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并且精油与氨苄西林协同作用对抗产超广谱β-内酰胺酶的细菌 。

and Essential Oils Synergize with Ampicillin against Extended-Spectrum Beta-Lactamase-Producing .

作者信息

Bastida-Ramírez Levi Jafet, Buendía-González Leticia, Mejía-Argueta Euridice Ladisu, Sandoval-Cabrera Antonio, García-Fabila María Magdalena, Pavón-Romero Sergio Humberto, Padua-Ahumada Monica, Santillán-Benítez Jonnathan Guadalupe

机构信息

Facultad de Química, Universidad Autónoma del Estado de México, Toluca C.P. 50120, Mexico.

Facultad de Ciencias, Universidad Autónoma del Estado de México, Toluca C.P. 50200, Mexico.

出版信息

Microorganisms. 2024 Aug 17;12(8):1702. doi: 10.3390/microorganisms12081702.

Abstract

(1) Background: Could compounds such as monoterpenes and sesquiterpenes present in essential plant oils inhibit bacterial growth as an alternative to help mitigate bacterial resistance? The purpose of this study is evaluating the in vitro antibacterial effect of EO (LEO) and EO (TEO), individually and in combination with ampicillin, against extended-spectrum beta-lactamase (ESBL)-producing strains; (2) Methods: Experimental in vitro design with post-test. The EOs were obtained by hydrodistillation and were analyzed by GC. ESBL-producing strains used were selected from urine cultures and the and resistance genes were identified by end point PCR. The disk diffusion method was used for the susceptibility tests. The MICs and MBCs were determined by microdilution test. Finally, the interaction effect was observed by checkerboard assay; (3) Results: A 39.9% decrease in the growth of the strain thymol in TEO and 70.4% in carvacrol in LEO was shown, observing inhibition halos of 32 mm for both EOs. MICs of 632 and 892 μg/mL for LEO and 738 and 940 μg/mL for TEO were determined. Finally, it was observed that, at low doses, there is a synergistic effect between TEO + LEO and EOs + ampicillin; (4) Conclusions: The findings demonstrate that TEO and LEO have an inhibitory effect on ESBL-producing , suggesting that they are candidates for further studies in the formulation of antibiotics to reduce bacterial resistance to traditional antibiotics.

摘要

(1) 背景:植物精油中存在的单萜和倍半萜等化合物能否抑制细菌生长,作为减轻细菌耐药性的一种替代方法?本研究的目的是评估柠檬桉叶油(LEO)和百里香叶油(TEO)单独以及与氨苄西林联合对产超广谱β-内酰胺酶(ESBL)菌株的体外抗菌作用;(2) 方法:采用试验后体外实验设计。通过水蒸馏法获得精油,并通过气相色谱法进行分析。所用产ESBL菌株从尿液培养物中筛选,通过终点PCR鉴定blaCTX-M和blaTEM耐药基因。采用纸片扩散法进行药敏试验。通过微量稀释试验测定最低抑菌浓度(MIC)和最低杀菌浓度(MBC)。最后,通过棋盘法观察相互作用效果;(3) 结果:结果显示,TEO中的百里香酚使菌株生长下降39.9%,LEO中的香芹酚使菌株生长下降70.4%,两种精油均观察到32 mm的抑菌圈。测定LEO的MIC分别为632和892 μg/mL,TEO的MIC分别为738和940 μg/mL。最后观察到,在低剂量时,TEO + LEO以及精油 + 氨苄西林之间存在协同作用;(4) 结论:研究结果表明,TEO和LEO对产ESBL菌株有抑制作用,表明它们是进一步研究用于配制抗生素以降低细菌对传统抗生素耐药性的候选物质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c46e/11357574/f10b94b9c000/microorganisms-12-01702-g001.jpg

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