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首页> 外文期刊>Nucleic Acids Research >Structural basis of nucleic acid binding by Nicotiana tabacum glycine-rich RNA-binding protein: implications for its RNA chaperone function.
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Structural basis of nucleic acid binding by Nicotiana tabacum glycine-rich RNA-binding protein: implications for its RNA chaperone function.

机译:烟草含甘油甘油甘油甘油甘油甘氨酸甘氨酸甘氨酸甘氨酸甘氨酸结合的结构基础:对其RNA伴侣功能的影响。

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摘要

Glycine-rich RNA-binding proteins (GR-RBPs) are involved in cold shock response of plants as RNA chaperones facilitating mRNA transport, splicing and translation. GR-RBPs are bipartite proteins containing a RNA recognition motif (RRM) followed by a glycine-rich region. Here, we studied the structural basis of nucleic acid binding of full-length Nicotiana tabacum GR-RBP1. NMR studies of NtGR-RBP1 show that the glycine-rich domain, while intrinsically disordered, is responsible for mediating self-association by transient interactions with its RRM domain ( NtRRM). Both NtGR-RBP1 and NtRRM bind specifically and with low micromolar affinity to RNA and single-stranded DNA. The solution structure of NtRRM shows that it is a canonical RRM domain. A HADDOCK model of the NtRRM-RNA complex, based on NMR chemical shift and NOE data, shows that nucleic acid binding results from a combination of stacking and electrostatic interactions with conserved RRM residues. Finally, DNA melting experiments demonstrate that NtGR-RBP1 is more efficient in melting CTG containing nucleic acids than isolated NtRRM. Together, our study supports the model that self-association of GR-RBPs by the glycine-rich region results in cooperative unfolding of non-native substrate structures, thereby enhancing its chaperone function. RI Boelens, Rolf/B-4702-2009OI Boelens, Rolf/0000-0002-6939-8913
机译:富含甘氨酸的RNA结合蛋白(GR-RBPS)参与植物的冷休克响应,作为RNA伴侣,促进mRNA运输,剪接和翻译。 GR-RBP是含有RNA识别基序(RRM)的二分蛋白,然后是富含甘氨酸的区域。在这里,我们研究了全长尼古氏塔巴氏菌GR-RBP1的核酸结合的结构基础。 NMR研究NTGR-RBP1表明,富含甘氨酸的域,而本质上无序,负责通过与其RRM结构域(NTRRM)的瞬时相互作用介导自我关联。 NTGR-RBP1和NTRRM均特别均结合RNA和单链DNA的低微摩尔亲和力。 NTRRM的溶液结构表明它是规范RRM结构域。基于NMR化学换档和NOE数据的NTRRM-RNA复合物的Haddock模型表明核酸结合由与保守的RRM残基的堆叠和静电相互作用的组合产生。最后,DNA熔化实验表明,NTGR-RBP1在含有核酸熔融CTG中的含量比分离的NTRRM更有效。我们的研究一起支持富含甘氨酸的区域的GR-RBP的自我关联的模型导致非天然底物结构的协同展开,从而增强其伴随其伴侣功能。 Ri Boelens,Rolf / B-4702-20090I Boelens,Rolf / 0000-0002-6939-8913

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  • 来源
    《Nucleic Acids Research 》 |2014年第13期| 共14页
  • 作者单位

    NMR Spectroscopy Research Group Bijvoet Center for Biomolecular Research Utrecht University Padualaan 8 3584 CH Utrecht The Netherlands;

    NMR Spectroscopy Research Group Bijvoet Center for Biomolecular Research Utrecht University Padualaan 8 3584 CH Utrecht The Netherlands;

    NMR Spectroscopy Research Group Bijvoet Center for Biomolecular Research Utrecht University Padualaan 8 3584 CH Utrecht The Netherlands;

    NMR Spectroscopy Research Group Bijvoet Center for Biomolecular Research Utrecht University Padualaan 8 3584 CH Utrecht The Netherlands;

    Department of Biochemistry PMAS Agriculture University Rawalpindi 46300 Rawalpindi Pakistan;

    NMR Spectroscopy Research Group Bijvoet Center for Biomolecular Research Utrecht University Padualaan 8 3584 CH Utrecht The Netherlands;

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