Goldstein Sarah L, Klassen Jonathan L
Department of Molecular and Cell Biology, University of Connecticut, Mansfield, CT, United States.
Front Microbiol. 2020 Dec 22;11:621041. doi: 10.3389/fmicb.2020.621041. eCollection 2020.
Actinobacteria belonging to the genus have evolved a close relationship with multiple species of fungus-growing ants, where these bacteria produce diverse secondary metabolites that protect the ants and their fungal mutualists from disease. Recent research has charted the phylogenetic diversity of this symbiosis, revealing multiple instances where the ants and have formed stable relationships in which these bacteria are housed on specific regions of the ant's cuticle. Parallel chemical and genomic analyses have also revealed that symbiotic produce diverse secondary metabolites with antifungal and antibacterial bioactivities, and highlighted the importance of plasmid recombination and horizontal gene transfer for maintaining these symbiotic traits. Here, we propose a multi-level model for the evolution of and their secondary metabolites that includes symbiont transmission within and between ant colonies, and the potentially independent movement and diversification of their secondary metabolite biosynthetic genes. Because of their well-studied ecology and experimental tractability, symbionts of fungus-growing ants are an especially useful model system to understand the evolution of secondary metabolites, and also comprise a significant source of novel antibiotic and antifungal agents.
属于该属的放线菌已经与多种培育真菌的蚂蚁进化出了密切关系,在这种关系中,这些细菌产生多种次生代谢产物,保护蚂蚁及其真菌共生伙伴免受疾病侵害。最近的研究绘制了这种共生关系的系统发育多样性图谱,揭示了蚂蚁和该属细菌形成稳定关系的多个实例,在这些关系中,这些细菌栖息在蚂蚁角质层的特定区域。并行的化学和基因组分析还表明,共生的该属细菌产生具有抗真菌和抗菌生物活性的多种次生代谢产物,并强调了质粒重组和水平基因转移对于维持这些共生特性的重要性。在这里,我们提出了一个关于该属细菌及其次生代谢产物进化的多层次模型,该模型包括蚁群内部和蚁群之间共生体的传播,以及其次生代谢产物生物合成基因潜在的独立移动和多样化。由于其经过充分研究的生态学特性和实验可操作性,培育真菌的蚂蚁的共生细菌是理解次生代谢产物进化的特别有用的模型系统,也是新型抗生素和抗真菌剂的重要来源。