Ward Lewis M, Cardona Tanai, Holland-Moritz Hannah
Department of Earth and Planetary Sciences, Harvard University, Cambridge, MA, United States.
Department of Life Sciences, Imperial College London, London, United Kingdom.
Front Microbiol. 2019 Jul 23;10:1658. doi: 10.3389/fmicb.2019.01658. eCollection 2019.
Genome-resolved environmental metagenomic sequencing has uncovered substantial previously unrecognized microbial diversity relevant for understanding the ecology and evolution of the biosphere, providing a more nuanced view of the distribution and ecological significance of traits including phototrophy across diverse niches. Recently, the capacity for bacteriochlorophyll-based anoxygenic photosynthesis has been proposed in the uncultured bacterial WPS-2 phylum (recently proposed as Eremiobacterota) that are in close association with boreal moss. Here, we use phylogenomic analysis to investigate the diversity and evolution of phototrophic WPS-2. We demonstrate that phototrophic WPS-2 show significant genetic and metabolic divergence from other phototrophic and non-phototrophic lineages. The genomes of these organisms encode a new family of anoxygenic Type II photochemical reaction centers and other phototrophy-related proteins that are both phylogenetically and structurally distinct from those found in previously described phototrophs. We propose the name Baltobacterales for the order-level aerobic WPS-2 clade which contains phototrophic lineages, from the Greek for "bog" or "swamp," in reference to the typical habitat of phototrophic members of this clade.
基因组解析环境宏基因组测序揭示了大量此前未被认识的微生物多样性,这对于理解生物圈的生态和进化具有重要意义,为包括不同生态位中光养作用等性状的分布和生态意义提供了更为细致入微的观点。最近,在与北方苔藓密切相关的未培养细菌WPS-2门(最近被提议命名为埃雷米细菌门)中发现了基于细菌叶绿素的无氧光合作用能力。在此,我们利用系统基因组分析来研究光养型WPS-2的多样性和进化。我们证明,光养型WPS-2与其他光养和非光养谱系相比,在遗传和代谢上存在显著差异。这些生物的基因组编码了一个新的无氧II型光化学反应中心家族以及其他与光养作用相关的蛋白质,这些蛋白质在系统发育和结构上均与先前描述的光养生物中的蛋白质不同。我们提议将包含光养谱系的需氧WPS-2进化枝命名为巴尔托杆菌目,该名称源于希腊语中的“沼泽”或“湿地”,以指代该进化枝中光养成员的典型栖息地。