Transcriptome analysis reveals the mechanism of tolerance to copper toxicity in the white rot fungus Trametes hirsuta AH28-2

IF 6.2 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Chenkai Wang , Kun Wu , Na Pang , Huifang Zhao , Shenglong Liu , Xinlei Zhang , Yazhong Xiao , Zemin Fang , Juanjuan Liu
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Abstract

Heavy metals, such as copper (Cu), are prevalent in the environment and pose a substantial threat to human health. White rot fungi, especially Trametes spp., display prominent Cu tolerance and removal capacity. However, how Trametes responds to environmental Cu stress remains poorly understood. Here, we found that Trametes hirsuta AH28–2 exhibits Cu removal efficiencies varying from 80.8 % at 1.25 mg/L to 57.6 % at 37 mg/L. Comparative transcriptome analysis identified 812, 1898, and 2110 differentially expressed genes (DEGs) at the Cu concentrations of 1.25, 12.5, and 25 mg/L, respectively. Some DEGs were associated with antioxidant defense systems, secondary metabolite biosynthesis (terpenoids and polyketides), transmembrane transport, and glutathione metabolism, potentially enhancing Cu tolerance. The activities of antioxidant enzymes such as superoxide dismutase, catalase, and laccase were increased under Cu stress. qRT-PCR confirmed the alterations in gene expression and demonstrated that glutathione S-transferases, catalases, cytochrome P450s, and laccases were involved in counteracting Cu-induced stress. Gene silencing experiments further confirmed the crucial roles of laccases in this process. Many transcription factors were enriched under Cu stress, including the Zn2Cys6 family transcription factor GME8421_g (TH8421), which was significantly upregulated at the Cu concentration of 12.5 mg/L. ChIP-seq identified five antioxidant enzyme-encoding genes as direct targets of TH8421, forming a regulatory network that protects against Cu stress. These findings offer insights into the molecular mechanisms driving Cu toxicity tolerance in Trametes fungi.
转录组分析揭示了白腐菌毛癣菌AH28-2对铜毒性的耐受机制
铜(Cu)等重金属在环境中普遍存在,对人类健康构成重大威胁。白腐菌对铜的耐受性和去除能力较强。然而,Trametes如何响应环境Cu胁迫仍然知之甚少。本研究发现,在1.25 mg/L和37 mg/L条件下,毛毛板菌AH28-2的Cu去除率分别为80.8 %和57.6 %。对比转录组分析在Cu浓度为1.25、12.5和25 mg/L时分别鉴定出812、1898和2110个差异表达基因(deg)。一些deg与抗氧化防御系统、次生代谢物生物合成(萜类和聚酮类)、跨膜运输和谷胱甘肽代谢有关,可能增强铜耐受性。Cu胁迫显著提高了抗氧化酶如超氧化物歧化酶、过氧化氢酶和漆酶的活性。qRT-PCR证实了基因表达的改变,并证明谷胱甘肽s -转移酶、过氧化氢酶、细胞色素p450和漆酶参与了对抗cu诱导的应激。基因沉默实验进一步证实了漆酶在这一过程中的关键作用。Cu胁迫下,许多转录因子富集,其中Zn2Cys6家族转录因子GME8421_g (TH8421)在Cu浓度为12.5 mg/L时显著上调。ChIP-seq鉴定出5个抗氧化酶编码基因作为TH8421的直接靶点,形成了一个保护Cu胁迫的调控网络。这些发现为研究真菌对铜毒性耐受的分子机制提供了新的见解。
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
CiteScore
12.10
自引率
5.90%
发文量
1234
审稿时长
88 days
期刊介绍: Ecotoxicology and Environmental Safety is a multi-disciplinary journal that focuses on understanding the exposure and effects of environmental contamination on organisms including human health. The scope of the journal covers three main themes. The topics within these themes, indicated below, include (but are not limited to) the following: Ecotoxicology、Environmental Chemistry、Environmental Safety etc.
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