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本文引用的文献

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Quantitative dissection and stoichiometry determination of the human SET1/MLL histone methyltransferase complexes.定量剖析和人 SET1/MLL 组蛋白甲基转移酶复合物的化学计量测定。
Mol Cell Biol. 2013 May;33(10):2067-77. doi: 10.1128/MCB.01742-12. Epub 2013 Mar 18.
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Age-associated inflammation inhibits epidermal stem cell function.年龄相关的炎症会抑制表皮干细胞的功能。
Genes Dev. 2012 Oct 1;26(19):2144-53. doi: 10.1101/gad.192294.112. Epub 2012 Sep 12.
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ETS-dependent p16INK4a and p21waf1/cip1 gene expression upon endothelin-1 stimulation in malignant versus and non-malignant proximal tubule cells.内皮素-1 刺激恶性与非恶性近端肾小管细胞时,ETS 依赖性 p16INK4a 和 p21waf1/cip1 基因表达。
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Trithorax group proteins: switching genes on and keeping them active.三价染色体组蛋白:开启和维持基因活性。
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Control of the senescence-associated secretory phenotype by NF-κB promotes senescence and enhances chemosensitivity.NF-κB 控制衰老相关分泌表型可促进衰老并增强化疗敏感性。
Genes Dev. 2011 Oct 15;25(20):2125-36. doi: 10.1101/gad.17276711. Epub 2011 Oct 6.
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The acetylation of transcription factor HBP1 by p300/CBP enhances p16INK4A expression.转录因子 HBP1 的乙酰化作用由 p300/CBP 增强,从而增强了 p16INK4A 的表达。
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Tumor suppressor and aging biomarker p16(INK4a) induces cellular senescence without the associated inflammatory secretory phenotype.肿瘤抑制因子和衰老生物标志物 p16(INK4a) 在没有相关炎症分泌表型的情况下诱导细胞衰老。
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Epigenetics and senescence: learning from the INK4-ARF locus.表观遗传学与衰老:从 INK4-ARF 基因座中学习。
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Wdr5 mediates self-renewal and reprogramming via the embryonic stem cell core transcriptional network.Wdr5 通过胚胎干细胞核心转录网络介导自我更新和重编程。
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p38MAPK is a novel DNA damage response-independent regulator of the senescence-associated secretory phenotype.p38MAPK 是一种新型的与 DNA 损伤反应无关的衰老相关 secretory phenotype 的调控因子。
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DPY30 通过 ID 蛋白表达调控细胞衰老途径。

DPY30 regulates pathways in cellular senescence through ID protein expression.

机构信息

Centre for Genomic Regulation (CRG) and UPF, Department of Gene Regulation, Stem Cells and Cancer, Barcelona, Spain.

出版信息

EMBO J. 2013 Aug 14;32(16):2217-30. doi: 10.1038/emboj.2013.159. Epub 2013 Jul 19.

DOI:10.1038/emboj.2013.159
PMID:23872946
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3746196/
Abstract

Cellular senescence is an intrinsic defense mechanism to various cellular stresses: while still metabolically active, senescent cells stop dividing and enter a proliferation arrest. Here, we identify DPY30, a member of all mammalian histone H3K4 histone methyltransferases (HMTases), as a key regulator of the proliferation potential of human primary cells. Following depletion of DPY30, cells show a severe proliferation defect and display a senescent phenotype, including a flattened and enlarged morphology, elevated level of reactive oxygen species (ROS), increased SA-β-galactosidase activity, and formation of senescence-associated heterochromatin foci (SAHFs). While DPY30 depletion leads to a reduced level of H3K4me3-marked active chromatin, we observed a concomitant activation of CDK inhibitors, including p16INK4a, independent of H3K4me3. ChIP experiments show that key regulators of cell-cycle progression, including ID proteins, are under direct control of DPY30. Because ID proteins are negative regulators of the transcription factors ETS1/2, depletion of DPY30 leads to the transcriptional activation of p16INK4a by ETS1/2 and thus to a senescent-like phenotype. Ectoptic re-introduction of ID protein expression can partially rescue the senescence-like phenotype induced by DPY30 depletion. Thus, our data indicate that DPY30 controls proliferation by regulating ID proteins expression, which in turn lead to senescence bypass.

摘要

细胞衰老(cellular senescence)是一种针对各种细胞应激的内在防御机制:虽然仍具有代谢活性,但衰老细胞停止分裂并进入增殖停滞状态。在这里,我们鉴定出 DPY30 是所有哺乳动物组蛋白 H3K4 组蛋白甲基转移酶(HMTases)的成员,是人类原代细胞增殖潜力的关键调节因子。在 DPY30 耗尽后,细胞表现出严重的增殖缺陷,并表现出衰老表型,包括扁平且增大的形态、活性氧(ROS)水平升高、SA-β-半乳糖苷酶活性增加以及衰老相关异染色质焦点(SAHFs)的形成。虽然 DPY30 耗尽会导致 H3K4me3 标记的活性染色质水平降低,但我们观察到 CDK 抑制剂(包括 p16INK4a)的同时激活,而与 H3K4me3 无关。ChIP 实验表明,细胞周期进程的关键调节因子,包括 ID 蛋白,受 DPY30 的直接控制。由于 ID 蛋白是 ETS1/2 转录因子的负调节剂,因此 DPY30 的耗竭会导致 ETS1/2 对 p16INK4a 的转录激活,从而导致类似衰老的表型。ID 蛋白表达的异位重新引入可以部分挽救 DPY30 耗竭诱导的衰老样表型。因此,我们的数据表明 DPY30 通过调节 ID 蛋白的表达来控制增殖,这反过来又导致衰老旁路。