Functional characterization of AoKat1, a major facilitator superfamily transporter involved in kojic acid production in Aspergillus oryzae.

IF 2.4 3区 生物学 Q2 GENETICS & HEREDITY
Gene Pub Date : 2025-09-30 DOI:10.1016/j.gene.2025.149807
Yue Chen, Chenning Chao, Tianqi Han, Yafei Gu, Qian Wang, Xianli Xue, Depei Wang
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引用次数: 0

Abstract

Kojic acid (KA) is a fungal secondary metabolite with wide-ranging industrial applications; however, the molecular mechanisms underlying its extracellular export remain incompletely understood. While KojT, a major facilitator superfamily (MFS) transporter, has been implicated in KA transport, evidence suggests it is not the sole contributor. Here, we identify and functionally characterize a MFS transporter, AoKat1, in Aspergillus oryzae. Comparative transcriptomic analysis between the wild-type strain and a high-KA-producing strain (T58) revealed AoKat1 as significantly upregulated during peak KA production. Structural modeling and molecular docking suggested that KA binds with high affinity within the central cavity of AoKat1. Functional studies showed that overexpression of AoKat1 (OEAoKat1) increased KA production to approximately 43.9  g/L, representing a 31 % improvement compared to the wild-type strain. AoKat1 expression also impacted colony morphology, sporulation, carbon source utilization, and oxidative stress sensitivity. Notably, deletion of AoKat1 led to transcriptional upregulation of kojT, suggesting a compensatory mechanism between these transporters. Moreover, antioxidant genes (catB and GSH) were upregulated in the OEAoKat1 strain during early fermentation, then declined as KA accumulated. This study provides new insight into KA biosynthetic regulation and offer a genetic target to optimize KA production through metabolic engineering.

参与米曲霉曲酸生产的主要促进剂超家族转运蛋白AoKat1的功能表征
曲酸(KA)是一种具有广泛工业应用的真菌次生代谢物;然而,其胞外输出的分子机制仍不完全清楚。虽然KojT,一个主要的促进者超家族(MFS)转运蛋白,与KA转运有关,但有证据表明它不是唯一的贡献者。在这里,我们鉴定了米曲霉中的MFS转运体AoKat1,并对其进行了功能表征。野生型菌株与高产KA菌株(T58)的转录组比较分析显示,AoKat1在KA高产高峰期间显著上调。结构建模和分子对接表明,KA在AoKat1的中心腔内具有高亲和力结合。功能研究表明,过表达AoKat1 (OEAoKat1)使KA产量增加到约43.9  g/L,与野生型菌株相比提高了31% %。AoKat1的表达也影响菌落形态、产孢、碳源利用和氧化应激敏感性。值得注意的是,AoKat1的缺失导致kojT的转录上调,这表明这些转运体之间存在补偿机制。此外,抗氧化基因(catB和GSH)在OEAoKat1菌株发酵初期呈上调趋势,随着KA的积累呈下降趋势。该研究为KA的生物合成调控提供了新的思路,并为通过代谢工程优化KA的生产提供了一个遗传靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Gene
Gene 生物-遗传学
CiteScore
6.10
自引率
2.90%
发文量
718
审稿时长
42 days
期刊介绍: Gene publishes papers that focus on the regulation, expression, function and evolution of genes in all biological contexts, including all prokaryotic and eukaryotic organisms, as well as viruses.
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