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禾谷镰刀菌和拟枝孢镰刀菌温度依赖性产孢及T-2和HT-2毒素产生的非线性模型

A non-linear model for temperature-dependent sporulation and T-2 and HT-2 production of Fusarium langsethiae and Fusarium sporotrichioides.

作者信息

Nazari Leyla, Manstretta Valentina, Rossi Vittorio

机构信息

Department of Agriculture, Payam Noor University (PNU), P.O.BOX 19395-3697 Tehran, Iran; Department of Sustainble Crop Production, Università Cattolica del Sacro Cuore, Via Emilia Parmense 84, 29122 Piacenza, Italy.

Department of Sustainble Crop Production, Università Cattolica del Sacro Cuore, Via Emilia Parmense 84, 29122 Piacenza, Italy.

出版信息

Fungal Biol. 2016 Apr;120(4):562-571. doi: 10.1016/j.funbio.2016.01.010. Epub 2016 Jan 29.

DOI:10.1016/j.funbio.2016.01.010
PMID:27020157
Abstract

This research has produced new quantitative data on the sporulation and T-2+HT-2 toxin production that could be further integrated to develop a comprehensive disease or toxin prediction model for Fusarium langsethiae and Fusarium sporotrichioides. Experiments were conducted to determine the effect of temperature or incubation time on sporulation and the effect of temperature on T-2+HT-2 toxin production of strains of the two species. F. sporotrichioides demonstrated a preference for higher temperatures than F. langsethiae during sporulation; the optimum temperature was 24.5 ± 0.7 °C for F. langsethiae and 32.3 ± 2.1 °C for F. sporotrichioides, according to the Beta equation fitted to the data. The dynamics of sporulation over different incubation times were fitted by a Gompertz function. The maximum spore production was estimated to be after 18 and 8 d incubation at optimum temperatures for F. langsethiae and F. sporotrichioides, respectively. F. sporotrichioides produced more T-2+HT-2 than F. langsethiae. The best fit of the effect of temperature on T-2+HT-2 production in wheat grains was obtained with a Beta equation showing an optimum temperature of 14.7 ± 0.8 °C for F. langsethiae and 12.1 ± 0.2 °C for F. sporotrichioides. The optimum temperature for mycotoxin production was lower than for sporulation.

摘要

本研究产生了关于孢子形成以及T-2+HT-2毒素产生的新定量数据,这些数据可进一步整合,以开发针对兰氏镰刀菌和拟枝孢镰刀菌的全面疾病或毒素预测模型。开展了实验,以确定温度或培养时间对孢子形成的影响,以及温度对这两个物种菌株的T-2+HT-2毒素产生的影响。在孢子形成过程中,拟枝孢镰刀菌比兰氏镰刀菌更偏好较高温度;根据拟合数据的Beta方程,兰氏镰刀菌的最适温度为24.5±0.7℃,拟枝孢镰刀菌的最适温度为32.3±2.1℃。不同培养时间的孢子形成动态通过Gompertz函数拟合。估计在兰氏镰刀菌和拟枝孢镰刀菌的最适温度下分别培养18天和8天后,孢子产量最高。拟枝孢镰刀菌产生的T-2+HT-2比兰氏镰刀菌更多。用Beta方程获得了温度对小麦籽粒中T-2+HT-2产生影响的最佳拟合,结果显示兰氏镰刀菌的最适温度为14.7±0.8℃,拟枝孢镰刀菌的最适温度为12.1±0.2℃。霉菌毒素产生的最适温度低于孢子形成的最适温度。

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