Department of Plant Sciences, University of Oxford, Oxford, United Kingdom.
Doctoral Training Centre, University of Oxford, Oxford, United Kingdom.
Mol Biol Evol. 2021 Jun 25;38(7):2880-2896. doi: 10.1093/molbev/msab079.
Rubisco assimilates CO2 to form the sugars that fuel life on earth. Correlations between rubisco kinetic traits across species have led to the proposition that rubisco adaptation is highly constrained by catalytic trade-offs. However, these analyses did not consider the phylogenetic context of the enzymes that were analyzed. Thus, it is possible that the correlations observed were an artefact of the presence of phylogenetic signal in rubisco kinetics and the phylogenetic relationship between the species that were sampled. Here, we conducted a phylogenetically resolved analysis of rubisco kinetics and show that there is a significant phylogenetic signal in rubisco kinetic traits. We re-evaluated the extent of catalytic trade-offs accounting for this phylogenetic signal and found that all were attenuated. Following phylogenetic correction, the largest catalytic trade-offs were observed between the Michaelis constant for CO2 and carboxylase turnover (∼21-37%), and between the Michaelis constants for CO2 and O2 (∼9-19%), respectively. All other catalytic trade-offs were substantially attenuated such that they were marginal (<9%) or non-significant. This phylogenetically resolved analysis of rubisco kinetic evolution also identified kinetic changes that occur concomitant with the evolution of C4 photosynthesis. Finally, we show that phylogenetic constraints have played a larger role than catalytic trade-offs in limiting the evolution of rubisco kinetics. Thus, although there is strong evidence for some catalytic trade-offs, rubisco adaptation has been more limited by phylogenetic constraint than by the combined action of all catalytic trade-offs.
Rubisco 将 CO2 同化形成糖,为地球上的生命提供燃料。不同物种间 Rubisco 动力学特性的相关性表明,Rubisco 的适应受到强烈的催化权衡限制。然而,这些分析并没有考虑到所分析的酶的系统发育背景。因此,观察到的相关性可能是 Rubisco 动力学中存在系统发育信号以及所采样物种之间系统发育关系的人为产物。在这里,我们对 Rubisco 动力学进行了系统发育解析分析,表明 Rubisco 动力学特性中存在显著的系统发育信号。我们重新评估了考虑到这种系统发育信号的催化权衡的程度,发现所有权衡都减弱了。在进行系统发育校正后,最大的催化权衡分别出现在 CO2 的米氏常数和羧化酶周转率(21-37%)之间,以及 CO2 和 O2 的米氏常数之间(9-19%)。所有其他的催化权衡都大大减弱,以至于它们微不足道(<9%)或没有意义。这种对 Rubisco 动力学进化的系统发育解析分析还确定了与 C4 光合作用进化同时发生的动力学变化。最后,我们表明,系统发育限制在限制 Rubisco 动力学进化方面发挥了比催化权衡更大的作用。因此,尽管有强有力的证据表明存在一些催化权衡,但 Rubisco 的适应受到系统发育限制的限制比所有催化权衡共同作用的限制更大。