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首页> 外文期刊>ACS Chemical Biology >Disordered N-Terminal Domain of Human Uracil DNA Glycosylase (hUNG2) Enhances DNA Translocation
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Disordered N-Terminal Domain of Human Uracil DNA Glycosylase (hUNG2) Enhances DNA Translocation

机译:人尿嘧啶DNA糖基糖酶(HUNG2)的无序N-末端结构域增强了DNA易位

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摘要

Nuclear human uracil-DNA glycosylase (hUNG2) initiates base excision repair (BER) of genornic uracils generated through misincorporation of dUMP or through deamination of cytosines. Like many human DNA glycosylases, hUNG2 contains an unstructured N-terminal domain that encodes a nuclear localization signal, protein binding motifs, and sites for post-translational modifications. Although the N-terminal domain has minimal effects on DNA binding and uracil excision kinetics, we report that this domain enhances the ability of hUNG2 to translocate on DNA chains as compared to the catalytic domain alone. The enhancement is most pronounced when physiological ion concentrations and rnacromolecular crowding agents are used. These data suggest that crowded conditions in the human cell nucleus promote the interaction of the N-terminus with duplex DNA during translocation. The increased contact time with the DNA chain likely contributes to the ability of hUNG2 to locate densely spaced uracils that arise during somatic hypermutation and during fluoropyrimidine chemotherapy.
机译:核人尿嘧啶-DNA糖基糖酶(HUNG2)引发通过倾卸或通过脱核的MISCLONATION产生的生殖器尿嘧啶的基础切除修复(BER)。与许多人DNA糖基酶一样,HunG2含有非结构化的N-末端结构域,其编码核定位信号,蛋白质结合基序和用于翻译后修饰的部位。虽然N-末端结构域对DNA结合和Uracil Excision动力学的影响很小,但我们认为该结构域增强了与单独的催化结构域相比,Hung2在DNA链上译中的能力。当使用生理离子浓度和RNAcrometo分子挤出剂时,增强最明显。这些数据表明,人细胞核中拥挤的条件促进了在易位期间与双相DNA与双相DNA的相互作用。随着DNA链的增加的接触时间可能有助于Hung2定位在体细胞高原和氟嘧啶化疗期间产生的密集间隔尿嘧啶。

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  • 来源
    《ACS Chemical Biology》 |2017年第9期|共4页
  • 作者单位

    Johns Hopkins Univ Dept Pharmacol &

    Mol Sci Sch Med 725 North Wolfe St Baltimore MD 21205 USA;

    Johns Hopkins Univ Dept Pharmacol &

    Mol Sci Sch Med 725 North Wolfe St Baltimore MD 21205 USA;

    Johns Hopkins Univ Dept Pharmacol &

    Mol Sci Sch Med 725 North Wolfe St Baltimore MD 21205 USA;

    Johns Hopkins Univ Dept Pharmacol &

    Mol Sci Sch Med 725 North Wolfe St Baltimore MD 21205 USA;

    Johns Hopkins Univ Dept Pharmacol &

    Mol Sci Sch Med 725 North Wolfe St Baltimore MD 21205 USA;

    Johns Hopkins Univ Dept Pharmacol &

    Mol Sci Sch Med 725 North Wolfe St Baltimore MD 21205 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

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