Department of Biosciences, University of Exeter, United Kingdom.
Genome Biol Evol. 2020 Aug 1;12(8):1240-1255. doi: 10.1093/gbe/evaa095.
Zona pellucida (ZP) modules mediate extracellular protein-protein interactions and contribute to important biological processes including syngamy and cellular morphogenesis. Although some biomedically relevant ZP modules are well studied, little is known about the protein family's broad-scale diversity and evolution. The increasing availability of sequenced genomes from "nonmodel" systems provides a valuable opportunity to address this issue and to use comparative approaches to gain new insights into ZP module biology. Here, through phylogenetic and structural exploration of ZP module diversity across the nematode phylum, I report evidence that speaks to two important aspects of ZP module biology. First, I show that ZP-C domains-which in some modules act as regulators of ZP-N domain-mediated polymerization activity, and which have never before been found in isolation-can indeed be found as standalone domains. These standalone ZP-C domain proteins originated in independent (paralogous) lineages prior to the diversification of extant nematodes, after which they evolved under strong stabilizing selection, suggesting the presence of ZP-N domain-independent functionality. Second, I provide a much-needed phylogenetic perspective on disulfide bond variability, uncovering evidence for both convergent evolution and disulfide-bond reshuffling. This result has implications for our evolutionary understanding and classification of ZP module structural diversity and highlights the usefulness of phylogenetics and diverse sampling for protein structural biology. All told, these findings set the stage for broad-scale (cross-phyla) evolutionary analysis of ZP modules and position Caenorhabditis elegans and other nematodes as important experimental systems for exploring the evolution of ZP modules and their constituent domains.
透明带(ZP)模块介导细胞外蛋白质-蛋白质相互作用,并有助于包括合子和细胞形态发生在内的重要生物学过程。尽管一些与医学相关的 ZP 模块得到了很好的研究,但对于该蛋白质家族的广泛多样性和进化知之甚少。越来越多来自“非模式”系统的测序基因组为解决这一问题提供了宝贵的机会,并利用比较方法为 ZP 模块生物学提供新的见解。在这里,通过对线虫门中 ZP 模块多样性的系统发育和结构探索,我报告了一些证据,这些证据涉及 ZP 模块生物学的两个重要方面。首先,我表明 ZP-C 结构域——在某些模块中作为 ZP-N 结构域介导的聚合活性调节剂,并且以前从未单独发现过——实际上可以作为独立的结构域存在。这些独立的 ZP-C 结构域蛋白起源于现存线虫多样化之前的独立(旁系同源)谱系,之后它们在强烈的稳定选择下进化,这表明存在 ZP-N 结构域独立的功能。其次,我提供了对二硫键变异性的迫切需要的系统发育视角,揭示了趋同进化和二硫键重排的证据。这一结果对我们的进化理解和 ZP 模块结构多样性的分类具有重要意义,并强调了系统发育学和多样化采样在蛋白质结构生物学中的有用性。总的来说,这些发现为 ZP 模块的广泛(跨门)进化分析奠定了基础,并将秀丽隐杆线虫和其他线虫定位为探索 ZP 模块及其组成结构域进化的重要实验系统。