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Mechanisms of Antibacterial Action of Three Monoterpenes

化学 百里香酚 磷脂酰胆碱 磷脂酰甘油 亲脂性 乙酸芳樟酯 抗菌剂 小泡 生物化学 抗菌剂 磷脂 色谱法 生物物理学 有机化学 精油 生物 芳樟醇 抗生素
作者
Domenico Trombetta,Francesco Castelli,Maria Grazia Sarpietro,Vincenza Venuti,Mariateresa Cristani,Cláudia Daniele,Antonella Saija,Gabriela Mazzanti,Giuseppe Bisignano
出处
期刊:Antimicrobial Agents and Chemotherapy [American Society for Microbiology]
卷期号:49 (6): 2474-2478 被引量:1289
标识
DOI:10.1128/aac.49.6.2474-2478.2005
摘要

ABSTRACT In the present paper, we report the antimicrobial efficacy of three monoterpenes [linalyl acetate, (+)menthol, and thymol] against the gram-positive bacterium Staphylococcus aureus and the gram-negative bacterium Escherichia coli . For a better understanding of their mechanisms of action, the capability of these three monoterpenes to damage biomembranes was evaluated by monitoring the release, following exposure to the compounds under study, of the water-soluble fluorescent marker carboxyfluorescein from unilamellar vesicles with different lipidic compositions (phosphatidylcholine, phosphatidylcholine/phosphatidylserine [9:1], phosphatidylcholine/stearylamine [9:1], and phosphatidylglycerol/cardiolipin [9:1]). Furthermore, the interaction of the terpenes tested with dimyristoylphosphatidylcholine multilamellar vesicles as model membranes was monitored by means of differential scanning calorimetry. Finally, the results were related to the relative lipophilicity and water solubility of the compounds examined. Taken together, our findings lead us to speculate that the antimicrobial effect of (+)menthol, thymol, and linalyl acetate may result, at least partially, from a perturbation of the lipid fraction of microorganism plasma membrane, resulting in alterations of membrane permeability and in leakage of intracellular materials. Besides being related to physicochemical characteristics of the drugs (such as lipophilicity and water solubility), this effect seems to be dependent on lipid composition and net surface charge of microbial membranes. Furthermore, the drugs might cross the cell membranes, penetrating into the interior of the cell and interacting with intracellular sites critical for antibacterial activity.
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