首页> 美国卫生研究院文献>The Journal of Biological Chemistry >The KRAS Promoter Responds to Myc-associated Zinc Finger and Poly(ADP-ribose) Polymerase 1 Proteins Which Recognize a Critical Quadruplex-forming GA-element
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The KRAS Promoter Responds to Myc-associated Zinc Finger and Poly(ADP-ribose) Polymerase 1 Proteins Which Recognize a Critical Quadruplex-forming GA-element

机译:KRAS启动子响应Myc相关的锌指和聚(ADP-核糖)聚合酶1蛋白其识别关键的四链体形成GA元素。

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摘要

The murine KRAS promoter contains a G-rich nuclease hypersensitive element (GA-element) upstream of the transcription start site that is essential for transcription. Pulldown and chromatin immunoprecipitation assays demonstrate that this GA-element is bound by the Myc-associated zinc finger (MAZ) and poly(ADP-ribose) polymerase 1 (PARP-1) proteins. These proteins are crucial for transcription, because when they are knocked down by short hairpin RNA, transcription is down-regulated. This is also the case when the poly(ADP-ribosyl)ation activity of PARP-1 is inhibited by 3,4-dihydro-5-[4-(1-piperidinyl) butoxyl]-1(2H) isoquinolinone. We found that MAZ specifically binds to the duplex and quadruplex conformations of the GA-element, whereas PARP-1 shows specificity only for the G-quadruplex. On the basis of fluorescence resonance energy transfer melting and polymerase stop assays we saw that MAZ stabilizes the KRAS quadruplex. When the capacity of folding in the GA-element is abrogated by specific G → T or G → A point mutations, KRAS transcription is down-regulated. Conversely, guanidine-modified phthalocyanines, which specifically interact with and stabilize the KRAS G-quadruplex, push the promoter activity up to more than double. Collectively, our data support a transcription mechanism for murine KRAS that involves MAZ, PARP-1 and duplex-quadruplex conformational changes in the promoter GA-element.
机译:鼠KRAS启动子在转录起始位点上游含有富含G的核酸酶超敏元件(GA元件),这对于转录至关重要。下拉和染色质免疫沉淀试验表明,这种GA元素被Myc相关的锌指(MAZ)和聚(ADP-核糖)聚合酶1(PARP-1)蛋白结合。这些蛋白质对于转录至关重要,因为当它们被短发夹RNA击倒时,转录会被下调。当PARP-1的聚(ADP-核糖基)化活性被3,4-二氢-5- [4-(1-哌啶基)丁氧基] -1(2H)异喹啉酮抑制时,情况也是如此。我们发现MAZ特异性结合GA元素的双链和四链构象,而PARP-1仅显示对G-四链的特异性。在荧光共振能量转移融解和聚合酶终止试验的基础上,我们看到MAZ使KRAS四链体稳定。当特定G→T或G→A点突变消除了GA元件中的折叠能力时,KRAS转录被下调。相反,与KRAS G-四链体相互作用并使其稳定的胍修饰的酞菁将启动子活性提高到两倍以上。总的来说,我们的数据支持了小鼠KRAS的转录机制,该机制涉及启动子GA元件中的MAZ,PARP-1和双链体-四链体构象变化。

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