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三苯基膦正离子十一烷和三苯基膦正离子十二烷衍生物抑制白念珠菌的线粒体功能,发挥抗真菌和抗生物膜作用。

Gallic acid triphenylphosphonium derivatives TPP+-C10 and TPP+-C12 inhibit mitochondrial function in Candida albicans exerting antifungal and antibiofilm effects.

机构信息

Laboratory of Applied Pharmacology for the Development of Anticancer and Antifungal Drugs, Institute for Research in Dental Sciences (ICOD), Faculty of Dentistry, University of Chile, Santiago, 8380544, Chile.

Laboratory of Nanobiomaterials, Institute for Research in Dental Sciences (ICOD), Faculty of Dentistry, University of Chile, Santiago, 8380544, Chile.

出版信息

J Appl Microbiol. 2024 Jan 2;135(1). doi: 10.1093/jambio/lxad316.

Abstract

AIMS

To evaluate the antifungal and antibiofilm activity of gallic acid derivatives TPP+-C10 and TPP+-C12 and their effects on mitochondrial function on two Candida albicans reference strains (ATCC 90029 and ATCC 10231).

METHODS AND RESULTS

First, we determined minimal inhibitory concentration (MIC) using a microdilution assay. Both compounds exerted antifungal effects, and their MICs ranged from 3.9 to 13 µM, with no statistically significant differences between them (P > 0.05, t-test). These concentrations served as references for following assays. Subsequently, we measured oxygen consumption with a Clark electrode. Our observations revealed that both drugs inhibited oxygen consumption in both strains with TPP+-C12 exerting a more pronounced inhibitory effect. We then employed flow cytometry with TMRE as a probe to assess mitochondrial membrane potential. For each strain assayed, the compounds induced a decay in transmembrane potential by 75%-90% compared to the control condition (P < 0.05, ANOVA). Then, we measured ATP levels using a commercial kit. TPP+-C12 showed a 50% decrease of ATP content (P < 0.05 ANOVA), while TPP+-C10 exhibited a less pronounced effect. Finally, we assessed the antibiofilm effect using the MTT reduction assay. Both compounds were effective, but TPP+-C12 displayed a greater potency, requiring a lower concentration to inhibit 50% of biofilms viability (P < 0.05, t-test).

CONCLUSIONS

Derivatives of gallic acid linked to a TPP+ group exert antifungal and antibiofilm activity through impairment of mitochondrial function in C. albicans.

摘要

目的

评估没食子酸衍生物 TPP+-C10 和 TPP+-C12 的抗真菌和抗生物膜活性及其对两种白色念珠菌参考菌株(ATCC 90029 和 ATCC 10231)线粒体功能的影响。

方法和结果

首先,我们使用微量稀释法测定最小抑菌浓度(MIC)。两种化合物均表现出抗真菌作用,其 MIC 范围为 3.9 至 13µM,彼此之间无统计学差异(P>0.05,t 检验)。这些浓度用作后续测定的参考。随后,我们使用克拉克电极测量耗氧量。我们的观察结果表明,两种药物均抑制了两种菌株的耗氧量,其中 TPP+-C12 的抑制作用更为明显。然后,我们使用 TMRE 作为探针通过流式细胞术评估线粒体膜电位。对于每种测定的菌株,与对照条件相比,化合物诱导跨膜电位下降 75%-90%(P<0.05,ANOVA)。然后,我们使用商业试剂盒测量 ATP 水平。TPP+-C12 显示 ATP 含量减少 50%(P<0.05 ANOVA),而 TPP+-C10 则表现出较弱的作用。最后,我们使用 MTT 还原测定评估抗生物膜作用。两种化合物均有效,但 TPP+-C12 的效力更大,需要较低的浓度来抑制 50%的生物膜活力(P<0.05,t 检验)。

结论

与 TPP+基团连接的没食子酸衍生物通过损害白色念珠菌的线粒体功能发挥抗真菌和抗生物膜活性。

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