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核酮糖-1,5-二磷酸羧化酶催化加氧的机制。

The mechanism of Rubisco-catalysed oxygenation.

作者信息

Tcherkez Guillaume

机构信息

Research School of Biology, ANU College of Medicine, Biology and Environment, Australian National University, Canberra, 2601, ACT, Australia.

出版信息

Plant Cell Environ. 2016 May;39(5):983-97. doi: 10.1111/pce.12629. Epub 2015 Oct 19.

Abstract

Ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) is the cornerstone of photosynthetic carbon assimilation because it catalyses the fixation of CO2 onto ribulose-1,5-bisphosphate (RuBP). The enzyme also catalyses RuBP oxygenation, thereby evolving phosphoglycolate which is recycled along the photorespiratory pathway. Oxygenation is quantitatively important, because under ordinary gaseous conditions, more than one third of RuBP molecules are oxygenated rather than carboxylated. However, contrary to carboxylation, the chemical mechanism of oxygenation is not well known, and little progress has been made since the early 80s. Here, I review recent experimental data that provide some new insights into the reaction mechanism, and carry out simple calculations of kinetic parameters. Isotope effects suggest that oxygenation is less likely initiated by a redox phenomenon (such as superoxide production) and more likely involves concerted chemical events that imply interactions with protons. A possible energy profile of the reaction is drawn which suggests that the generation of the oxygenated reaction intermediate (peroxide) is irreversible. Possible changes in oxygenation-associated rate constants between Rubisco forms are discussed.

摘要

核酮糖-1,5-二磷酸羧化酶/加氧酶(Rubisco)是光合碳同化的基石,因为它催化二氧化碳固定到核酮糖-1,5-二磷酸(RuBP)上。该酶还催化RuBP的氧化,从而产生磷酸乙醇酸,其沿着光呼吸途径进行循环利用。氧化作用在数量上很重要,因为在普通气体条件下,超过三分之一的RuBP分子被氧化而不是羧化。然而,与羧化作用相反,氧化作用的化学机制尚不为人所知,自80年代初以来进展甚微。在这里,我回顾了最近的实验数据,这些数据为反应机制提供了一些新的见解,并对动力学参数进行了简单计算。同位素效应表明,氧化作用不太可能由氧化还原现象(如超氧化物的产生)引发,而更可能涉及协同的化学事件,这意味着与质子相互作用。绘制了反应可能的能量分布图,表明氧化反应中间体(过氧化物)的生成是不可逆的。讨论了Rubisco不同形式之间与氧化作用相关的速率常数可能的变化。

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