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Identification and characterization of multiple rubisco activases in chemoautotrophic bacteria

机译:化学自养细菌中多种Rubisco活化酶的鉴定与表征

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摘要

Ribulose-1,5- bisphosphate carboxylase/oxygenase (rubisco) is responsible for almost all biological CO2 assimilation, but forms inhibited complexes with its substrate ribulose-1,5-bisphosphate (RuBP) and other sugar phosphates. The distantly related AAA+ proteins rubisco activase and CbbX remodel inhibited rubisco complexes to effect inhibitor release in plants and alpha-proteobacteria, respectively. Here we characterize a third class of rubisco activase in the chemolithoautotroph Acidithiobacillus ferrooxidans. Two sets of isoforms of CbbQ and CbbO form hetero-oligomers that function as specific activases for two structurally diverse rubisco forms. Mutational analysis supports a model wherein the AAA+ protein CbbQ functions as motor and CbbO is a substrate adaptor that binds rubisco via a von Willebrand factor A domain. Understanding the mechanisms employed by nature to overcome rubisco's shortcomings will increase our toolbox for engineering photosynthetic carbon dioxide fixation.
机译:核糖-1,5-双磷酸羧化酶/加氧酶(rubisco)负责几乎所有的生物CO2同化作用,但与其底物核糖-1,5-双磷酸(RuBP)和其他糖磷酸酯形成受抑制的复合物。远缘相关的AAA +蛋白rubisco激活酶和CbbX重塑抑制了rubisco复合物,从而分别在植物和α-变形细菌中影响抑制剂的释放。在这里,我们表征化生自养酸性铁硫氧化亚铁细菌中的第三类rubisco活化酶。两组CbbQ和CbbO的同工型形成杂合寡聚体,它们充当两种结构上不同的Rubisco形式的特异性激活酶。突变分析支持以下模型,其中AAA +蛋白CbbQ充当马达,CbbO是通过von Willebrand因子A结构域结合rubisco的底物衔接子。了解自然界克服rubisco缺点的机制将增加我们用于工程光合二氧化碳固定的工具箱。

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