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PacC 转录因子调节次生代谢产物的产生和应激反应,但对昆虫病原真菌球孢白僵菌的毒力只有很小的影响。

The PacC transcription factor regulates secondary metabolite production and stress response, but has only minor effects on virulence in the insect pathogenic fungus Beauveria bassiana.

机构信息

Biotechnology Research Center, Southwest University, Chongqing, 400716, P. R. China.

Department of Microbiology and Cell Science, University of Florida, Gainesville, Florida, 32611, USA.

出版信息

Environ Microbiol. 2017 Feb;19(2):788-802. doi: 10.1111/1462-2920.13648. Epub 2017 Feb 1.

DOI:10.1111/1462-2920.13648
PMID:28083986
Abstract

The PacC transcription factor is an important component of the fungal ambient pH-responsive regulatory system. Loss of pacC in the insect pathogenic fungus Beauveria bassiana resulted in an alkaline pH-dependent decrease in growth and pH-dependent increased susceptibility to osmotic (salt, sorbitol) stress and SDS. Extreme susceptibility to Congo Red was noted irrespective of pH, and ΔBbpacC conidia showed subtle increases in UV susceptibility. The ΔBbPacC mutant showed a reduced ability to acidify media during growth due to failure to produce oxalic acid. The ΔBbPacC mutant also did not produce the insecticidal compound dipicolinic acid, however, production of a yellow-colored compound was noted. The compound, named bassianolone B, was purified and its structure determined. Despite defects in growth, stress resistance, and oxalate/insecticidal compound production, only a small decrease in virulence was seen for the ΔBbpacC strain in topical insect bioassays using larvae from the greater waxmoth, Galleria mellonella or adults of the beetle, Tenebrio molitor. However, slightly more pronounced decreases were seen in virulence via intrahemcoel injection assays (G. mellonella) and in assays using T. molitor larvae. These data suggest important roles for BbpacC in mediating growth at alkaline pH, regulating secondary metabolite production, and in targeting specific insect stages.

摘要

PacC 转录因子是真菌环境 pH 响应调节系统的重要组成部分。昆虫病原真菌球孢白僵菌中 pacC 的缺失导致生长在碱性 pH 下依赖于 pH 的下降,并对渗透压(盐、山梨糖醇)胁迫和 SDS 产生 pH 依赖性增加的敏感性。无论 pH 如何,都注意到对刚果红的极度敏感性,并且ΔBbpacC 分生孢子对 UV 的敏感性略有增加。由于无法产生草酸,ΔBbPacC 突变体在生长过程中降低了酸化培养基的能力。ΔBbPacC 突变体也不产生杀虫化合物二吡啶酸,但注意到一种黄色化合物的产生。该化合物名为 bassianolone B,已被纯化并确定其结构。尽管生长、应激抗性和草酸盐/杀虫化合物的产生存在缺陷,但在使用大蜡螟幼虫或甲虫黄粉虫成虫进行的局部昆虫生物测定中,ΔBbpacC 菌株的毒力仅略有降低。然而,通过血腔注射测定(G. mellonella)和使用 T. molitor 幼虫进行的测定中,毒力的下降更为明显。这些数据表明 BbpacC 在介导碱性 pH 下的生长、调节次生代谢产物的产生以及针对特定昆虫阶段方面发挥着重要作用。

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