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Ada2 和 Ada3 通过维持 Gcn5 乙酰转移酶活性来调节球孢白僵菌的菌丝生长、无性发育和致病性。

Ada2 and Ada3 Regulate Hyphal Growth, Asexual Development, and Pathogenicity in Beauveria bassiana by Maintaining Gcn5 Acetyltransferase Activity.

机构信息

State Key Laboratory of Biobased Material and Green Papermaking, Qilu University of Technology, Shandong Academy of Sciences, Jinan, China.

School of Biological Science and Technology, University of Jinan, Jinan, China.

出版信息

Microbiol Spectr. 2023 Jun 15;11(3):e0028123. doi: 10.1128/spectrum.00281-23. Epub 2023 Apr 13.

Abstract

The histone acetyltransferase (HAT) Gcn5 ortholog is essential for a variety of fungi. Here, we characterize the roles of Ada2 and Ada3, which are functionally linked to Gcn5, in the insect-pathogenic fungus Beauveria bassiana. Loss of and led to severe hyphal growth defects on rich and minimal media and drastic decreases in blastospore yield and conidiation capacity, with abnormal conidia-producing structures. Δ and Δ exhibited a delay in conidial germination and increased sensitivity to multiple chemical stresses and heat shock. Nearly all their pathogenicity was lost, and their ability to secrete extracellular enzymes, Pr1 proteases and chitinases for cuticle degradation was reduced. A yeast two-hybrid assay demonstrated that Ada2 binds to Ada3 and directly interacts with Gcn5, confirming the existence of a yeast-like Ada3-Ada2-Gcn5 HAT complex in this fungus. Additionally, deletion of the genes reduced the activity of Gcn5, especially in the Δ strain, which was consistent with the acetylation level of histone H3 determined by Western blotting. These results illustrate the dependence of Gcn5 enzyme activity on Ada2 and Ada3 in fungal hyphal growth, asexual development, multiple stress responses, and pathogenicity in B. bassiana. The histone acetyltransferase Gcn5 ortholog contributes significantly to the growth and development of various fungi. In this study, we found that Ada2 and Ada3 have critical regulatory effects on Gcn5 enzyme activity and influence the acetylation of histone H3. Deletion of or decreased the fungal growth rate and asexual conidial yield and increased susceptibility to multiple stresses in Beauveria bassiana. Importantly, genes are vital virulence factors, and their deletion caused the most virulence loss, mainly by inhibiting the activity of a series of hydrolytic enzymes and the dimorphic transition ability. These findings provide a new perspective on the function of the Gcn5 acetyltransferase complex in pathogens.

摘要

组蛋白乙酰转移酶(HAT)Gcn5 同源物对各种真菌都是必不可少的。在这里,我们对功能上与 Gcn5 相关联的 Ada2 和 Ada3 在昆虫病原真菌球孢白僵菌中的作用进行了描述。和的缺失导致在丰富和基础培养基上菌丝生长严重缺陷,并且芽生孢子的产量和产孢能力急剧下降,同时出现异常的分生孢子产生结构。Δ和Δ表现出芽生孢子发芽延迟,并对多种化学胁迫和热休克更加敏感。它们几乎完全丧失了致病性,并且它们分泌细胞外酶、Pr1 蛋白酶和几丁质酶以降解几丁质的能力降低。酵母双杂交测定表明,Ada2 与 Ada3 结合,并与 Gcn5 直接相互作用,证实了该真菌中存在类似于酵母的 Ada3-Ada2-Gcn5 HAT 复合物。此外,缺失基因减少了 Gcn5 的活性,尤其是在Δ菌株中,这与通过 Western blot 确定的组蛋白 H3 乙酰化水平一致。这些结果说明了在白僵菌的菌丝生长、无性发育、多种应激反应和致病性中,Gcn5 酶活性对 Ada2 和 Ada3 的依赖性。组蛋白乙酰转移酶 Gcn5 同源物对各种真菌的生长和发育有重要贡献。在这项研究中,我们发现 Ada2 和 Ada3 对 Gcn5 酶活性有重要的调节作用,并影响组蛋白 H3 的乙酰化。缺失或减少了白僵菌的生长速度和无性分生孢子的产量,并增加了对多种应激的敏感性。重要的是,基因是至关重要的毒力因子,它们的缺失导致了最大的毒力丧失,主要是通过抑制一系列水解酶的活性和二态转换能力。这些发现为 Gcn5 乙酰转移酶复合物在病原体中的功能提供了新的视角。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6c36/10269768/d2f8a1bd56ce/spectrum.00281-23-f001.jpg

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