Using a chemical genetic screen to enhance our understanding of the antimicrobial properties of copper.

IF 2.9 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Metallomics Pub Date : 2022-01-06 DOI:10.1093/mtomcs/mfab071
Natalie Gugala, Daniel A Salazar-Alemán, Gordon Chua, Raymond J Turner
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引用次数: 3

Abstract

The competitive toxic and stress-inducing nature of copper necessitates systems that sequester and export this metal from the cytoplasm of bacterial cells. Several predicted mechanisms of toxicity include the production of reactive oxygen species, thiol depletion, DNA, and iron-sulfur cluster disruption. Accompanying these mechanisms include pathways of homeostasis such as chelation, oxidation, and transport. Still, the mechanisms of copper resistance and sensitivity are not fully understood. Furthermore, studies fail to recognize that the response to copper is likely a result of numerous mechanisms, as in the case for homeostasis, in which proteins and enzymes work as a collective to maintain appropriate copper concentrations. In this study, we used the Keio collection, an array of 3985 Escherichia coli mutants, each with a deleted non-essential gene, to gain a better understanding of the effects of prolonged exposure to copper. In short, we recovered two copper homeostatic genes involved in transporting and assembling that are required in mediating prolonged copper stress under the conditions assessed. The gene coding for the protein TolC was uncovered as a sensitive hit, and we demonstrated that tolC, an outer membrane efflux channel, is key in mitigating copper sensitivity. Additionally, the activity of tRNA processing was enriched along with the deletion of several proteins involved in importing generated copper tolerance. Lastly, key genes belonging to central carbon metabolism and nicotinamide adenine dinucleotide biosynthesis were uncovered as tolerant hits. Overall, this study shows that copper sensitivity and tolerance are a result of numerous mechanisms acting in combination within the cell.

使用化学基因筛选来提高我们对铜的抗菌特性的理解。
铜的竞争性毒性和应激诱导性质需要从细菌细胞的细胞质中隔离和输出这种金属的系统。几种预测的毒性机制包括活性氧的产生、硫醇耗竭、DNA和铁硫簇破坏。伴随这些机制的还有体内平衡的途径,如螯合、氧化和运输。然而,铜的电阻和灵敏度的机制还没有完全被理解。此外,研究未能认识到对铜的反应可能是多种机制的结果,就像体内平衡的情况一样,蛋白质和酶共同作用以维持适当的铜浓度。在这项研究中,我们使用庆应义塾收集的3985个大肠杆菌突变体阵列,每个突变体都有一个缺失的非必需基因,以更好地了解长期暴露于铜的影响。简而言之,我们在评估的条件下恢复了两个参与运输和组装的铜稳态基因,这些基因是介导长期铜胁迫所必需的。编码蛋白TolC的基因被发现是一个敏感的打击,我们证明了TolC,一个外膜外排通道,是减轻铜敏感性的关键。此外,tRNA加工的活性随着一些参与铜耐受输入的蛋白质的缺失而增强。最后,发现了中心碳代谢和烟酰胺腺嘌呤二核苷酸生物合成的关键基因。总的来说,这项研究表明,铜的敏感性和耐受性是细胞内多种机制共同作用的结果。
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
Metallomics
Metallomics 生物-生化与分子生物学
CiteScore
7.00
自引率
5.90%
发文量
87
审稿时长
1 months
期刊介绍: Global approaches to metals in the biosciences
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