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Crystal, Solution and In silico Structural Studies of Dihydrodipicolinate Synthase from the Common Grapevine

机译:普通葡萄中二氢二吡啶甲酸合酶的晶体,溶液和计算机电子结构研究

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摘要

Dihydrodipicolinate synthase (DHDPS) catalyzes the rate limiting step in lysine biosynthesis in bacteria and plants. The structure of DHDPS has been determined from several bacterial species and shown in most cases to form a homotetramer or dimer of dimers. However, only one plant DHDPS structure has been determined to date from the wild tobacco species, Nicotiana sylvestris (Blickling et al. (1997) J. Mol. Biol. 274, 608–621). Whilst N. sylvestris DHDPS also forms a homotetramer, the plant enzyme adopts a ‘back-to-back’ dimer of dimers compared to the ‘head-to-head’ architecture observed for bacterial DHDPS tetramers. This raises the question of whether the alternative quaternary architecture observed for N. sylvestris DHDPS is common to all plant DHDPS enzymes. Here, we describe the structure of DHDPS from the grapevine plant, Vitis vinifera, and show using analytical ultracentrifugation, small-angle X-ray scattering and X-ray crystallography that V. vinifera DHDPS forms a ‘back-to-back’ homotetramer, consistent with N. sylvestris DHDPS. This study is the first to demonstrate using both crystal and solution state measurements that DHDPS from the grapevine plant adopts an alternative tetrameric architecture to the bacterial form, which is important for optimizing protein dynamics as suggested by molecular dynamics simulations reported in this study.
机译:二氢二吡啶甲酸合酶(DHDPS)催化细菌和植物中赖氨酸生物合成中的限速步骤。已经从几种细菌中确定了DHDPS的结构,并且在大多数情况下显示出其形成了二聚体的同四聚体或二聚体。然而,迄今为止,野生烟草物种Nicotiana sylvestris仅确定了一种植物DHDPS结构(Blickling等人(1997)J。Mol。Biol。274,608-621)。樟子松猪笼草DHDPS也形成同型四聚体,而植物细菌采用的是细菌DHDPS四聚体“头对头”结构的“背对背”二聚体。这就提出了一个问题,即对于所有植物DHDPS酶而言,观察到的樟子松DHDPS的替代四级构架是否通用。在这里,我们描述了来自葡萄植物葡萄树(Vitis vinifera)的DHDPS的结构,并通过分析超速离心,小角度X射线散射和X射线晶体学证明,葡萄树DHDPS形成了“背对背”的同四聚体,与樟子松DHDPS一致。这项研究是首次使用晶体和溶液状态测量来证明葡萄植物中的DHDPS采用了细菌形式的替代四聚体结构,这对于优化蛋白质动力学非常重要,正如该研究中报道的分子动力学模拟所表明的那样。

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