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首页> 外文期刊>Research in Microbiology >A putative α-glucoside transporter gene BbAGT1 contributes to carbohydrate utilization, growth, conidiation and virulence of filamentous entomopathogenic fungus beauveria bassiana
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A putative α-glucoside transporter gene BbAGT1 contributes to carbohydrate utilization, growth, conidiation and virulence of filamentous entomopathogenic fungus beauveria bassiana

机译:推测的α-葡萄糖苷转运蛋白基因BbAGT1有助于丝状虫病性真菌球孢白僵菌的碳水化合物利用,生长,分生和毒力

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摘要

Carbohydrate transporters are critical players mediating nutrient uptake during saprophytic and pathogenic growth for most filamentous fungi. For entomopathogenic fungi, such as Beauveria bassiana, assimilation of α-glucosides, in particular, trehalose, the major carbohydrate constituent of the insect haemolymph, has been hypothesized to represent an important ability for infectious growth within the insect hemocoel. In this study, a B. bassiana α-glucoside transporter homolog was identified and genetically characterized via generation of a targeted gene disruption mutant. Trehalose utilization was compromised in the mutant strain. In addition, inactivation of the α-glucoside transporter resulted in decreased conidial germination, growth, and yield on various carbohydrates (α-glucosides, monosaccharides and polyols) as compared to the wild-type strain. Insect bioassays revealed decreased mean lethal mortality time using both topical and intrahemocoel injection assays, although final mortality levels were comparable in both the mutant and wild type. Gene expression profiles showed altered expression of other putative transporters in the knockout mutant as compared to the wild type. These results highlighted complex sugar utilization and responsiveness in B. bassiana and the potential role for trehalose assimilation during fungal pathogenesis of insects.
机译:碳水化合物转运体是大多数丝状真菌在腐生和致病性生长过程中介导养分吸收的关键因素。对于昆虫致病性真菌,例如球孢白僵菌,已经假设α-葡萄糖苷,特别是海藻糖(昆虫血淋巴的主要碳水化合物成分)的同化代表了昆虫血细胞内感染性生长的重要能力。在这项研究中,鉴定了球孢杆菌α-葡萄糖苷转运蛋白同源物,并通过产生靶基因破坏突变体对其进行遗传表征。在突变菌株中海藻糖的利用受到损害。此外,与野生型菌株相比,α-葡萄糖苷转运蛋白的失活导致分生孢子萌发,生长和各种碳水化合物(α-葡萄糖苷,单糖和多元醇)的产量降低。昆虫生物测定显示,无论是突变型还是野生型,最终使用局部和hemocoel注射法均可降低平均致死率。基因表达谱显示与野生型相比,基因敲除突变体中其他推定转运蛋白的表达发生了变化。这些结果突出了球孢杆菌中复杂的糖利用和响应性,以及海藻糖同化在昆虫真菌发病机理中的潜在作用。

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