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不同年龄阶段细菌内生菌群落结构与功能的宏基因组分析

Metagenomic analysis of bacterial endophyte community structure and functions in at different ages.

作者信息

Hong Chi Eun, Kim Jang Uk, Lee Jung Woo, Bang Kyong Hwan, Jo Ick Hyun

机构信息

Department of Herbal Crop Research, National Institute of Horticultural and Herbal Science, Rural Development Administration, Eumseong, 27709 South Korea.

出版信息

3 Biotech. 2019 Aug;9(8):300. doi: 10.1007/s13205-019-1838-x. Epub 2019 Jul 22.

Abstract

This study investigated the root-associated bacterial endophytes of at different ages by shotgun metagenomic analysis. After mapping metagenome data to the complete ginseng genome to identify unmapped sequences, we predicted the structure and functions of ginseng bacterial endophytes by metagenomic rapid annotation using subsystems technology analysis. While Proteobacteria and Actinobacteria were the predominant phyla in all samples (2-6-year-old roots), class Alphaproteobacteria was most abundant in 3-, 4-, and 5-year-old plants. We found that 3-year-old had a 0.66% unmapped rate against the whole ginseng genome and showed the greatest diversity of endophytic bacteria ( diversity = 299). Prediction of endophytic bacterial functions at different ages by SEED subsystem analysis revealed that siderophore and auxin-related traits-which are known to promote plant growth-were most highly represented in 3-year-old plants. This was supported by a gene frequency analysis of plant growth-promoting genes, including those responsible for solubilization of phosphate and nitrogen metabolism, using BLASTn. These results suggest that endophytic bacteria of the root affect plant growth. Furthermore, the isolation and purification of plant growth-promoting endophytes identified in this study could promote sustainable cultivation of ginseng in the future.

摘要

本研究通过鸟枪法宏基因组分析调查了不同年龄人参的根相关细菌内生菌。在将宏基因组数据映射到完整的人参基因组以识别未映射序列后,我们通过使用子系统技术分析的宏基因组快速注释来预测人参细菌内生菌的结构和功能。虽然变形菌门和放线菌门是所有样本(2至6年生根)中的主要门类,但α-变形菌纲在3年、4年和5年生植株中最为丰富。我们发现,3年生人参相对于整个人参基因组的未映射率为0.66%,并且显示出最大的内生细菌多样性(多样性=299)。通过SEED子系统分析对不同年龄内生细菌功能的预测表明,已知促进植物生长的铁载体和生长素相关性状在3年生植株中表现最为突出。使用BLASTn对包括负责磷酸盐溶解和氮代谢的基因在内的促进植物生长基因进行基因频率分析,支持了这一结果。这些结果表明,人参根内生细菌影响植物生长。此外,本研究中鉴定出的促进植物生长内生菌的分离和纯化可能会促进未来人参的可持续种植。

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