首页> 外文期刊>Philosophical Transactions of the Royal Society of London, Series B. Biological Sciences >Phylogenetic and evolutionary relationships of RubisCO and the RubisCO-like proteins and the functional lessons provided by diverse molecular forms
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Phylogenetic and evolutionary relationships of RubisCO and the RubisCO-like proteins and the functional lessons provided by diverse molecular forms

机译:RubisCO和RubisCO样蛋白的系统发生进化关系以及各种分子形式提供的功能课程

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摘要

Ribulose 1,5-bisphosphate (RuBP) carboxylase/oxygenase (RubisCO) catalyses the key reaction by which inorganic carbon may be assimilated into organic carbon. Phylogenetic analyses indicate that there are three classes of bona fide RubisCO proteins, forms I, II and III, which all catalyse the same reactions. In addition, there exists another form of RubisCO, form IV, which does not catalyse RuBP carboxylation or oxygenation. Form IV is actually a homologue of RubisCO and is called the RubisCO-like protein (RLP). Both RubisCO and RLP appear to have evolved from an ancestor protein in a methanogenic archaeon, and comprehensive analyses indicate that the different forms (I, II, III and IV) contain various subgroups, with individual sequences derived from representatives of all three kingdoms of life. The diversity of RubisCO molecules, many of which function in distinct milieus, has provided convenient model systems to study the ways in which the active site of this protein has evolved to accommodate necessary molecular adaptations. Such studies have proven useful to help provide a framework for understanding the molecular basis for many important aspects of RubisCO catalysis, including the elucidation of factors or functional groups that impinge on RubisCO carbon dioxide/oxygen substrate discrimination.
机译:核糖1,5-双磷酸(RuBP)羧化酶/加氧酶(RubisCO)催化关键反应,无机碳可通过该反应被有机碳吸收。系统发育分析表明,存在三类真正的RubisCO蛋白,分别为I,II和III型,它们均催化相同的反应。另外,存在另一种形式的RubisCO,即形式IV,其不催化RuBP羧化或氧合。 IV型实际上是RubisCO的同系物,被称为RubisCO样蛋白(RLP)。 RubisCO和RLP似乎都是从产甲烷的古细菌中的祖先蛋白进化而来的,综合分析表明,不同的形式(I,II,III和IV)包含不同的亚组,其各个序列均来自生命的三个王国的代表。 。 RubisCO分子的多样性,其中许多在不同的环境中起作用,已经提供了方便的模型系统来研究该蛋白的活性位点进化以适应必要的分子适应的方式。事实证明,这类研究有助于为理解RubisCO催化许多重要方面的分子基础提供框架,包括阐明影响RubisCO二氧化碳/氧气底物辨别力的因素或官能团。

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