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首页> 外文期刊>Cell Biochemistry and Biophysics >Key Residues at the Riboflavin Kinase Catalytic Site of the Bifunctional Riboflavin Kinase/FMN Adenylyltransferase From Corynebacterium ammoniagenes
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Key Residues at the Riboflavin Kinase Catalytic Site of the Bifunctional Riboflavin Kinase/FMN Adenylyltransferase From Corynebacterium ammoniagenes

机译:氨棒状杆菌双功能核黄素激酶/ FMN腺苷酸转移酶的核黄素激酶催化位点的关键残基

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摘要

Many known prokaryotic organisms depend on a single bifunctional enzyme, encoded by the RibC of RibF gene and named FAD synthetase (FADS), to convert Riboflavin (RF), first into FMN and then into FAD. The reaction occurs through the sequential action of two activities present on a single polypeptide chain where the N-terminus is responsible for the ATP:FMN adenylyltransferase (FMNAT) activity and the C-terminus for the ATP: riboflavin kinase (RFK) activity. Sequence and structural analysis suggest that T208, N210 and E268 at the C-terminus RFK module of Corynebacterium ammoniagenes FADS (CaFADS) might be key during RF phosphorylation. The effect of site-directed mutagenesis on the RFK activity, as well as on substrates and products binding, indicates that T208 and N210 provide the RFK active-site geometry for binding and catalysis, while E268 might be involved in the catalytic step as catalytic base. These data additionally suggest concerted conformational changes at the RFK module of CaFADS during its activity. Mutations at the RFK site also modulate the binding parameters at the FMNAT active site of CaFADS, altering the catalytic efficiency in the transformation of FMN into FAD. This observation supports the hypothesis that the hexameric assembly previously revealed by the crystal structure of CaFADS might play a functional role during catalysis.
机译:许多已知的原核生物都依赖于一个由RibF基因的RibC编码并称为FAD合成酶(FADS)的双功能酶,将核黄素(RF)首先转化为FMN,然后转化为FAD。该反应通过单个多肽链上存在的两个活性的顺序作用而发生,其中N端负责ATP:FMN腺苷酸转移酶(FMNAT)活性,C端负责ATP:核黄素激酶(RFK)活性。序列和结构分析表明,产氨棒杆菌FADS(CaFADS)C末端RFK模块上的T208,N210和E268可能是RF磷酸化过程中的关键。定点诱变对RFK活性以及对底物和产物结合的影响表明T208和N210提供了RFK结合和催化的活性位几何形状,而E268可能作为催化碱参与了催化步骤。这些数据还表明,CaFADS的RFK模块在其活动过程中会发生一致的构象变化。 RFK位点的突变也可调节CaFADS FMNAT活性位点的结合参数,从而改变FMN向FAD转化的催化效率。该观察结果支持以下假设:先前由CaFADS的晶体结构揭示的六聚体组装可能在催化过程中发挥功能作用。

著录项

  • 来源
    《Cell Biochemistry and Biophysics》 |2013年第1期|57-68|共12页
  • 作者单位

    Departamento de Bioquímica y Biología Molecular y Celular Facultad de Ciencias Universidad de Zaragoza">(1);

    Institute of Biocomputation and Physics of Complex Systems (BIFI) Joint Unit BIFI-IQFR (CSIC) Universidad de Zaragoza">(2);

    Departamento de Bioquímica y Biología Molecular y Celular Facultad de Ciencias Universidad de Zaragoza">(1);

    Institute of Biocomputation and Physics of Complex Systems (BIFI) Joint Unit BIFI-IQFR (CSIC) Universidad de Zaragoza">(2);

    Departamento de Bioquímica y Biología Molecular y Celular Facultad de Ciencias Universidad de Zaragoza">(1);

    Institute of Biocomputation and Physics of Complex Systems (BIFI) Joint Unit BIFI-IQFR (CSIC) Universidad de Zaragoza">(2);

    Departamento de Bioquímica y Biología Molecular y Celular Facultad de Ciencias Universidad de Zaragoza">(1);

    Institute of Biocomputation and Physics of Complex Systems (BIFI) Joint Unit BIFI-IQFR (CSIC) Universidad de Zaragoza">(2);

    Departamento de Bioquímica y Biología Molecular y Celular Facultad de Ciencias Universidad de Zaragoza">(1);

    Institute of Biocomputation and Physics of Complex Systems (BIFI) Joint Unit BIFI-IQFR (CSIC) Universidad de Zaragoza">(2);

    Fundación ARAID Diputación General de Aragón">(3);

    Departamento de Bioquímica y Biología Molecular y Celular Facultad de Ciencias Universidad de Zaragoza">(1);

    Institute of Biocomputation and Physics of Complex Systems (BIFI) Joint Unit BIFI-IQFR (CSIC) Universidad de Zaragoza">(2);

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  • 正文语种 eng
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  • 关键词

    FAD synthetase; ATP:riboflavin kinase; ATP:FMN adenylyltransferase; Site-directed mutagenesis; Substrate binding; Catalytic activity;

    机译:FAD合成酶;ATP:核黄素激酶;ATP:FMN腺苷酸转移酶;定点诱变;底物粘合;催化活性;

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