Li Liangzhi, Liu Zhenghua, Zhou Zhicheng, Zhang Min, Meng Delong, Liu Xueduan, Huang Ye, Li Xiutong, Jiang Zhen, Zhong Shuiping, Drewniak Lukasz, Yang Zhendong, Li Qian, Liu Yongjun, Nan Xiaolong, Jiang Biguang, Jiang Chengying, Yin Huaqun
School of Minerals Processing and Bioengineering, Central South Universitygrid.216417.7, Changsha, China.
Key Laboratory of Biometallurgy of Ministry of Education, Central South Universitygrid.216417.7, Changsha, China.
mSystems. 2021 Aug 31;6(4):e0060221. doi: 10.1128/mSystems.00602-21. Epub 2021 Jul 13.
DPANN is known as highly diverse, globally widespread, and mostly ectosymbiotic archaeal superphylum. However, this group of archaea was overlooked for a long time, and there were limited in-depth studies reported. In this investigation, 41 metagenome-assembled genomes (MAGs) belonging to the DPANN superphylum were recovered (18 MAGs had average nucleotide identity [ANI] values of <95% and a percentage of conserved proteins [POCP] of >50%, while 14 MAGs showed a POCP of <50%), which were analyzed comparatively with 515 other published DPANN genomes. Mismatches to known 16S rRNA gene primers were identified among 16S rRNA genes of DPANN archaea. Numbers of gene families lost (mostly related to energy and amino acid metabolism) were over three times greater than those gained in the evolution of DPANN archaea. Lateral gene transfer (LGT; ∼45.5% was cross-domain) had facilitated niche adaption of the DPANN archaea, ensuring a delicate equilibrium of streamlined genomes with efficient niche-adaptive strategies. For instance, LGT-derived cytochrome ubiquinol oxidase and arginine deiminase in the genomes of " Micrarchaeota" could help them better adapt to aerobic acidic mine drainage habitats. In addition, most DPANN archaea acquired enzymes for biosynthesis of extracellular polymeric substances (EPS) and transketolase/transaldolase for the pentose phosphate pathway from . The domain is a key research model for gaining insights into the origin and evolution of life, as well as the relevant biogeochemical processes. The discovery of nanosized DPANN archaea has overthrown many aspects of microbiology. However, the DPANN superphylum still contains a vast genetic novelty and diversity that need to be explored. Comprehensively comparative genomic analysis on the DPANN superphylum was performed in this study, with an attempt to illuminate its metabolic potential, ecological distribution and evolutionary history. Many interphylum differences within the DPANN superphylum were found. For example, had the biggest genome among DPANN phyla, possessing many pathways missing in other phyla, such as formaldehyde assimilation and the Wood-Ljungdahl pathway. In addition, LGT acted as an important force to provide DPANN archaeal genetic flexibility that permitted the occupation of diverse niches. This study has advanced our understanding of the diversity and genome evolution of archaea.
DPANN是一个以高度多样、全球广泛分布且大多为外共生的古菌超门而闻名。然而,这一类古菌长期以来被忽视,报道的深入研究也很有限。在本研究中,共获得了41个属于DPANN超门的宏基因组组装基因组(MAGs)(18个MAGs的平均核苷酸同一性[ANI]值<95%,保守蛋白百分比[POCP]>50%,而14个MAGs的POCP<50%),并与其他515个已发表的DPANN基因组进行了比较分析。在DPANN古菌的16S rRNA基因中发现了与已知16S rRNA基因引物不匹配的情况。DPANN古菌进化过程中丢失的基因家族数量(大多与能量和氨基酸代谢相关)比获得的基因家族数量多三倍以上。横向基因转移(LGT;约45.5%为跨域转移)促进了DPANN古菌对生态位的适应,确保了精简基因组与高效生态位适应策略之间的微妙平衡。例如,“微小古菌门”基因组中由LGT衍生的细胞色素泛醇氧化酶和精氨酸脱亚氨酶可帮助它们更好地适应酸性矿山排水的需氧生境。此外,大多数DPANN古菌从……获得了用于胞外聚合物(EPS)生物合成的酶以及磷酸戊糖途径的转酮醇酶/转醛醇酶。……域是深入了解生命起源与进化以及相关生物地球化学过程的关键研究模型。纳米级DPANN古菌的发现颠覆了微生物学的许多方面。然而,DPANN超门仍然包含大量有待探索的遗传新奇性和多样性。本研究对DPANN超门进行了全面的比较基因组分析,试图阐明其代谢潜力、生态分布和进化历史。在DPANN超门中发现了许多门间差异。例如,……在DPANN各门类中拥有最大的基因组,具有许多其他门类中缺失的途径,如甲醛同化和伍德-Ljungdahl途径。此外,LGT作为一种重要力量,为DPANN古菌提供了遗传灵活性,使其能够占据多样的生态位。本研究增进了我们对古菌多样性和基因组进化的理解。