Histone acetyltransferases MystA and MystB contribute to morphogenesis and aflatoxin biosynthesis by regulating acetylation in fungus Aspergillus flavus

分生孢子 组蛋白乙酰转移酶 生物 乙酰转移酶 乙酰化 组蛋白乙酰转移酶 乙酰转移酶 生物化学 突变体 黄曲霉 组蛋白 黄曲霉毒素 细胞生物学 微生物学 基因 食品科学
作者
Xuan Chen,Lianghuan Wu,Huahui Lan,Ruilin Sun,Meifang Wen,Danrui Ruan,Mengjuan Zhang,Shihua Wang
出处
期刊:Environmental Microbiology [Wiley]
卷期号:24 (3): 1340-1361 被引量:28
标识
DOI:10.1111/1462-2920.15856
摘要

Myst family is highly conserved histone acetyltransferases in eukaryotic cells and is known to play crucial roles in various cellular processes; however, acetylation catalysed by acetyltransferases is unclear in filamentous fungi. Here, we identified two classical nonessential Myst enzymes and analysed their functions in Aspergillus flavus, which generates aflatoxin B1, one of the most carcinogenic secondary metabolites. MystA and MystB located in nuclei and cytoplasm, and mystA could acetylate H4K16ac, while mystB acetylates H3K14ac, H3K18ac and H3K23ac. Deletion mystA resulted in decreased conidiation, increased sclerotia formation and aflatoxin production. Deletion of mystB leads to significant defects in conidiation, sclerotia formation and aflatoxin production. Additionally, double-knockout mutant (ΔmystA/mystB) display a stronger and similar defect to ΔmystB mutant, indicating that mystB plays a major role in regulating development and aflatoxin production. Both mystA and mystB play important role in crop colonization. Moreover, catalytic domain MOZ and the catalytic site E199/E243 were important for the acetyltransferase function of Myst. Notably, chromatin immunoprecipitation results indicated that mystB participated in oxidative detoxification by regulating the acetylation level of H3K14, and further regulated nsdD to affect sclerotia formation and aflatoxin production. This study provides new evidences to discover the biological functions of histone acetyltransferase in A. flavus.
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