Enhanced Phytopathogen Biofilm Control in the Soybean Phyllosphere by the Phoresy of Bacteriophages Hitchhiking on Biocontrol Bacteria

IF 11.3 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL
Bo Zhang, Ying Zhang, Xu Zhang, Jianhua Qu, Chujin Ruan, Jingqiu Liao, Pedro J.J. Alvarez, Pingfeng Yu
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Abstract

Phage-based biocontrol has shown notable advantages in protecting plants against pathogenic bacteria in agricultural settings compared to chemical-based bactericides. However, the efficiency and scope of phage biocontrol of pathogenic bacteria are limited by the intrinsic properties of phages. Here, we investigated pathogen biofilm eradication in the phyllosphere using the phoresy system of hitchhiking phages onto carrier biocontrol bacteria. The phoresy system efficiently removed the pathogen biofilm in the soybean phyllosphere, reducing the total biomass by 58% and phytopathogens by 82% compared to the untreated control. Biofilm eradication tests demonstrated a significant combined beneficial effect (Bliss independence model, CI < 1) as phages improved carrier bacteria colonization by 1.2-fold and carrier bacteria facilitated phage infection by 1.4-fold. Transcriptomic analysis showed that phoresy significantly enhanced motility (e.g., fliC and pilD genes) and energy metabolism (e.g., pgm and pgk genes) of carrier bacteria and suppressed the defense system (e.g., MSH3 and FLS2 genes) and energy metabolism (e.g., petB and petC genes) of pathogens. Metabolomics analysis revealed that the phoresy system stimulated the secretion of beneficial metabolites (e.g., flavonoid and tropane alkaloid) that could enhance stress response and phyllosphere protection in soybeans. Overall, the phoresy of phages hitchhiking on biocontrol bacteria offers a novel and effective strategy for phyllosphere microbiome manipulation and bacterial disease control.

Abstract Image

搭载生物防治菌的噬菌体对大豆叶层中植物病原菌生物膜的强化控制
与基于化学的杀菌剂相比,基于噬菌体的生物防治在农业环境中保护植物免受致病菌侵害方面显示出显著的优势。然而,噬菌体生物防治病原菌的效率和范围受到噬菌体本身特性的限制。在这里,我们研究了利用搭便车噬菌体到载体生物防治细菌上的寄存系统在层球中根除病原体生物膜。该系统有效地去除了大豆叶层内的病原菌生物膜,与未经处理的对照相比,总生物量减少58%,植物病原体减少82%。生物膜根除试验显示出显著的综合有益效果(Bliss独立模型,CI <;1)噬菌体促进载体细菌定植1.2倍,载体细菌促进噬菌体感染1.4倍。转录组学分析表明,磷酸化显著增强了载体菌的运动能力(如fliC和pilD基因)和能量代谢(如pgm和pgk基因),抑制了病原体的防御系统(如MSH3和FLS2基因)和能量代谢(如petB和petC基因)。代谢组学分析表明,光合系统刺激黄酮类化合物和tropane生物碱等有益代谢物的分泌,增强了大豆的应激反应和层球保护作用。综上所述,噬菌体搭乘生物防治细菌的便车,为层球微生物群的控制和细菌疾病的控制提供了一种新颖有效的策略。
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来源期刊
环境科学与技术
环境科学与技术 环境科学-工程:环境
CiteScore
17.50
自引率
9.60%
发文量
12359
审稿时长
2.8 months
期刊介绍: Environmental Science & Technology (ES&T) is a co-sponsored academic and technical magazine by the Hubei Provincial Environmental Protection Bureau and the Hubei Provincial Academy of Environmental Sciences. Environmental Science & Technology (ES&T) holds the status of Chinese core journals, scientific papers source journals of China, Chinese Science Citation Database source journals, and Chinese Academic Journal Comprehensive Evaluation Database source journals. This publication focuses on the academic field of environmental protection, featuring articles related to environmental protection and technical advancements.
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