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首页> 外文期刊>Journal of applied microbiology >Study of temperature-growth interactions of entomopathogenic fungi with potential for control of Varroa destructor (Acari: Mesostigmata) using a nonlinear model of poikilotherm development
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Study of temperature-growth interactions of entomopathogenic fungi with potential for control of Varroa destructor (Acari: Mesostigmata) using a nonlinear model of poikilotherm development

机译:使用poikilotherm发育的非线性模型研究昆虫病原真菌的温度-增长相互作用与控制Varroa破坏者的潜力(Acari:Mesostigmata)

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Aims: To investigate the thermal biology of entomopathogenic fungi being examined as potential microbial control agents of Varroa destructor, an ectoparasite of the European honey bee Apis mellifera. Methods and Results: Colony extension rates were measured at three temperatures (20, 30 and 35 ℃) for 41 isolates of entomopathogenic fungi. All of the isolates grew at 20 and 30 ℃ but only 11 isolates grew at 35 ℃. Twenty-two isolates were then selected on the basis of appreciable growth at 30-35 ℃ (the temperature range found within honey bee colonies) and/or infectivity of V. destructor, and their colony extension rates were measured at 10 temperatures (12.5-35 ℃). This data were then fitted to Schoolfield et al. [J Theor Biol (1981)88: 719-731] re-formulation of the Sharpe and DeMichele [J Theor Biol (1977)64: 649-670] model of poikilotherm development. Overall, this model accounted for 87.6-93.9% of the data variance. Eleven isolates exhibited growth above 35 ℃. The optimum temperatures for extension rate ranged from 22.9 to 31.2 ℃. Only three isolates exhibited temperature optima above 30 ℃. The super-optimum temperatures (temperature above the optimum at which the colony extension rate was 10% of the maximum rate) ranged from 31.9 to 43.2 ℃. Conclusions: The thermal requirements of the isolates examined against V. destructor are well matched to the temperatures in the broodless areas of honey bee colonies, and a proportion of isolates, should also be able to function within drone brood areas. Significance and Impact of the Study: Potential exists for the control of V. destructor with entomopathogenic fungi in honey bee colonies. The methods employed in this study could be utilized in the selection of isolates for microbial control prior to screening for infectivity and could help in predicting the activity of a fungal control agent of V. destructor under fluctuating temperature conditions.
机译:目的:调查昆虫病原真菌的热生物学特性,将其作为欧洲蜜蜂Apis mellifera的外寄生物Varroa破坏者的潜在微生物控制剂进行研究。方法与结果:在三种温度(20、30和35℃)下对41株病原真菌的菌落扩展率进行了测定。所有分离株均在20和30℃下生长,但只有11株在35℃下生长。然后根据在30-35℃(在蜂群内发现的温度范围)的明显生长和/或破坏弧菌的感染力,选择22个分离株,并在10个温度下(12.5- 35℃)。然后将该数据拟合到Schoolfield等人。 [J Theor Biol(1981)88:719-731]重新设计Sharpe和DeMichele [J Theor Biol(1977)64:649-670] poikilotherm开发模型。总体而言,该模型占数据差异的87.6-93.9%。在35℃以上,有11种分离物表现出生长。延伸速率的最佳温度范围为22.9至31.2℃。仅三个分离株表现出高于30℃的最佳温度。超最佳温度(高于菌落扩展率最高速率的10%的最佳温度)范围为31.9到43.2℃。结论:针对V. destructor进行检测的分离株的热需求与蜜蜂群体无亲区的温度非常吻合,并且一定比例的分离株也应能够在无人蜂巢区中发挥作用。该研究的意义和影响:在蜂群中,存在具有昆虫病原真菌的杀灭弧菌的潜力。在筛选感染性之前,本研究中使用的方法可用于微生物控制的分离菌株的选择,并可帮助预测在温度变化的条件下破坏弧菌的真菌控制剂的活性。

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