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Sci Rep. 2020 Jan 21;10(1):819. doi: 10.1038/s41598-019-55601-0.
2
Terpene Derivatives as a Potential Agent against Antimicrobial Resistance (AMR) Pathogens.萜类衍生物作为一种对抗抗微生物药物耐药性(AMR)病原体的潜在药物。
Molecules. 2019 Jul 19;24(14):2631. doi: 10.3390/molecules24142631.
3
Disruption of KPC-producing Klebsiella pneumoniae membrane via induction of oxidative stress by cinnamon bark (Cinnamomum verum J. Presl) essential oil.肉桂精油通过诱导氧化应激破坏产 KPC 肺炎克雷伯菌的膜。
PLoS One. 2019 Apr 2;14(4):e0214326. doi: 10.1371/journal.pone.0214326. eCollection 2019.
4
Mechanisms of Antimicrobial Resistance (AMR) and Alternative Approaches to Overcome AMR.抗微生物药物耐药性(AMR)的机制及克服 AMR 的替代方法。
Curr Drug Discov Technol. 2020;17(4):430-447. doi: 10.2174/1570163816666190304122219.
5
The Antimicrobial Effects of Essential Oil in Combination with Conventional Antimicrobial Agents.精油与传统抗菌剂联合使用的抗菌效果。
Evid Based Complement Alternat Med. 2016;2016:2752739. doi: 10.1155/2016/2752739. Epub 2016 Nov 6.
6
Antifungal Activity of Some Constituents of Origanum vulgare L. Essential Oil Against Postharvest Disease of Peach Fruit.牛至精油某些成分对桃果实采后病害的抑菌活性
J Med Food. 2015 Aug;18(8):929-34. doi: 10.1089/jmf.2014.0167. Epub 2015 Jan 19.
7
Membrane disruption and anti-quorum sensing effects of synergistic interaction between Lavandula angustifolia (lavender oil) in combination with antibiotic against plasmid-conferred multi-drug-resistant Escherichia coli.薰衣草(薰衣草油)与抗生素联合对质粒介导的多重耐药大肠杆菌的协同相互作用的膜破坏和抗群体感应作用
J Appl Microbiol. 2014 May;116(5):1119-28. doi: 10.1111/jam.12444. Epub 2014 Feb 14.
8
Chemical composition and biological activity of the essential oil of Origanum vulgare ssp. hirtum from different areas in the Southern Apennines (Italy).来自意大利亚平宁山脉南部不同地区的牛至(Origanum vulgare ssp. hirtum)精油的化学成分和生物活性
Chem Biodivers. 2014 Apr;11(4):639-51. doi: 10.1002/cbdv.201300326.
9
Evaluating the appropriate use of piperacillin/tazobactam in a community health system: a retrospective chart review.评估哌拉西林/他唑巴坦在社区卫生系统中的合理使用:一项回顾性病历审查。
P T. 2013 Aug;38(8):462-83.
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On the essentiality of lipopolysaccharide to Gram-negative bacteria.论脂多糖对于革兰氏阴性菌的必要性。
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多药耐药K-12菌株对精油反应的转录组学分析

Transcriptomic analysis of multi-drug resistant K-12 strain in response to essential oil.

作者信息

Lai Pey-Jiun, Ng Ee-Von, Yang Shun-Kai, Moo Chew-Li, Low Wai Yee, Yap Polly Soo-Xi, Lim Swee-Hua Erin, Lai Kok-Song

机构信息

Department of Cell and Molecular Biology, Faculty of Biotechnology and Biomolecular Sciences, Universiti Putra Malaysia, 43400 Serdang, Selangor Malaysia.

School of Pharmacy, International Medical University, Bukit Jalil, 57000 Kuala Lumpur, Malaysia.

出版信息

3 Biotech. 2020 Jul;10(7):313. doi: 10.1007/s13205-020-02304-3. Epub 2020 Jun 21.

DOI:10.1007/s13205-020-02304-3
PMID:32596098
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7306480/
Abstract

To better understand the synergistic antibacterial activity between piperacillin and essential oil (LEO) against multidrug-resistant , we performed microarray transcriptomic analysis of LEO when used alone and in combination with piperacillin against the non-treated control. In total, 90 genes were differentially expressed after the combination of LEO and piperacillin treatment. Among the up-regulated genes, , are known to control microbial metabolism and nitrotoluene degradation, which were observed only in the LEO-piperacillin combinatory treatment. Four candidate genes from the microarray result, and were validated by qRT-PCR as these genes showed differential expression consistently in the two methods. Biochemical pathway analysis showed that there was upregulation of genes involved in several biological processes including fructose and mannose metabolism, phosphotransferase system (PTS), lipopolysaccharide biosynthesis and nitrotoluene degradation. Genes involved in microbial metabolism in diverse environments were found both up- and down-regulated in LEO-piperacillin combinatory treatment. Our study provides new information concerning the transcriptional changes that occur during the LEO and piperacillin interaction against the multidrug-resistant bacteria and contributes to unravel the mechanisms underlying this synergism.

摘要

为了更好地理解哌拉西林与精油(LEO)对多重耐药菌的协同抗菌活性,我们对单独使用LEO以及LEO与哌拉西林联合使用时相对于未处理对照进行了基因芯片转录组分析。LEO与哌拉西林联合处理后,共有90个基因差异表达。在上调基因中,已知控制微生物代谢和硝基甲苯降解的基因,仅在LEO - 哌拉西林联合处理中观察到。基因芯片结果中的四个候选基因,通过qRT - PCR进行了验证,因为这些基因在两种方法中均显示出一致的差异表达。生化途径分析表明,参与包括果糖和甘露糖代谢、磷酸转移酶系统(PTS)、脂多糖生物合成和硝基甲苯降解等多个生物过程的基因上调。在LEO - 哌拉西林联合处理中,发现参与不同环境中微生物代谢的基因既有上调也有下调。我们的研究提供了有关LEO和哌拉西林与多重耐药菌相互作用期间发生的转录变化的新信息,并有助于揭示这种协同作用的潜在机制。