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Production of conidia of the entomopathogenic fungus Metarhizium anisopliae ICB 425 in a tray bioreactor

机译:在盘式生物反应器中产生昆虫病原真菌分生孢子菌Anisopliae ICB 425的分生孢子

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摘要

The use of Metarhizium anisopliae as a bioinsecticide is steeply increasing worldwide. However, to reduce the production costs, it is necessary to develop sophisticated techniques for conidia production. This work aimed to use a tray bioreactor to produce conidia of M. anisopliae ICB-425 in long rice and find the limiting bed depth in which the production is still viable. Experiments have been carried out to assess the influence of the air temperature and relative humidity on the spore concentration in order to determine the limiting temperature. Two scales of bioreactors in plastic packages have been used, containing 10 and 500 g of rice, and the results were similar. In the tray bioreactor, the bed depths of 2, 4 and 6 cm have been used, corresponding to the dry rice weights of 1, 2 and 3 kg, respectively, and the results were similar to the ones in plastic packages. A one-phase heat transfer model has been used to foresee the maximum temperature within the bed and the results agreed fairly well with the experimental ones. Using the model, a bed depth of 7 cm was found to be the limit for the tray bioreactor. The results obtained are very promising for the mass production of conidia of M. anisopliae at lower costs and with more effective control.
机译:在世界范围内,变金属异化菌作为生物杀虫剂的使用正在急剧增加。但是,为了降低生产成本,有必要开发用于分生孢子生产的复杂技术。这项工作的目的是使用托盘生物反应器在长米中生产分枝杆菌分生孢子菌ICB-425的分生孢子,并发现仍可进行生产的极限床深度。为了确定极限温度,已经进行了实验以评估空气温度和相对湿度对孢子浓度的影响。塑料包装中使用了两种规模的生物反应器,分别装有10克和500克大米,结果相似。在托盘式生物反应器中,已使用2、4和6 cm的床深度,分别对应于1、2和3 kg的干米重量,其结果与塑料包装中的结果相似。一相传热模型已被用来预测床内的最高温度,其结果与实验结果吻合得很好。使用该模型,发现7 cm的床深度是塔盘生物反应器的极限。所获得的结果对于以更低的成本和更有效的控制来大规模生产分枝杆菌的分生孢子非常有希望。

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