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柠檬酸会损害B型单端孢霉烯族毒素的生物合成,但会促进其生长和色素生物合成:转录组学和蛋白质组学分析。

Citric acid impairs type B trichothecene biosynthesis of but enhances its growth and pigment biosynthesis: transcriptomic and proteomic analyses.

作者信息

Cai Luzhou, Li Ling, Li Dong, Wu Yanping, Bai Jinrong, Zhong Kai, Gao Hong

机构信息

College of Biomass Science and Engineering, Sichuan University, Chengdu, China.

College of Bioengineering, Sichuan University of Science and Engineering, Yibin, China.

出版信息

Appl Environ Microbiol. 2025 Jun 18;91(6):e0153124. doi: 10.1128/aem.01531-24. Epub 2025 May 14.

Abstract

UNLABELLED

is a pathogenic fungus that causes devastating plant diseases such as Fusarium head blight, leading to significant food waste and posing a threat to human health due to the accumulation of mycotoxins. As a soil-borne fungus, interacts closely with plants and soil, completing its life cycle in an intricate environment. In this investigation, citric acid (CA), a plant root exudate and heavy metal chelator, was investigated for its effect on at concentrations of 2.5, 5, 10, and 20 mM. The fungus treated with this CA gradient exhibited different growth conditions and mycelial colors. Integrative analysis of transcriptomics and proteomics found that the growth of the fungus was accelerated by the upregulation of carbon source metabolism-related enzymes such as phosphoenolpyruvate carboxykinase (PEPCK), Glpk, and LAI12, and the mycelial pigments were altered by polyketide biosynthetic enzymes like AurF, AurJ, and AurT, which were responsible for the production of aurofusarin and rubrofusarin. Interestingly, many genes and their corresponding proteins along with type B trichothecene biosynthesis were significantly downregulated, though the fungal growth was promoted. In this study, the CK, 2.5, and 5 mM groups had similar expression patterns of RNA and protein, while the 10 and 20 mM groups were alike. With the validation of CK, 5, and 10 mM groups, the discovery of CA as a type B trichothecene biosynthesis inhibitor and growth promoter was expected to facilitate its reasonable application and contribute to further research for the prevention of .

IMPORTANCE

is a challenging phytopathogen that causes plant disasters worldwide, such as Fusarium head blight and ear rot in small grain crops like wheat and maize. Besides, the invasion of the fungus on plants is often accompanied by the production of health-threatening mycotoxins-trichothecenes. Therefore, the control of has always been a hot area of research. However, currently, the prevalence of these plant diseases around the world and the mycotoxin accumulation beyond safety limits indicate the necessity for more related research. In the last decades, researchers have sought to identify the key substances associated with the growth, propagation, and mycotoxin production of the fungus, such as carbon and nitrogen sources. Organic acids have always been considered antifungal agents due to their abundant H+ content. However, their comprehensive impact on fungi has been rarely investigated. This research focused on the effect of citric acid, a type of crop exudate and a common heavy-metal chelator, on the metabolism of . The result was expected to provide a theoretical basis for further studies on plants-soil-fungi interactions and the reasonable utilization of citric acid in agriculture.

摘要

未标注

是一种致病真菌,可引发诸如镰刀菌穗腐病等毁灭性植物病害,导致大量食物浪费,并因霉菌毒素的积累对人类健康构成威胁。作为一种土传真菌,它与植物和土壤密切相互作用,在复杂的环境中完成其生命周期。在本研究中,研究了柠檬酸(CA)这种植物根系分泌物和重金属螯合剂,在2.5、5、10和20 mM浓度下对其的影响。用该CA梯度处理的真菌表现出不同的生长状况和菌丝颜色。转录组学和蛋白质组学的综合分析发现,碳源代谢相关酶如磷酸烯醇式丙酮酸羧激酶(PEPCK)、Glpk和LAI12的上调加速了真菌的生长,而聚酮生物合成酶如AurF、AurJ和AurT改变了菌丝色素,这些酶负责金褐霉素和红褐霉素的产生。有趣的是,尽管促进了真菌生长,但许多与B型单端孢霉烯生物合成相关的基因及其相应蛋白质显著下调。在本研究中,CK、2.5和5 mM组的RNA和蛋白质表达模式相似,而10和20 mM组相似。通过对CK、5和10 mM组的验证,有望发现CA作为B型单端孢霉烯生物合成抑制剂和生长促进剂,从而促进其合理应用,并为预防的进一步研究做出贡献。

重要性

是一种具有挑战性的植物病原体,在全球范围内引发植物灾害,如小麦和玉米等小粒作物的镰刀菌穗腐病和穗腐病。此外,该真菌对植物的侵染通常伴随着产生威胁健康的霉菌毒素——单端孢霉烯。因此,对的控制一直是研究的热点领域。然而,目前这些植物病害在全球的流行以及霉菌毒素积累超过安全限值,表明有必要进行更多相关研究。在过去几十年中,研究人员试图确定与该真菌的生长、繁殖和霉菌毒素产生相关的关键物质,如碳源和氮源。有机酸因其丰富的H⁺含量一直被视为抗真菌剂。然而,它们对真菌的综合影响很少被研究。本研究聚焦于柠檬酸这种作物分泌物和常见重金属螯合剂对的代谢的影响。该结果有望为进一步研究植物 - 土壤 - 真菌相互作用以及柠檬酸在农业中的合理利用提供理论依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a874/12175541/fc05a82be2b2/aem.01531-24.f001.jpg

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