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黄曲霉aswA基因,构巢曲霉oefC的同源基因,调控菌核发育及与菌核相关的次生代谢产物的生物合成。

Aspergillus flavus aswA, a gene homolog of Aspergillus nidulans oefC, regulates sclerotial development and biosynthesis of sclerotium-associated secondary metabolites.

作者信息

Chang Perng-Kuang, Scharfenstein Leslie L, Li Robert W, Arroyo-Manzanares Natalia, De Saeger Sarah, Diana Di Mavungu José

机构信息

Southern Regional Research Center, Agricultural Research Service, U.S. Department of Agriculture, 1100 Robert E. Lee Boulevard, New Orleans, LA 70124, United States.

Southern Regional Research Center, Agricultural Research Service, U.S. Department of Agriculture, 1100 Robert E. Lee Boulevard, New Orleans, LA 70124, United States.

出版信息

Fungal Genet Biol. 2017 Jul;104:29-37. doi: 10.1016/j.fgb.2017.04.006. Epub 2017 Apr 22.

DOI:10.1016/j.fgb.2017.04.006
PMID:28442441
Abstract

Aspergillus flavus aswA (AFLA_085170) is a gene encoding a Zn(II)Cys DNA-binding domain and a transcriptional activation domain, DUF3468. Disruption of aswA yielded strains that made a truncated gene transcript and generated a fungus that produced a greatly increased number of sclerotia. These sclerotia were odd-shaped and non-pigmented (white) and different from oval and pigmented (dark brown to black) mature sclerotia. Transcriptomic analysis of the ΔaswA strain grown on potato dextrose agar plates and Wickerham agar plates showed that expression of clustering genes involved in the biosynthesis of three sclerotium-associated secondary metabolites was down-regulated. These included gene clusters of asparasone, aflatrem, and aflavarin. In contrast, those of aflatoxin, cyclopiazonic acid and kojic acid were not affected. Metabolite analyses confirmed that the non-pigmented sclerotia contained aflatoxin and cyclopiazonic acid but not other aforementioned metabolites, three asparasone analogs and dihydroxyaflavinine commonly present in mature sclerotia. Impairment in aswA gene function stalls normal sclerotial development, which in turn prevents biosynthesis and accumulation of sclerotium-specific metabolites.

摘要

黄曲霉aswA(AFLA_085170)是一个编码Zn(II)Cys DNA结合结构域和转录激活结构域DUF3468的基因。aswA的破坏产生了产生截短基因转录本的菌株,并产生了一种产生大量菌核的真菌。这些菌核形状怪异且无色素(白色),与椭圆形且有色素(深棕色至黑色)的成熟菌核不同。对在马铃薯葡萄糖琼脂平板和威克汉姆琼脂平板上生长的ΔaswA菌株进行转录组分析表明,参与三种与菌核相关的次生代谢物生物合成的聚类基因的表达下调。这些包括天冬酰胺、黄曲霉震颤素和黄曲黄素的基因簇。相比之下,黄曲霉毒素、环匹阿尼酸和曲酸的基因簇不受影响。代谢物分析证实,无色素菌核含有黄曲霉毒素和环匹阿尼酸,但不含有其他上述代谢物、成熟菌核中常见的三种天冬酰胺类似物和二羟基黄曲霉素。aswA基因功能的损害阻碍了正常的菌核发育,进而阻止了菌核特异性代谢物的生物合成和积累。

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