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本文引用的文献

1
Telomerase activation by c-Myc in human mammary epithelial cells requires additional genomic changes.c-Myc在人乳腺上皮细胞中激活端粒酶需要其他基因组改变。
Cell Cycle. 2009 Oct 15;8(20):3373-8. doi: 10.4161/cc.8.20.9856. Epub 2009 Oct 19.
2
Chromatin remodeling: recruitment of histone demethylase RBP2 by Mad1 for transcriptional repression of a Myc target gene, telomerase reverse transcriptase.染色质重塑:Mad1 募集组蛋白去甲基酶 RBP2 以抑制 Myc 靶基因端粒酶逆转录酶的转录。
FASEB J. 2010 Feb;24(2):579-86. doi: 10.1096/fj.09-140087. Epub 2009 Sep 17.
3
A gene expression signature classifying telomerase and ALT immortalization reveals an hTERT regulatory network and suggests a mesenchymal stem cell origin for ALT.一种区分端粒酶和ALT永生化的基因表达特征揭示了一个hTERT调控网络,并提示ALT起源于间充质干细胞。
Oncogene. 2009 Oct 29;28(43):3765-74. doi: 10.1038/onc.2009.238. Epub 2009 Aug 17.
4
Dynamic telomerase gene suppression via network effects of GSK3 inhibition.通过糖原合成酶激酶3抑制的网络效应实现端粒酶基因的动态抑制
PLoS One. 2009 Jul 31;4(7):e6459. doi: 10.1371/journal.pone.0006459.
5
Butein suppresses c-Myc-dependent transcription and Akt-dependent phosphorylation of hTERT in human leukemia cells.染料木黄酮抑制人白血病细胞中 c-Myc 依赖性转录和 Akt 依赖性 hTERT 磷酸化。
Cancer Lett. 2009 Dec 28;286(2):172-9. doi: 10.1016/j.canlet.2009.05.028. Epub 2009 Jun 27.
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Facilitating replication under stress: an oncogenic function of MYC?在应激条件下促进复制:MYC的一种致癌功能?
Nat Rev Cancer. 2009 Jun;9(6):441-4. doi: 10.1038/nrc2640.
7
The role of recombination in telomere length maintenance.重组在端粒长度维持中的作用。
Biochem Soc Trans. 2009 Jun;37(Pt 3):589-95. doi: 10.1042/BST0370589.
8
Polymorphisms in TCEAL7 and risk of epithelial ovarian cancer.TCEAL7基因多态性与上皮性卵巢癌风险
Gynecol Oncol. 2009 Aug;114(2):260-4. doi: 10.1016/j.ygyno.2009.03.038. Epub 2009 May 5.
9
Reflecting on 25 years with MYC.回顾与MYC相伴的25年。
Nat Rev Cancer. 2008 Dec;8(12):976-90. doi: 10.1038/nrc2231.
10
Integrated nanosensors to determine levels and functional activity of human telomerase.用于测定人端粒酶水平和功能活性的集成纳米传感器。
Neoplasia. 2008 Oct;10(10):1066-72. doi: 10.1593/neo.08350.

TCEAL7 通过抑制端粒的非经典延长过程中的 c-Myc 活性来调节 hTERT 的表达。

TCEAL7 inhibition of c-Myc activity in alternative lengthening of telomeres regulates hTERT expression.

机构信息

University of Glasgow, CRUK Beatson Laboratories, Glasgow, UK.

出版信息

Neoplasia. 2010 May;12(5):405-14. doi: 10.1593/neo.10180.

DOI:10.1593/neo.10180
PMID:20454512
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2864478/
Abstract

Replicative senescence forms a major barrier to tumor progression. Cancer cells bypass this by using one of the two known telomere maintenance mechanisms: telomerase or the recombination-based alternative lengthening of telomeres (ALT) mechanism. The molecular details of ALT are currently poorly understood. We have previously shown that telomerase is actively repressed through complex networks of kinase, gene expression, and chromatin regulation. In this study, we aimed to gain further understanding of the role of kinases in the regulation of telomerase expression in ALT cells. Using a whole human kinome small interfering RNA (siRNA) screen, we highlighted 106 kinases whose expression is linked to human telomerase reverse transcriptase (hTERT) promoter activity. Network modeling of transcriptional regulation implicated c-Myc as a key regulator of the 106 kinase hits. Given our previous observations of lower c-Myc activity in ALT cells, we further explored its potential to regulate telomerase expression in ALT. We found increased c-Myc binding at the hTERT promoter in telomerase-positive compared with ALT cells, although no expression differences in c-Myc, Mad, or Max were observed between ALT and telomerase-positive cells that could explain decreased c-Myc activity in ALT. Instead, we found increased expression of the c-Myc competitive inhibitor TCEAL7 in ALT cells and tumors and that alteration of TCEAL7 expression levels in ALT and telomerase-positive cells affects hTERT expression. Lower c-Myc activity in ALT may therefore be obtained through TCEAL7 regulation. Thus, TCEAL7 may present an interesting novel target for cancer therapy, which warrants further investigation.

摘要

复制性衰老构成了肿瘤进展的主要障碍。癌细胞通过使用两种已知的端粒维持机制之一来绕过这一障碍:端粒酶或基于重组的端粒延长的替代机制 (ALT)。ALT 的分子细节目前了解甚少。我们之前已经表明,端粒酶通过激酶、基因表达和染色质调节的复杂网络被积极抑制。在这项研究中,我们旨在进一步了解激酶在 ALT 细胞中端粒酶表达调控中的作用。使用全人激酶组小干扰 RNA (siRNA) 筛选,我们突出了 106 种激酶,其表达与人类端粒酶逆转录酶 (hTERT) 启动子活性相关。转录调控的网络建模表明 c-Myc 是 106 种激酶命中的关键调节剂。鉴于我们之前观察到 ALT 细胞中 c-Myc 活性较低,我们进一步探索了其在 ALT 中调节端粒酶表达的潜力。我们发现,与 ALT 细胞相比,端粒酶阳性细胞中 hTERT 启动子上的 c-Myc 结合增加,尽管在 ALT 和端粒酶阳性细胞之间未观察到 c-Myc、Mad 或 Max 的表达差异,这可以解释 ALT 中 c-Myc 活性降低。相反,我们发现 ALT 细胞和肿瘤中 c-Myc 竞争性抑制剂 TCEAL7 的表达增加,并且 ALT 和端粒酶阳性细胞中 TCEAL7 表达水平的改变会影响 hTERT 表达。因此,ALT 中的低 c-Myc 活性可能是通过 TCEAL7 调节获得的。因此,TCEAL7 可能是癌症治疗的一个有趣的新靶点,值得进一步研究。