无根浮萍(Wolffia globosa)细菌群落的结构和功能特性及其对Wolffia生长的影响。

IF 5.4 2区 环境科学与生态学 Q1 GENETICS & HEREDITY
Yuparat Saimee, Kousuke Kuwai, Hidehiro Ishizawa, Daisuke Inoue, Arinthip Thamchaipenet, Michihiko Ike
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引用次数: 0

摘要

背景:无根浮萍(Wolffia globosa)作为一种高蛋白和淀粉质的生物质资源,具有广泛的应用前景。然而,与Wolffia相关的微生物组和功能特性在广泛的微生物来源中仍未得到充分研究。本研究探讨了沃尔夫菌群的结构和功能及其对植物生长的影响。结果:无菌球孢菌群与不同来源的细菌群落共同培养实验显示,城市污水细菌群落对球孢菌的生长有明显的促进作用,而来自池塘水的细菌群落对球孢菌的生长有明显的促进作用。16S rRNA扩增子测序发现,Beijerinckiaceae、Caulobacteraceae、Comamonadaceae、Methylophilaceae、Rhizobiaceae和Sphingomonadaceae在Wolffia微生物组中一致保守,被确定为核心分类群。功能分析表明,与细菌定植和适应无根形态相关的基因有助于选择性微生物群招募,并在运动性、趋化性、鞭毛组装、群体感应和ABC转运蛋白等方面具有丰富的功能。此外,还发现Bdellovibrionaceae、Beijerinckiaceae和Sphingomonadaceae可能是“枢纽微生物”和“关键分类群”,塑造群落结构,直接或间接影响沃尔夫的生长。结论:本研究结果揭示了不同微生物来源的狼尾草微生物群的强大核心分类群和功能概况,其中某些分类群与有根浮萍不同。该研究全面表征了Wolffia微生物组,增强了对其的理解,为开发高效的生物质生产系统提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structural and functional properties of bacterial communities associated with rootless duckweed (Wolffia globosa) and their effect on the Wolffia growth.

Background: Rootless duckweed, Wolffia globosa, is emerging as a high-protein and starch biomass resource for various applications. However, the microbiomes and functional properties associated with Wolffia across a wide range of microbial sources remain largely unexamined. This study investigates the structure and functioning of the Wolffia microbiome and its impact on plant growth.

Results: A co-cultivation experiment with axenic W. globosa and bacterial communities derived from various sources revealed varied effects, that municipal wastewater-derived bacterial communities had a more pronounced positive effect on growth of W. globosa compared to those from pond water. 16S rRNA amplicon sequencing found that Beijerinckiaceae, Caulobacteraceae, Comamonadaceae, Methylophilaceae, Rhizobiaceae, and Sphingomonadaceae were consistently conserved and identified as core taxa in the Wolffia microbiome. Functional profiling indicated that genes related to bacterial colonization and adaptation to the rootless morphology contribute to selective microbiome recruitment, with enriched functions in motility, chemotaxis, flagella assembly, quorum sensing, and ABC transporters. In addition, it was found that Bdellovibrionaceae, Beijerinckiaceae, and Sphingomonadaceae may act as "hub microorganisms" and "keystone taxa," shaping community structure and directly or indirectly influencing Wolffia growth.

Conclusion: Collectively, the results of this study unveiled the robust core taxa and functional profiles of the Wolffia microbiome across diverse microbial sources, with certain taxa differing from those in rooted duckweed. This study comprehensively characterizes the Wolffia microbiome and enhances understanding of it, providing insights for developing efficient biomass production systems.

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来源期刊
Environmental Microbiome
Environmental Microbiome Immunology and Microbiology-Microbiology
CiteScore
7.40
自引率
2.50%
发文量
55
审稿时长
13 weeks
期刊介绍: Microorganisms, omnipresent across Earth's diverse environments, play a crucial role in adapting to external changes, influencing Earth's systems and cycles, and contributing significantly to agricultural practices. Through applied microbiology, they offer solutions to various everyday needs. Environmental Microbiome recognizes the universal presence and significance of microorganisms, inviting submissions that explore the diverse facets of environmental and applied microbiological research.
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