Centre 'Bioengineering', Russian Academy of Sciences, Moscow, Russia.
PLoS One. 2013;8(1):e53047. doi: 10.1371/journal.pone.0053047. Epub 2013 Jan 2.
Melioribacter roseus is a moderately thermophilic facultatively anaerobic organotrophic bacterium representing a novel deep branch within Bacteriodetes/Chlorobi group. To better understand the metabolic capabilities and possible ecological functions of M. roseus and get insights into the evolutionary history of this bacterial lineage, we sequenced the genome of the type strain P3M-2(T). A total of 2838 open reading frames was predicted from its 3.30 Mb genome. The whole proteome analysis supported phylum-level classification of M. roseus since most of the predicted proteins had closest matches in Bacteriodetes, Proteobacteria, Chlorobi, Firmicutes and deeply-branching bacterium Caldithrix abyssi, rather than in one particular phylum. Consistent with the ability of the bacterium to grow on complex carbohydrates, the genome analysis revealed more than one hundred glycoside hydrolases, glycoside transferases, polysaccharide lyases and carbohydrate esterases. The reconstructed central metabolism revealed pathways enabling the fermentation of complex organic substrates, as well as their complete oxidation through aerobic and anaerobic respiration. Genes encoding the photosynthetic and nitrogen-fixation machinery of green sulfur bacteria, as well as key enzymes of autotrophic carbon fixation pathways, were not identified. The M. roseus genome supports its affiliation to a novel phylum Ignavibateriae, representing the first step on the evolutionary pathway from heterotrophic ancestors of Bacteriodetes/Chlorobi group towards anaerobic photoautotrophic Chlorobi.
玫瑰色微菌是一种中温、兼性厌氧的有机营养型细菌,代表了拟杆菌门/绿弯菌门的一个新的深分枝。为了更好地了解玫瑰色微菌的代谢能力和可能的生态功能,并深入了解该细菌谱系的进化历史,我们对其模式株 P3M-2(T)进行了基因组测序。在其 3.30 Mb 的基因组中预测了 2838 个开放阅读框。全蛋白质组分析支持玫瑰色微菌的门水平分类,因为大多数预测的蛋白质与拟杆菌门、变形菌门、绿弯菌门、厚壁菌门和深分枝细菌 Caldithrix abyssi 的匹配度最高,而不是与一个特定的门匹配度最高。与该细菌能够利用复杂碳水化合物生长的能力一致,基因组分析揭示了超过一百种糖苷水解酶、糖苷转移酶、多糖裂解酶和碳水化合物酯酶。重建的中心代谢途径揭示了能够发酵复杂有机底物的途径,以及通过需氧和厌氧呼吸对其完全氧化的途径。未鉴定出编码绿硫细菌光合作用和固氮机制以及自养碳固定途径关键酶的基因。玫瑰色微菌的基因组支持其属于一个新的门 Ignavibacteriae,代表了从拟杆菌门/绿弯菌门的异养祖先向厌氧光合绿弯菌进化的第一步。