Quercetin disrupts biofilm formation and attenuates virulence of Aeromonas hydrophila.

IF 2.3 3区 生物学 Q3 MICROBIOLOGY
Sudharshini Jayaraman, Nandhini Rajendhran, Monika Adhilaxmi Kannan, Thirumurugan Ramasamy
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引用次数: 0

Abstract

Aeromonas hydrophila poses significant health and economic challenges in aquaculture owing to its pathogenicity and prevalence. Overuse of antibiotics has led to multidrug resistance and environmental pollution, necessitating alternative strategies. This study investigated the antibacterial and antibiofilm potentials of quercetin against A. hydrophila. Efficacy was assessed using various assays, including antibacterial activity, biofilm inhibition, specific growth time, hemolysis inhibition, autoaggregation, and microscopic evaluation. Additionally, docking analysis was performed to explore potential interactions between quercetin and virulence proteins of A. hydrophila, including proaerolysin, chaperone needle-subunit complex of the type III secretion system, and alpha-pore forming toxin (PDB ID: 1PRE, 2Q1K, 6GRK). Quercetin exhibited potent antibacterial activity with 21.1 ± 1.1 mm zone of inhibition at 1.5 mg mL-1. It also demonstrated significant antibiofilm activity, reducing biofilm formation by 46.3 ± 1.3% at the MIC and attenuating autoaggregation by 55.9 ± 1.5%. Hemolysis was inhibited by 41 ± 1.8%. Microscopic analysis revealed the disintegration of the A. hydrophila biofilm matrix. Docking studies indicated active hydrogen bond interactions between quercetin and the targeted virulence proteins with the binding energy -3.2, -5.6, and -5.1 kcal mol⁻1, respectively. These results suggest that quercetin is an excellent alternative to antibiotics for combating A. hydrophila infection in aquaculture. The multifaceted efficacy of quercetin in inhibiting bacterial growth, biofilm formation, virulence factors, and autoaggregation highlights the potential for aquaculture health and sustainability. Future research should delve into the precise mechanisms of action and explore synergistic combinations with other compounds for enhanced efficacy and targeted interventions.

Abstract Image

槲皮素能破坏生物膜的形成并减轻嗜水气单胞菌的毒性。
由于嗜水气单胞菌的致病性和流行性,它给水产养殖业带来了巨大的健康和经济挑战。抗生素的过度使用导致了多重耐药性和环境污染,因此有必要采取替代策略。本研究调查了槲皮素对蚜虫的抗菌和抗生物膜潜力。药效评估采用了多种检测方法,包括抗菌活性、生物膜抑制、特定生长时间、溶血抑制、自聚集和显微评价。此外,还进行了对接分析,以探索槲皮素与纤毛虫毒力蛋白(包括前溶菌酶、III型分泌系统的伴侣针-亚基复合物和α-孔形成毒素(PDB ID:1PRE、2Q1K、6GRK))之间的潜在相互作用。槲皮素具有很强的抗菌活性,1.5 毫克/毫升-1 的抑菌面积为 21.1 ± 1.1 毫米。槲皮素还具有明显的抗生物膜活性,在 MIC 值下可减少 46.3 ± 1.3% 的生物膜形成,并可减少 55.9 ± 1.5% 的自身聚集。溶血抑制率为 41 ± 1.8%。显微镜分析表明,蚜虫生物膜基质已经瓦解。对接研究表明,槲皮素与目标毒力蛋白之间存在活跃的氢键相互作用,结合能分别为-3.2、-5.6和-5.1 kcal mol-1。这些结果表明,槲皮素是水产养殖中抗蚜虫感染抗生素的极佳替代品。槲皮素在抑制细菌生长、生物膜形成、毒力因子和自身聚集等方面的多方面功效凸显了其在水产养殖健康和可持续发展方面的潜力。未来的研究应深入探讨其确切的作用机制,并探索与其他化合物的协同组合,以增强功效和有针对性的干预措施。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Archives of Microbiology
Archives of Microbiology 生物-微生物学
CiteScore
4.90
自引率
3.60%
发文量
601
审稿时长
3 months
期刊介绍: Research papers must make a significant and original contribution to microbiology and be of interest to a broad readership. The results of any experimental approach that meets these objectives are welcome, particularly biochemical, molecular genetic, physiological, and/or physical investigations into microbial cells and their interactions with their environments, including their eukaryotic hosts. Mini-reviews in areas of special topical interest and papers on medical microbiology, ecology and systematics, including description of novel taxa, are also published. Theoretical papers and those that report on the analysis or ''mining'' of data are acceptable in principle if new information, interpretations, or hypotheses emerge.
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