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光和葡萄糖调控的串扰控制产毒和构巢曲霉的形态发生。

Cross-talk between light and glucose regulation controls toxin production and morphogenesis in Aspergillus nidulans.

机构信息

Department of Biological Sciences, Northern Illinois University, Lincoln Hwy. 1425 W., DeKalb, IL 60115, USA.

出版信息

Fungal Genet Biol. 2010 Dec;47(12):962-72. doi: 10.1016/j.fgb.2010.08.007. Epub 2010 Sep 17.

Abstract

Light is a major environmental stimulus that has a broad effect on organisms, triggering a cellular response that results in an optimal adaptation enhancing fitness and survival. In fungi, light affects growth, and causes diverse morphological changes such as those leading to reproduction. Light can also affect fungal metabolism, including the biosynthesis of natural products. In this study we show that in Aspergillus nidulans the effect of light on the production of the sterigmatocystin (ST) toxin depends on the glucose concentration. In cultures grown with 1% glucose and exposed to light, ST production was lower than when grown in the dark. This lower ST production coincided with an elevated rate of cellular damage with partial loss of nuclear integrity and vacuolated cytoplasm. However, in cultures grown with 2% glucose these effects were reversed and light enhanced ST production. Glucose abundance also affected the light-dependent subcellular localization of the VeA (velvet) protein, a key regulator necessary for normal light-dependent morphogenesis and secondary metabolism in Aspergilli and other fungal genera. The role of other VeA-associated proteins, particularly the blue-light-sensing proteins LreA and LreB (WC-1 and WC-2 orthologs), on conidiation could also be modified by the abundance of glucose. We also show that LreA and LreB, as well as the phytochrome FphA, modulate not only the synthesis of sterigmatocystin, but also the production of the antibiotic penicillin.

摘要

光是一种主要的环境刺激物,对生物体有广泛的影响,引发细胞反应,从而实现最佳适应,提高适应性和生存能力。在真菌中,光会影响生长,并引起多种形态变化,如导致繁殖的变化。光还可以影响真菌的新陈代谢,包括天然产物的生物合成。在这项研究中,我们表明在 Aspergillus nidulans 中,光对产麦角固醇(ST)毒素的影响取决于葡萄糖浓度。在 1%葡萄糖培养并暴露于光线下,ST 的产量低于黑暗中生长时。这种较低的 ST 产量与细胞损伤率升高有关,核完整性部分丧失,细胞质空泡化。然而,在 2%葡萄糖培养中,这些影响被逆转,光增强了 ST 的产量。葡萄糖丰度还影响了 Velvet(绒毡层)蛋白的光依赖性亚细胞定位, Velvet 蛋白是 Aspergilli 和其他真菌属中正常光依赖性形态发生和次生代谢所必需的关键调节剂。其他与 Velvet 相关的蛋白质,特别是蓝光感应蛋白 LreA 和 LreB(WC-1 和 WC-2 同源物),对分生孢子形成的作用也可以通过葡萄糖的丰度来修饰。我们还表明,LreA 和 LreB 以及光敏色素 FphA 不仅调节麦角固醇的合成,还调节抗生素青霉素的产生。

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