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首页> 外文期刊>ACS Omega >Delineating the Biofilm Inhibition Mechanisms of Phenolic and Aldehydic Terpenes against Cryptococcus neoformans
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Delineating the Biofilm Inhibition Mechanisms of Phenolic and Aldehydic Terpenes against Cryptococcus neoformans

机译:描绘酚醛和醛萜对新型隐球菌的生物膜抑制机制

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The recalcitrant biofilm formed by fungus Cryptococcus neoformans is a life-threatening pathogenic condition responsible for further intensifying cryptococcosis. Considering the enhanced biofilm resistance and toxicity of synthetic antifungal drugs, the search for efficient, nontoxic, and cost-effective natural therapeutics has received a major boost. Phenolic (thymol and carvacrol) and aldehydic (citral) terpenes are natural and safe alternatives capable of efficient microbial biofilm inhibition. However, the biofilm inhibition mechanism of these terpenes still remains unclear. In this study, we adopted an integrative biophysical and biochemical approach to elucidate the hierarchy of their action against C. neoformans biofilm cells. The microscopic analysis revealed disruption of the biofilm cell surface with elevation in surface roughness and reduction in cell height. Although all terpenes acted through ergosterol biosynthesis inhibition, the phenolic terpenes also selectively interacted via ergosterol binding. Further, the alterations in the fatty acid profile in response to terpenes attenuated the cell membrane fluidity with enhanced permeability, resulting in pore formation and efflux of the K+/intracellular content. Additionally, mitochondrial depolarization caused higher levels of reactive oxygen species, which led to increased lipid peroxidation and activation of the antioxidant defense system. Indeed, the oxidative stress caused a significant decline in the amount of extracellular polymeric matrix and capsule sugars (mannose, xylose, and glucuronic acid), leading to a reduced capsule size and an overall negative charge on the cell surface. This comprehensive data revealed the mechanistic insights into the mode of action of terpenes on biofilm inhibition, which could be exploited for formulating novel anti-biofilm agents.
机译:新型隐球菌真菌形成的顽强生物膜是危及生命的致病性疾病,负责进一步加剧隐球菌病。考虑到合成抗真菌药物的增强的生物膜抗性和毒性,寻求有效,无毒且具有成本效益的天然疗法的研究得到了极大的推动。苯酚(百里酚和香芹酚)和醛(柠檬酸)萜烯是能够有效抑制微生物生物膜的天然安全替代品。但是,这些萜烯的生物膜抑制机制仍不清楚。在这项研究中,我们采用了一种综合的生物物理和生化方法来阐明它们对新孢子虫生物膜细胞的作用的层次。显微镜分析揭示了生物膜细胞表面的破坏,其表面粗糙度升高且细胞高度降低。尽管所有萜烯均通过麦角甾醇的生物合成抑制起作用,但酚类萜烯也通过麦角固醇结合选择性地相互作用。此外,响应于萜烯的脂肪酸谱的改变以增强的渗透性减弱了细胞膜的流动性,导致孔形成和K + /细胞内内容物的流出。此外,线粒体去极化导致较高水平的活性氧,从而导致脂质过氧化作用增强和抗氧化防御系统的激活。确实,氧化应激导致细胞外聚合物基质和胶囊糖(甘露糖,木糖和葡萄糖醛酸)的数量显着下降,从而导致胶囊尺寸减小和细胞表面总体带负电荷。这些全面的数据揭示了萜烯对生物膜抑制作用的作用机理的机械学见解,可用于配制新型抗生物膜剂。

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