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内生菌株PM1的全基因组分析揭示了石榴中具有潜在应用前景的植物促生机制。

Whole genome analysis of endophytic strain PM1 reveals promising plant Growth-Promoting mechanisms in pomegranate.

作者信息

Patel Poonam, Patel Fenil, Joshi Chaitanya, Joshi Madhvi

机构信息

Gujarat Biotechnology Research Centre, Gandhinagar, Gujarat 382010, India.

Gujarat Biotechnology Research Centre, Gandhinagar, Gujarat 382010, India.

出版信息

J Genet Eng Biotechnol. 2025 Jun;23(2):100486. doi: 10.1016/j.jgeb.2025.100486. Epub 2025 Apr 5.

Abstract

The plant ecosystem harbours diverse symbiotic microorganisms with plant growth promoting and biocontrol activities. The gram- negative endophytic bacterium PM1 strain, isolated from the nodal region of pomegranate. The strain PM1 was studied through whole-genome sequencing, functional annotation, and plant growth-promoting trait (PGPT) gene analysis. Phylogenetic tree analysis and 16S rDNA sequencing confirmed its classification within the genus Brucella. The assembled genome size was 5,200,895 bp with a G + C content of 56.4 %. The average nucleotide identity (ANI) analysis revealed a 97.62 % similarity between PM1 and B. anthropi ATCC 49188 T, a type strain derived from human clinical samples, indicating a close relationship with Brucella anthropi. The functional annotation revealed 2,945 PGPT-related genes, including 32 % linked to direct effects (phytohormone signal production, biofertilization, and bioremediation processes) and 67 % to indirect effects (plant colonization, biocontrol, and competitive exclusion). KEGG analysis revealed genes involved in nitrogen metabolism, phosphate solubilization, siderophore production, hormone biosynthesis (gibberellin, cytokinin, and auxin), root colonization, and stress mitigation. Virulence factor database (VFDB) data revealed the absence of complete virulence gene assemblies, indicating limited pathogenic potential. Furthermore, secondary metabolite analysis predicted the potential production of ochrobactin compounds, which are potent siderophores that are important traits associated with PGPTs. The complete genome analysis of Brucella sp. PM1 provides new insights into plant-bacteria interactions, laying a foundation for advanced postgenomic studies and facilitating the development of bioeffective strategies such as biofertilizers or biocontrol agents for sustainable improvement in crop yields.

摘要

植物生态系统中蕴藏着多种具有促进植物生长和生物防治活性的共生微生物。革兰氏阴性内生细菌PM1菌株,从石榴的节部区域分离得到。通过全基因组测序、功能注释和植物生长促进特性(PGPT)基因分析对PM1菌株进行了研究。系统发育树分析和16S rDNA测序证实了它在布鲁氏菌属中的分类。组装后的基因组大小为5,200,895 bp,G + C含量为56.4%。平均核苷酸同一性(ANI)分析显示,PM1与源自人类临床样本的模式菌株嗜人布鲁氏菌ATCC 49188T之间的相似性为97.62%,表明与嗜人布鲁氏菌关系密切。功能注释揭示了2,945个与PGPT相关的基因,其中32%与直接效应(植物激素信号产生、生物施肥和生物修复过程)相关,67%与间接效应(植物定殖、生物防治和竞争排斥)相关。KEGG分析揭示了参与氮代谢、磷溶解、铁载体产生、激素生物合成(赤霉素、细胞分裂素和生长素)、根部定殖和应激缓解的基因。毒力因子数据库(VFDB)数据显示不存在完整的毒力基因组装,表明致病潜力有限。此外,次生代谢物分析预测了赭曲霉素化合物的潜在产生,赭曲霉素是强效铁载体,是与PGPT相关的重要特性。布鲁氏菌属PM1的全基因组分析为植物 - 细菌相互作用提供了新见解,为先进的后基因组研究奠定了基础,并促进了生物有效策略的开发,如生物肥料或生物防治剂,以实现作物产量的可持续提高。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f49/12002771/3d2d9bb40271/ga1.jpg

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