;3(6):e318. doi: 10.1038/cddis.2012.62.
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Emerging concepts: linking hypoxic signaling and cancer metabolism.新兴概念:缺氧信号与癌症代谢的联系
Cell Death Dis. 2012 May 3;3(5):e303. doi: 10.1038/cddis.2012.41.
9
microRNA-34a regulates neurite outgrowth, spinal morphology, and function.miRNA-34a 调控神经突生长、脊髓形态和功能。
Proc Natl Acad Sci U S A. 2011 Dec 27;108(52):21099-104. doi: 10.1073/pnas.1112063108. Epub 2011 Dec 12.
10
Neuronal differentiation by TAp73 is mediated by microRNA-34a regulation of synaptic protein targets.TAp73 通过 microRNA-34a 调控突触蛋白靶标诱导神经元分化。
Proc Natl Acad Sci U S A. 2011 Dec 27;108(52):21093-8. doi: 10.1073/pnas.1112061109. Epub 2011 Dec 12.

p73 通过转录激活 ATG5 基因来调节自噬和肝细胞脂质代谢。

p73 regulates autophagy and hepatocellular lipid metabolism through a transcriptional activation of the ATG5 gene.

机构信息

Institute of Pharmacology, University of Bern, Bern, Switzerland.

出版信息

Cell Death Differ. 2013 Oct;20(10):1415-24. doi: 10.1038/cdd.2013.104. Epub 2013 Aug 2.

DOI:10.1038/cdd.2013.104
PMID:23912709
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3770317/
Abstract

p73, a member of the p53 tumor suppressor family, is involved in neurogenesis, sensory pathways, immunity, inflammation, and tumorigenesis. How p73 is able to participate in such a broad spectrum of different biological processes is still largely unknown. Here, we report a novel role of p73 in regulating lipid metabolism by direct transactivation of the promoter of autophagy-related protein 5 (ATG5), a gene whose product is required for autophagosome formation. Following nutrient deprivation, the livers of p73-deficient mice demonstrate a massive accumulation of lipid droplets, together with a low level of autophagy, suggesting that triglyceride hydrolysis into fatty acids is blocked owing to deficient autophagy (macrolipophagy). Compared with wild-type mice, mice functionally deficient in all the p73 isoforms exhibit decreased ATG5 expression and lower levels of autophagy in multiple organs. We further show that the TAp73α is the critical p73 isoform responsible for inducing ATG5 expression in a p53-independent manner and demonstrate that ATG5 gene transfer can correct autophagy and macrolipophagy defects in p73-deficient hepatocytes. These data strongly suggest that the p73-ATG5 axis represents a novel, key pathway for regulating lipid metabolism through autophagy. The identification of p73 as a major regulator of autophagy suggests that it may have an important role in preventing or delaying disease and aging by maintaining a homeostatic control.

摘要

p73 是 p53 肿瘤抑制家族的成员,参与神经发生、感觉途径、免疫、炎症和肿瘤发生。p73 如何能够参与如此广泛的不同生物学过程在很大程度上仍然未知。在这里,我们报告了 p73 通过直接转录激活自噬相关蛋白 5(ATG5)的启动子来调节脂质代谢的新作用,其产物是自噬体形成所必需的。在营养物质剥夺后,p73 缺陷型小鼠的肝脏表现出大量脂质滴的积累,同时自噬水平较低,表明由于自噬缺陷(巨自噬),甘油三酯水解成脂肪酸受阻。与野生型小鼠相比,所有 p73 同工型功能缺陷的小鼠在多个器官中表现出 ATG5 表达降低和自噬水平降低。我们进一步表明,TAp73α 是负责以 p53 非依赖性方式诱导 ATG5 表达的关键 p73 同工型,并证明 ATG5 基因转移可以纠正 p73 缺陷型肝细胞中的自噬和巨自噬缺陷。这些数据强烈表明,p73-ATG5 轴代表了通过自噬调节脂质代谢的新的关键途径。p73 作为自噬的主要调节剂的鉴定表明,它通过维持体内平衡控制,可能在预防或延迟疾病和衰老方面发挥重要作用。