主要镰刀菌对温度和水分活性组合约束的生理生态行为。

IF 3.7 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Applied and Environmental Microbiology Pub Date : 2025-07-23 Epub Date: 2025-06-10 DOI:10.1128/aem.01832-24
Marie-Anne Garcia, Rémi Mahmoud, Marie-Odile Bancal, Pierre Bancal, Stéphane Bernillon, Laetitia Pinson-Gadais, Florence Richard-Forget, Marie Foulongne-Oriol
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引用次数: 0

摘要

镰刀菌头疫病(FHB)是一种影响谷物的破坏性真菌疾病,由可产生有害真菌毒素的镰刀菌引起。镰刀菌在感染期间在同一生态位内共存,其种群动态和相关的霉菌毒素模式受到环境的强烈影响。本研究全面研究了不同非生物因素对主要镰刀菌引起的赤霉病的生理生态反应。我们评估了24种温度(θ = 15、20、25、30°C)和水分活度(aw = 0.99、0.98、0.97、0.96、0.95、0.94)组合下不同分离菌株的生长和霉菌毒素产量。结果表明,θ、aw及其相互作用对物种行为有重要影响。由于采用创新的统计方法,使用来自光密度测量和真菌毒素定量的真菌生长数据,我们证明了环境反应的显着种间和种内差异。高温(≥25°C)和高水活度(≥0.97)条件有利于禾谷F. graminearum和avenaceum的生长和产毒,而较低温度(≥0.95)条件也有利于poae和tricinctum的生长和产毒。强调了F. langsethiae对最低温度(≤20°C)的特定和独特行为。在气候变化的背景下,了解镰刀菌物种的生态生理需求是至关重要的,这预计会加剧疾病的爆发。本研究为提高FHB预测模型的可靠性和稳健性以及预测相关霉菌毒素风险提供了有价值的知识。重要意义镰刀菌通过降低产量和产生对动物和人类有害的真菌毒素,对主要谷类作物,特别是小麦构成重大威胁。每种镰刀菌的流行受环境条件的强烈影响,气候变化已经被报道为病原体种群变化的原因,导致真菌毒素模式的变化。本研究揭示了不同温度和水活度条件下感染小谷物的五种主要镰刀菌的不同生理生态行为,包括生长和霉菌毒素产生。我们的发现为更深入地了解霉菌毒素风险和在不久的将来制定更有效的缓解策略提供了宝贵的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ecophysiological behavior of major Fusarium species in response to combinations of temperature and water activity constraints.

Fusarium head blight (FHB) is a devastating fungal disease affecting cereals, caused by Fusarium species that can produce harmful mycotoxins. Fusarium species coexist within the same ecological niche during infection, with their population dynamics and associated mycotoxin patterns strongly influenced by the environment. This study provides a comprehensive investigation of the ecophysiological responses of the major Fusarium species causing FHB under varying abiotic factors. We assessed growth and mycotoxin production of different isolates of Fusarium avenaceum, Fusarium graminearum, Fusarium langsethiae, Fusarium poae, and Fusarium tricinctum under 24 combinations of temperature (θ = 15, 20, 25, 30°C) and water activity levels (aw = 0.99, 0.98, 0.97, 0.96, 0.95, 0.94). Our findings indicated that θ, aw, and their interaction have a main significant impact on species behavior. Thanks to innovative statistical approaches using fungal growth data from optical density measurements and mycotoxin quantification, we demonstrated significant inter- and intra-specific differences in environmental responses. Growth and mycotoxin production of F. graminearum and F. avenaceum appeared favored under high temperature (≥25°C) and high water activity (≥0.97), whereas lower aw levels (≥0.95) were also conducive for F. poae and F. tricinctum. A specific and unique behavior of F. langsethiae to lowest temperatures (≤20°C) was highlighted. Understanding the ecophysiological requirements of Fusarium species is crucial in the context of climate change, which is expected to worsen disease outbreaks. This study provides valuable knowledge for improving the reliability and robustness of FHB prediction models and anticipating the associated mycotoxin risk.IMPORTANCEFusarium species pose a significant threat to major cereal crops, particularly wheat, by reducing yields and producing mycotoxins that are harmful to animals and humans. The prevalence of each Fusarium species is strongly influenced by environmental conditions, and climate changes have already been reported as responsible for shifts in pathogen populations, leading to changes in mycotoxin patterns. This study revealed distinct ecophysiological behaviors, including growth and mycotoxin production, of the five major Fusarium species infecting small grain cereals when exposed to varying temperature and water activity conditions. Our findings provide a valuable foundation for a deeper understanding of mycotoxin risk and for developing more effective mitigation strategies in the near future.

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来源期刊
Applied and Environmental Microbiology
Applied and Environmental Microbiology 生物-生物工程与应用微生物
CiteScore
7.70
自引率
2.30%
发文量
730
审稿时长
1.9 months
期刊介绍: Applied and Environmental Microbiology (AEM) publishes papers that make significant contributions to (a) applied microbiology, including biotechnology, protein engineering, bioremediation, and food microbiology, (b) microbial ecology, including environmental, organismic, and genomic microbiology, and (c) interdisciplinary microbiology, including invertebrate microbiology, plant microbiology, aquatic microbiology, and geomicrobiology.
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