揭示木虱对鱼藤酮抗性背后的共表达网络和分子靶标

IF 6.2 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES Ecotoxicology and Environmental Safety Pub Date : 2024-11-15 DOI:10.1016/j.ecoenv.2024.117293
Buyong Wang , Rongrong Wen , Xuenan Mao , Jie Chen , Xin Hao
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引用次数: 0

摘要

嗜木囊线虫(Bursaphelenchus xylophilus)是松树枯萎病的致病线虫,可导致松树枯死和树干褪色。鱼藤酮是一种重要的植物杀虫剂,因此我们通过 RNA-seq 研究了鱼藤酮对嗜木线虫的影响,以了解线虫的反应机制。生物测定结果得出了鱼藤酮的 12 小时半数致死浓度(LC30)(1.35 毫克/升-1)和半数致死浓度(LC50)(2.60 毫克/升-1)。差异基因表达分析在暴露于两种不同浓度鱼藤酮(1.35 和 2.60 mg L-1)的嗜木线虫中分别发现了 172 和 614 个差异表达基因(DEGs)。为了验证这些发现,通过 RT-qPCR 确认了 10 个 DEGs 的表达模式。此外,还利用 STEM 将所有 DEGs 分成 8 个基因表达谱。值得注意的是,"单一组织过程"、"代谢过程 "和 "催化活性 "等基因本体(GO)过程在鱼藤酮处理的样本中显著富集,这表明代谢和催化途径在线虫对鱼藤酮胁迫的反应中发挥作用。与 "碳代谢"、"药物代谢-细胞色素 P450 "和 "细胞色素 P450 对异种生物的代谢 "相关的 KEGG 通路也同样富集,这表明线虫具有抗解毒和抗氧化应激的潜在机制。分析表明,解毒和氧化还原相关基因以及信号转导相关基因在嗜木酵母菌适应鱼藤酮暴露的过程中发挥着关键作用。这些见解可显著提高我们对线虫抗性机制的认识,并为开发更有效的基于鱼藤酮的嗜木虱控制策略提供潜在信息。
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Unveiling the co-expression network and molecular targets behind rotenone resistance in the Bursaphelenchus xylophilus
Bursaphelenchus xylophilus is a pathogenic nematode responsible for pine wilt disease, which can cause the demise of pine trees and discoloration of trunks. As rotenone is an important botanical pesticide, its impact on B. xylophilus was investigated through RNA-seq to understand the response mechanism of nematode. The bioassay results yielded the 12-h LC30 (1.35 mg L−1) and LC50 (2.60 mg L−1) values for rotenone. Differential gene expression analysis identified 172 and 614 differentially expressed genes (DEGs) in B. xylophilus exposed to two different concentrations of rotenone (1.35 and 2.60 mg L−1). To validate these findings, the expression patterns of 10 DEGs were confirmed through RT-qPCR. Additionally, all DEGs were categorized into eight gene expression profiles using STEM. Notably, the gene ontology (GO) processes of "single-organism process," "metabolic process," and "catalytic activity" were prominently enriched in rotenone-treated samples, suggesting a role for metabolic and catalytic pathways in the nematode's response to rotenone stress. KEGG pathways related to "carbon metabolism," "drug metabolism-cytochrome P450," and "metabolism of xenobiotics by cytochrome P450" were similarly enriched, indicating potential mechanisms for detoxification resistance and oxidative stress resistance. The analysis pointed to the pivotal roles of detoxification- and oxidoreduction-related genes, as well as signal transduction-related genes, in enabling B. xylophilus to adapt to rotenone exposure. These insights could markedly enhance our understanding of nematode resistance mechanisms and potentially inform the development of more effective rotenone-based strategies for controlling B. xylophilus.
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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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