细胞色素P450的自然变异可以独立于β -微管蛋白改变噻苯达唑的反应。

IF 5.5 1区 医学 Q1 MICROBIOLOGY
PLoS Pathogens Pub Date : 2025-01-14 eCollection Date: 2025-01-01 DOI:10.1371/journal.ppat.1012602
J B Collins, Clayton M Dilks, Steffen R Hahnel, Briana Rodriguez, Bennett W Fox, Elizabeth Redman, Jingfang Yu, Brittany Cooke, Kateryna Sihuta, Mostafa Zamanian, Peter J Roy, Frank C Schroeder, John S Gilleard, Erik C Andersen
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引用次数: 0

摘要

广泛存在的驱虫抗药性使寄生线虫的管理复杂化。对苯并咪唑(BZ)类药物的耐药性在许多物种中几乎普遍存在,并且与β -微管蛋白基因突变有关。然而,仅β -微管蛋白突变并不能完全解释所有BZ耐药性。我们使用一组遗传多样性的秀丽隐杆线虫菌株进行了一项全基因组关联研究,以确定对BZ药物噻苯达唑(TBZ)产生耐药性的位点。我们在V号染色体上发现了一个独立于所有β -微管蛋白基因的数量性状位点(QTL),并与两个有希望的候选基因重叠,即细胞色素P450基因cyp35d1和核激素受体nhr-176。这两个基因之前都被证明在TBZ代谢中起作用。NHR-176结合TBZ并诱导cyp35d1的表达,cyp35d1代谢TBZ。我们产生了cyp35d1和nhr-176的单基因缺失,发现这两个基因都在TBZ反应中起作用。在一株cyp35d1基因的267位(K267E)上发现了预测的高影响赖氨酸对谷氨酸的替代,并利用不同遗传背景的互惠等位基因替代菌株表明赖氨酸等位基因增强了对TBZ的抗性。通过竞争适应度分析,我们发现这两个等位基因都不是有害的,但赖氨酸等位基因在TBZ存在时被选择。此外,我们发现与谷氨酸等位基因相比,赖氨酸等位基因显著提高了TBZ代谢率。此外,酵母表达实验表明,赖氨酸版本的CYP-35D1具有谷氨酸等位基因的两倍的酶活性。为了将我们的结果与寄生线虫联系起来,我们分析了四个弯曲血蜱的细胞色素P450同源基因,但在芬苯达唑耐药种群中没有发现267位点的变异。总的来说,我们证实了细胞色素P450基因的变异是第一个独立于β -微管蛋白的基因座,在BZ抗性中发挥作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Naturally occurring variation in a cytochrome P450 modifies thiabendazole responses independently of beta-tubulin.

Widespread anthelmintic resistance has complicated the management of parasitic nematodes. Resistance to the benzimidazole (BZ) drug class is nearly ubiquitous in many species and is associated with mutations in beta-tubulin genes. However, mutations in beta-tubulin alone do not fully explain all BZ resistance. We performed a genome-wide association study using a genetically diverse panel of Caenorhabditis elegans strains to identify loci that contribute to resistance to the BZ drug thiabendazole (TBZ). We identified a quantitative trait locus (QTL) on chromosome V independent of all beta-tubulin genes and overlapping with two promising candidate genes, the cytochrome P450 gene cyp-35D1 and the nuclear hormone receptor nhr-176. Both genes were previously demonstrated to play a role in TBZ metabolism. NHR-176 binds TBZ and induces the expression of CYP-35D1, which metabolizes TBZ. We generated single gene deletions of cyp-35D1 and nhr-176 and found that both genes play a role in TBZ response. A predicted high-impact lysine-to-glutamate substitution at position 267 (K267E) in CYP-35D1 was identified in a sensitive strain, and reciprocal allele replacement strains in different genetic backgrounds were used to show that the lysine allele conferred increased TBZ resistance. Using competitive fitness assays, we found that neither allele was deleterious, but the lysine allele was selected in the presence of TBZ. Additionally, we found that the lysine allele significantly increased the rate of TBZ metabolism compared to the glutamate allele. Moreover, yeast expression assays showed that the lysine version of CYP-35D1 had twice the enzymatic activity of the glutamate allele. To connect our results to parasitic nematodes, we analyzed four Haemonchus contortus cytochrome P450 orthologs but did not find variation at the 267 position in fenbendazole-resistant populations. Overall, we confirmed that variation in this cytochrome P450 gene is the first locus independent of beta-tubulin to play a role in BZ resistance.

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来源期刊
PLoS Pathogens
PLoS Pathogens MICROBIOLOGY-PARASITOLOGY
自引率
3.00%
发文量
598
期刊介绍: Bacteria, fungi, parasites, prions and viruses cause a plethora of diseases that have important medical, agricultural, and economic consequences. Moreover, the study of microbes continues to provide novel insights into such fundamental processes as the molecular basis of cellular and organismal function.
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