Role of iturin from Bacillus velezensis DMW1 in suppressing growth and pathogenicity of Plectosphaerella cucumerina in tomato by reshaping the rhizosphere microbial communities

IF 6.9 1区 生物学 Q1 MICROBIOLOGY
Qian Zhao , Qurban Ali , Weiwei Yuan , Gege Zhang , Hui Li , Longteng Zhou , Hemin Yao , Junjun Chong , Qin Gu , Huijun Wu , Xuewen Gao
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Abstract

Plant-associated microbiomes play a crucial role in suppressing plant and soil pathogens. However, the mechanisms by which pathogen invasion influences the interaction between bacteria and fungi remain unknown and warrant further investigation. In this study, Bacillus spp. was found to be more abundant in diseased rhizosphere in the presence of the soil-borne fungus Plectosphaerella cucumerina. Most of the isolated Bacillus spp. exhibited a robust ability to balance reactive oxygen species (ROS) and demonstrated broad-spectrum antagonistic activity against P. cucumerina, Phytophthora capsica, Fusarium oxysporum, and Ralstonia solanacearum. The secondary metabolite iturin was identified as the key antifungal compound produced by the representative strain Bacillus velezensis DMW1, which effectively inhibits fungal growth and disrupts cell structures. Transcriptome analysis revealed that fungi treated with iturin (28.67 µg/mL) exhibited 4995 differentially expressed genes (DEGs), including 2611 upregulated genes and 2384 downregulated genes, compared to the control group. Furthermore, the application of DMW1 and return-deficient mutant (Δitu) significantly altered microbial diversity and enriched beneficial microorganisms in the rhizosphere soil. The overall findings highlight the potential of DMW1 as a promising biological agent for controlling soil-borne diseases. Its strong antimicrobial properties, ability to colonize host plants effectively, and capacity to reshape the soil microbiota make it a valuable resource for enhancing microbial ecosystems and providing long-term benefits to plants.
来自velezensis芽孢杆菌DMW1的iturin通过重塑根际微生物群落抑制番茄黄瓜球菌生长和致病性的作用
植物相关微生物组在抑制植物和土壤病原体方面起着至关重要的作用。然而,病原体入侵影响细菌和真菌相互作用的机制尚不清楚,需要进一步研究。在本研究中发现,在黄瓜Plectosphaerella cucumerina土传真菌存在的情况下,芽孢杆菌在患病根际中更为丰富。大部分分离得到的芽孢杆菌均表现出较强的活性氧平衡能力,并对黄瓜假丝菌、辣椒疫霉、尖孢镰刀菌和茄枯菌具有广谱拮抗活性。次级代谢物iturin被鉴定为代表菌株velezensis DMW1产生的关键抗真菌化合物,能有效抑制真菌生长,破坏细胞结构。转录组分析显示,与对照组相比,经iturin(28.67 µg/mL)处理的真菌有4995个差异表达基因(deg),其中2611个基因上调,2384个基因下调。此外,DMW1和回报不足突变体(Δitu)的施用显著改变了根际土壤微生物多样性,丰富了有益微生物。总的发现突出了DMW1作为控制土传疾病的有前途的生物制剂的潜力。其强大的抗菌特性、有效定殖宿主植物的能力以及重塑土壤微生物群的能力使其成为增强微生物生态系统和为植物提供长期利益的宝贵资源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Microbiological research
Microbiological research 生物-微生物学
CiteScore
10.90
自引率
6.00%
发文量
249
审稿时长
29 days
期刊介绍: Microbiological Research is devoted to publishing reports on prokaryotic and eukaryotic microorganisms such as yeasts, fungi, bacteria, archaea, and protozoa. Research on interactions between pathogenic microorganisms and their environment or hosts are also covered.
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