来自咸水海岸泻湖的蓝藻基因组揭示了新的生物地球化学功能及其进化的潜力。

IF 2.1 3区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Journal of Molecular Evolution Pub Date : 2024-04-01 Epub Date: 2024-03-15 DOI:10.1007/s00239-024-10159-y
Manisha Ray, Shivakumara Manu, Gurdeep Rastogi, Govindhaswamy Umapathy
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引用次数: 0

摘要

蓝藻在水生生态系统中发挥着举足轻重的作用,既是初级生产者,也是重氮过程中的主要媒介。目前,蓝藻研究的主要重点在于更详细地了解蓝藻的这些既定生态系统功能。然而,蓝藻对其他重要生物地球化学循环的参与和影响仍未得到充分研究。造成这一知识空白的部分原因是在受控实验室条件下培养蓝藻所面临的挑战,以及对蓝藻特定生长要求的了解有限。而独立于培养的方法可以部分解决这一问题,这种方法可以揭示蓝藻物种的基因组潜力,并回答有关其他关键生物地球化学功能进化的更深层次问题。在这项研究中,我们根据从咸水湖(印度奇利卡湖)提取的环境 DNA 生成的元基因组数据,组装了 83 个蓝藻基因组。我们对这些元基因组组装的基因组(MAGs)进行了分类,发现其中约 92.77% 是物种水平的新基因组。然后,我们利用 KEGG 正选法对这些蓝藻 MAGs 的所有编码功能进行了注释。有趣的是,我们以 nirBD 和 dsyB 基因为标记,在多个 MAGs 中发现了两种以前未在蓝藻中报道过的功能,即 DNRA(将硝酸盐还原成铵)和 DMSP(二甲基硫代丙酸盐)合成。我们在几个公开的蓝藻分离基因组中验证了它们的存在。此外,我们还发现了物种进化模式与标记基因之间的不一致性,并阐明了造成这些差异的根本原因。这项研究拓展了我们对蓝藻在沿海咸水生态系统生物地球化学循环中所作贡献的整体理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cyanobacterial Genomes from a Brackish Coastal Lagoon Reveal Potential for Novel Biogeochemical Functions and Their Evolution.

Cyanobacteria are recognised for their pivotal roles in aquatic ecosystems, serving as primary producers and major agents in diazotrophic processes. Currently, the primary focus of cyanobacterial research lies in gaining a more detailed understanding of these well-established ecosystem functions. However, their involvement and impact on other crucial biogeochemical cycles remain understudied. This knowledge gap is partially attributed to the challenges associated with culturing cyanobacteria in controlled laboratory conditions and the limited understanding of their specific growth requirements. This can be circumvented partially by the culture-independent methods which can shed light on the genomic potential of cyanobacterial species and answer more profound questions about the evolution of other key biogeochemical functions. In this study, we assembled 83 cyanobacterial genomes from metagenomic data generated from environmental DNA extracted from a brackish water lagoon (Chilika Lake, India). We taxonomically classified these metagenome-assembled genomes (MAGs) and found that about 92.77% of them are novel genomes at the species level. We then annotated these cyanobacterial MAGs for all the encoded functions using KEGG Orthology. Interestingly, we found two previously unreported functions in Cyanobacteria, namely, DNRA (Dissimilatory Nitrate Reduction to Ammonium) and DMSP (Dimethylsulfoniopropionate) synthesis in multiple MAGs using nirBD and dsyB genes as markers. We validated their presence in several publicly available cyanobacterial isolate genomes. Further, we identified incongruities between the evolutionary patterns of species and the marker genes and elucidated the underlying reasons for these discrepancies. This study expands our overall comprehension of the contribution of cyanobacteria to the biogeochemical cycling in coastal brackish ecosystems.

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来源期刊
Journal of Molecular Evolution
Journal of Molecular Evolution 生物-进化生物学
CiteScore
5.50
自引率
2.60%
发文量
36
审稿时长
3 months
期刊介绍: Journal of Molecular Evolution covers experimental, computational, and theoretical work aimed at deciphering features of molecular evolution and the processes bearing on these features, from the initial formation of macromolecular systems through their evolution at the molecular level, the co-evolution of their functions in cellular and organismal systems, and their influence on organismal adaptation, speciation, and ecology. Topics addressed include the evolution of informational macromolecules and their relation to more complex levels of biological organization, including populations and taxa, as well as the molecular basis for the evolution of ecological interactions of species and the use of molecular data to infer fundamental processes in evolutionary ecology. This coverage accommodates such subfields as new genome sequences, comparative structural and functional genomics, population genetics, the molecular evolution of development, the evolution of gene regulation and gene interaction networks, and in vitro evolution of DNA and RNA, molecular evolutionary ecology, and the development of methods and theory that enable molecular evolutionary inference, including but not limited to, phylogenetic methods.
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