首页> 外文OA文献 >A unique structural domain in Methanococcoides burtonii ribulose-1,5-bisphosphatecarboxylase/oxygenase (Rubisco) acts as a small subunit mimic
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A unique structural domain in Methanococcoides burtonii ribulose-1,5-bisphosphatecarboxylase/oxygenase (Rubisco) acts as a small subunit mimic

机译:棉球菌1,5-双磷酸羧化酶/加氧酶(Rubisco)中的唯一结构域起着小亚基模拟作用

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摘要

The catalytic inefficiencies of the CO2-fixing enzyme ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) often limit plant productivity. Strategies to engineer more efficient plant Rubiscos have been hampered by evolutionary constraints, prompting interest in Rubisco isoforms from non-photosynthetic organisms. The methanogenic archaeon Methanococcoides burtonii contains a Rubisco isoform that functions to scavenge the ribulose-1,5-bisphosphate (RuBP) byproduct of purine/pyrimidine metabolism. The crystal structure of M. burtonii Rubisco (MbR) presented here at 2.6 Å resolution is composed of catalytic large subunits (LSu) assembled into pentamers of dimers, (L2)5 and differs from Rubiscos from higher plants where LSus are glued together by small subunits (SSu) into hexadecameric L8S8 enzymes. MbR contains a unique 29-amino-acid insertion near the C-terminus, which folds as a separate domain in the structure. This domain, which is visualized for the first time in this study, is located in a similar position to SSus in L8S8 enzymes between LSus of adjacent L2 dimers, where negatively charged residues co-ordinate around a Mg2+ ion in a fashion that suggests this domain may be important for the assembly process. The Rubisco assembly domain is thus an inbuilt SSu mimic that concentrates L2 dimers. MbR assembly is ligand-stimulated and we show that only 6-carbon molecules with a particular stereochemistry at the C3 carbon can induce oligomerization. Based on MbR structure, subunit arrangement, sequence, phylogenetic distribution and function, MbR and a subset of Rubiscos from the Methanosarcinales order are proposed to belong to a new Rubisco sub-group, named form IIIB.
机译:CO2固定酶核糖-1,5-双磷酸羧化酶/加氧酶(Rubisco)的催化效率低下通常会限制工厂的生产力。进化上的限制阻碍了设计更高效植物Rubiscos的策略,促使人们对来自非光合生物的Rubisco亚型产生了兴趣。产甲烷的古细菌甲烷单胞菌(Methanococcoides burtonii)含有Rubisco亚型,其功能是清除嘌呤/嘧啶代谢的核糖1,5-双磷酸(RuBP)副产物。此处以2.6Å分辨率呈现的Burtonii Rubisco(MbR)晶体结构由催化的大亚基(LSu)组装成二聚体(L2)5的五聚体,与Rubiscos不同于高等植物,后者将LSus通过小分子粘合在一起亚单位(SSu)转化为十六聚体L8S8酶。 MbR在C端附近包含一个独特的29个氨基酸插入,该折叠作为结构中的独立域折叠。该域在本研究中首次可视化,其位置与相邻L2二聚体的LSus之间的L8S8酶中SSus的位置相似,其中带负电荷的残基围绕Mg2 +离子的配位方式表明该域对于组装过程可能很重要。因此,Rubisco组装结构域是一种内置的SSu模拟物,可浓缩L2二聚体。 MbR组装是配体刺激的,并且我们显示只有在C3碳上具有特定立体化学的6碳分子才能诱导低聚。基于MbR的结构,亚基排列,序列,系统发育分布和功能,提出了MbR和甲烷八叠球菌属的Rubiscos的一个亚组,属于一个新的Rubisco亚组,命名为IIIB。

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