Blaschek Leonard, Pesquet Edouard
Arrhenius Laboratories, Department of Ecology, Environment and Plant Sciences, Stockholm University, Stockholm, Sweden.
Front Plant Sci. 2021 Oct 1;12:754601. doi: 10.3389/fpls.2021.754601. eCollection 2021.
The metabolism of polyphenolic polymers is essential to the development and response to environmental changes of organisms from all kingdoms of life, but shows particular diversity in plants. In contrast to other biopolymers, whose polymerisation is catalysed by homologous gene families, polyphenolic metabolism depends on phenoloxidases, a group of heterogeneous oxidases that share little beyond the eponymous common substrate. In this review, we provide an overview of the differences and similarities between phenoloxidases in their protein structure, reaction mechanism, substrate specificity, and functional roles. Using the example of laccases (LACs), we also performed a meta-analysis of enzyme kinetics, a comprehensive phylogenetic analysis and machine-learning based protein structure modelling to link functions, evolution, and structures in this group of phenoloxidases. With these approaches, we generated a framework to explain the reported functional differences between paralogs, while also hinting at the likely diversity of yet undescribed LAC functions. Altogether, this review provides a basis to better understand the functional overlaps and specificities between and within the three major families of phenoloxidases, their evolutionary trajectories, and their importance for plant primary and secondary metabolism.
多酚聚合物的代谢对于所有生物界生物体的发育和对环境变化的响应至关重要,但在植物中表现出特别的多样性。与其他生物聚合物不同,其聚合由同源基因家族催化,多酚代谢依赖于酚氧化酶,这是一组异源氧化酶,除了同名的共同底物外几乎没有共同之处。在本综述中,我们概述了酚氧化酶在蛋白质结构、反应机制、底物特异性和功能作用方面的异同。以漆酶(LACs)为例,我们还对酶动力学进行了荟萃分析、全面的系统发育分析以及基于机器学习的蛋白质结构建模,以将这组酚氧化酶的功能、进化和结构联系起来。通过这些方法,我们构建了一个框架来解释已报道的旁系同源物之间的功能差异,同时也暗示了尚未描述的漆酶功能可能存在的多样性。总之,本综述为更好地理解酚氧化酶三大主要家族之间及内部的功能重叠和特异性、它们的进化轨迹以及它们对植物初级和次级代谢的重要性提供了基础。