Mendes Amanda Graziela Gonçalves, Campos Carmem Duarte Lima, Pereira-Filho José Lima, Pereira Aleania Polassa Almeida, Reis Gabriel Silva Abrantes, Araújo Árlon Wendel de Marinho Silva, Monteiro Pablo de Matos, Vidal Flávia Castello Branco, Monteiro Silvio Gomes, da Silva Figueiredo Isabella Fernandes, Fernandes Elizabeth Soares, Monteiro Cristina de Andrade, Monteiro-Neto Valério
Centro de Ciências da Saúde, Universidade Federal do Maranhão, São Luís 65080-805, MA, Brazil.
Instituto de Pesquisa Pelé Pequeno Príncipe, Curitiba 80250-060, PR, Brazil.
Antibiotics (Basel). 2024 Dec 4;13(12):1174. doi: 10.3390/antibiotics13121174.
: Antifungal resistance to azoles, coupled with the increasing prevalence of infections, represents a significant public health challenge and has driven the search for new natural compounds that can act as alternatives or adjuvants to the current antifungals. Ellagic acid (EA) has demonstrated antifungal activity; however, its effects are not fully understood. In this study, we investigated the in vitro anti- activity of EA and its ability to potentiate the effects of fluconazole (FLZ) on : The Minimum Inhibitory Concentration (MIC) of EA was determined by broth microdilution and its interaction with FLZ was assessed using a checkerboard assay. Additionally, we examined the effects of EA on yeast-to-hypha transition, inhibition of biofilm formation, time-kill kinetics, hemolytic activity, and cytotoxicity in HeLa ATCC CCL-2™ cells. : EA exhibited MIC values ranging from 250 to 2000 µg/mL and showed synergistic and additive interactions with FLZ, resulting in a marked reduction in the MIC values of FLZ (up to 32-fold) and EA (up to 16-fold). In the time-kill assay, the most effective combinations were 4× EA MIC, 2× EA MIC, and FIC EA + FLZ, which showed fungicidal activity. Furthermore, EA did not show hemolytic activity and demonstrated low and dose-dependent cytotoxicity in HeLa cells, with no cytotoxic effects observed in combination with FLZ. EA and the synergistic combination of EA and FLZ interfered with both the yeast-to-hypha transition process in cells and biofilm formation. In addition to its antifungal efficacy, EA demonstrated a favorable safety profile at the concentrations used. : This study presents promising results regarding the potential use of EA in combination with FLZ for the treatment of infections.
对唑类抗真菌药物的耐药性,加上感染患病率的不断上升,构成了重大的公共卫生挑战,并促使人们寻找可作为现有抗真菌药物替代品或佐剂的新型天然化合物。鞣花酸(EA)已显示出抗真菌活性;然而,其作用尚未完全明确。在本研究中,我们调查了EA的体外抗真菌活性及其增强氟康唑(FLZ)对[具体真菌名称未给出]作用的能力:通过肉汤微量稀释法测定EA的最低抑菌浓度(MIC),并使用棋盘法评估其与FLZ的相互作用。此外,我们研究了EA对[具体真菌名称未给出]从酵母态向菌丝态转变、生物膜形成抑制、时间杀菌动力学、溶血活性以及对HeLa ATCC CCL - 2™细胞的细胞毒性的影响。EA的MIC值范围为250至2000μg/mL,并与FLZ表现出协同和相加相互作用,导致FLZ的MIC值显著降低(高达32倍)以及EA的MIC值显著降低(高达16倍)。在时间杀菌试验中,最有效的组合为4倍EA MIC、2倍EA MIC以及FIC EA + FLZ,这些组合显示出杀菌活性。此外,EA未表现出溶血活性,并且在HeLa细胞中显示出低且剂量依赖性的细胞毒性,与FLZ联合使用时未观察到细胞毒性作用。EA以及EA与FLZ的协同组合干扰了[具体真菌名称未给出]细胞中的酵母态向菌丝态转变过程以及生物膜形成。除了其抗真菌功效外,在所用浓度下EA还显示出良好的安全性。本研究为EA与FLZ联合用于治疗[具体真菌名称未给出]感染的潜在用途提供了有前景的结果。