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首页> 外文期刊>Biocontrol Science and Technology >Downstream processing of Beauveria bassiana and Metarhizium anisopliae-based fungal biopesticides against Riptortus pedestris: solid culture and delivery of conidia
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Downstream processing of Beauveria bassiana and Metarhizium anisopliae-based fungal biopesticides against Riptortus pedestris: solid culture and delivery of conidia

机译:对阵Riptortus peestris的Beauveria Bassiana和嗜酸性嗜酸性腺的下游加工和基于riptortus peestris的真菌生物生物学:固体培养和分娩的分娩

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摘要

We established a fungal production platform by focusing on substrates of solid culture for conidial productivity and thermotolerance, and focusing on surfactants to effectively deliver fungal conidia to the Riptortus pedestris cuticles. First, to produce thermotolerant fungal conidia, 2 of each Beauveria bassiana and Metarhizium anisopliae isolates were cultured on 13 cereal substrates for 10 days. Overall, five substrates (millet, non-glutinous Italian foxtail millet, barley, glutinous Italian foxtail millet, and brown rice) produced greatest number of conidia with thermotolerant conidia. When the selected substrates were mixed with minerals, zeolite, perlite or vermiculite to reduce the amount of cereal grains, vermiculite combination showed relatively high conidial production compared to the other mineral combinations. Next, to efficiently deliver the fungal conidia to the cuticles of R. pedestris, six surfactants, CO-2.5, CO-12, LE-7, PE-61, TED-3, and siloxane were each combined with the fungal conidia. The 0.01% combination showed significantly increased insect mortality, which varied depending on isolate. Virulence tests against R. pedestris were performed with conidial suspensions of isolates to assess their virulence. As a result, isolates showed the highest virulence when a virulence test was conducted at 25 degrees C, rather than 20 degrees C, 30 degrees C and 35 degrees C. This work suggests that the combination of cereal grain substrates and vermiculite could be considered for economic conidial production with high thermotolerance, and the CO-12 surfactant is the most suitable for effective delivery to target insects, followed by the information on optimal temperature for virulence against R. pedestris.
机译:我们通过专注于整治生产率和热能的固体培养物的基材来建立了一种真菌生产平台,并专注于表面活性剂,以有效地将真菌分类递给Riptortus PeaTris Cofly。首先,为了产生热调虫真菌分类,每种嗜睡脂肪酸和石英芽孢杆菌分离物的2个在13个谷物基材上培养10天。总体而言,五个基板(小米,非糯米狐狸小米,大麦,糯意大利福克尾部,糙米)产生了最多的热调虫病分类。 When the selected substrates were mixed with minerals, zeolite, perlite or vermiculite to reduce the amount of cereal grains, vermiculite combination showed relatively high conidial production compared to the other mineral combinations.接下来,为了有效地将真菌分类递送至R. peaTris,六个表面活性剂,CO-2.5,CO-12,LE-7,PE-61,TED-3和硅氧烷的真菌分类。 0.01%的组合显示出显着增加的昆虫死亡率,这取决于分离物。针对R. pedestris的毒力试验进行分离物的分枝悬浮液,以评估其毒力。结果,当在25℃下,而不是20℃,30℃和35摄氏度进行毒力测试时,分离物显示出最高的毒力。该作品表明可以考虑谷粒底物和蛭石的组合具有高热能的经济共享产量,CO-12表面活性剂最适合于有效递送至目标昆虫,其次是关于对R. pedestris毒力的最佳温度的信息。

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