印度不同农业气候区葫芦巴相关Sinorhizobium meliloti分离株(Trigonella foenum-graecum Linn.)的综合基因组分析

IF 5.2 2区 农林科学 Q1 AGRICULTURE, MULTIDISCIPLINARY
Mitesh Khairnar, Saleh S. Alhewairini, Swapnil Chandrakant Kajale, Vagish Dwibedi, Jayanthi Barasarathi, Andrea Mastinu, Riyaz Sayyed
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引用次数: 0

摘要

提高植物活力和抗逆性,改善土壤结构。强调它们作为提高农业生产力的重要农业生物制剂的重要性,需要了解它们的分类和功能关系以及驱动植物生长促进性状的遗传基础和途径。基因组测序、比较基因组学、功能注释和杂交基因组组装可以实现这些目标。比较基因组分析显示,该菌株与meliloti Sinorhizobium meliloti和kummerowiae Sinorhizobium亲缘关系密切,系统基因组学、ANI、AAI和dDDH分析进一步支持了这一结论。基因家族聚类分析发现FRNB45、FRNB101和FRNB126分别有5999个、6116个和5996个基因家族。功能基因组分析发现了几个与次生代谢物产生相关的生物合成基因簇(BGCs),包括多酮、非核糖体肽(nrp)和铁载体,突出了这些菌株的代谢多样性。KEGG途径分析证实了固氮和磷酸盐增溶途径、与吲哚-3-乙酸(IAA)合成相关的基因和铁载体的存在。这些发现支持FRNB45、FRNB101和FRNB126作为植物生长促进根瘤菌(PGPR)的潜在应用,特别适用于多种气候条件和高海拔生态系统。然而,需要进一步的实验验证,以确认其在现场条件下的有效性和一致性。图形抽象
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comprehensive genomic analysis of Sinorhizobium meliloti isolates associated with fenugreek (Trigonella foenum-graecum Linn.) from diverse agroclimatic regions of India

Sinorhizobium sp. enhances plant vitality and stress resilience and improves soil structure. Underscoring their significance as agriculturally important bioagents for increased agricultural productivity requires understanding their taxonomic and functional relationships and the genetic foundations and pathways that drive plant growth-promoting traits. Genome sequencing, comparative genomics, functional annotation, and hybrid genome assemblies can achieve these. Comparative genomic analyses revealed a close relationship between the studied strains and Sinorhizobium meliloti and Sinorhizobium kummerowiae, which was further supported by phylogenomic, ANI, AAI, and dDDH analyses. Gene family cluster analysis identified 5999 gene families in the FRNB45 strain, 6116 in the FRNB101 strain, and 5996 in the FRNB126 strain. Functional genomic analysis identified several biosynthetic gene clusters (BGCs) related to secondary metabolite production, including polyketides, non-ribosomal peptides (NRPs), and siderophores, highlighting the metabolic versatility of these strains. KEGG pathway analysis confirmed the presence of nitrogen fixation and phosphate solubilization pathways, genes associated with the synthesis of indole-3-acetic acid (IAA), and siderophores. These findings support the potential application of FRNB45, FRNB101, and FRNB126 as plant growth-promoting rhizobacteria (PGPR), particularly suited for diverse climatic conditions and high-altitude ecosystems. However, further experimental validation is required to confirm their efficacy and consistency under field conditions.

Graphical Abstract

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来源期刊
Chemical and Biological Technologies in Agriculture
Chemical and Biological Technologies in Agriculture Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
6.80
自引率
3.00%
发文量
83
审稿时长
15 weeks
期刊介绍: Chemical and Biological Technologies in Agriculture is an international, interdisciplinary, peer-reviewed forum for the advancement and application to all fields of agriculture of modern chemical, biochemical and molecular technologies. The scope of this journal includes chemical and biochemical processes aimed to increase sustainable agricultural and food production, the evaluation of quality and origin of raw primary products and their transformation into foods and chemicals, as well as environmental monitoring and remediation. Of special interest are the effects of chemical and biochemical technologies, also at the nano and supramolecular scale, on the relationships between soil, plants, microorganisms and their environment, with the help of modern bioinformatics. Another special focus is the use of modern bioorganic and biological chemistry to develop new technologies for plant nutrition and bio-stimulation, advancement of biorefineries from biomasses, safe and traceable food products, carbon storage in soil and plants and restoration of contaminated soils to agriculture. This journal presents the first opportunity to bring together researchers from a wide number of disciplines within the agricultural chemical and biological sciences, from both industry and academia. The principle aim of Chemical and Biological Technologies in Agriculture is to allow the exchange of the most advanced chemical and biochemical knowledge to develop technologies which address one of the most pressing challenges of our times - sustaining a growing world population. Chemical and Biological Technologies in Agriculture publishes original research articles, short letters and invited reviews. Articles from scientists in industry, academia as well as private research institutes, non-governmental and environmental organizations are encouraged.
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