Antifungal Potential of Bioactive Metabolites Produced by Pseudomonas aeruginosa against Candida Species

Hamna Hanif, S. Naz, N. Jabeen, M. Shafique, Waleed Ahmed
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Abstract

Abstract: Background: The frequency of fungal infections targeting immune-suppressed patients has been prominently rising day by day. Among these infections, Candidiasis is one of the most common life-threatening systemic fungal infections in recent years. These infections are challenging to treat because of the inconvenience of effective antifungal drugs. Therefore, the insufficiency of current drug regimens coupled with constant mutations by the fungi to develop drug resistance can pose a potential problem for future anti-fungal treatments. This frequent increase in drug-resistant fungi has directed attention toward the use of alternative therapy from natural sources. Objective: This study aimed to evaluate Pseudomonas aeruginosa for its antifungal potential against Candida species. Materials and Methods: This study was conducted at the Federal Urdu University of Arts, Science and Technology, Karachi, Pakistan during 2021-2022. For the detection of the antifungal compound, a clinical isolate P. aeruginosa HS 28 (identified conventionally as well as by 16S r RNA analysis) was screened for its bioactivity against Candida species by using agar well diffusion technique. The growth kinetics as well as the effect of different physical and chemical factors were also determined in the study. The compound was also partially purified by ammonium sulfate precipitation. Result: This antifungal compound showed good inhibitory activity against Candida species such as Candida albicans, C. glabrata, C. tropicalis, C. krusei, etc. This compound retained its stability at a high range of temperatures, and varying pH. Moreover, its bioactivity was also conserved when treated with organic solvents, chloroform vapors, metal salts, and different surfactants/detergents. The growth kinetics analysis illustrated that the maximum production of antifungal compounds occurred in the log phase of growth and extended supreme until the late log phase. Furthermore, the highest saturation of this protein was achieved at the concentration of 60% ammonium sulfate. Conclusion: The overall results indicated the promising antifungal potential of the compound produced by Pseudomonas aeruginosa HS 28 against Candida species.
铜绿假单胞菌产生的生物活性代谢产物对白色念珠菌的抗真菌潜力
摘要: 背景:针对免疫抑制患者的真菌感染频率与日俱增。在这些感染中,念珠菌病是近年来最常见的威胁生命的全身性真菌感染之一。由于难以获得有效的抗真菌药物,这些感染的治疗具有挑战性。因此,现有药物治疗方案的不足,加上真菌不断变异产生耐药性,给未来的抗真菌治疗带来了潜在的问题。耐药性真菌的频繁增加,使人们开始关注使用来自天然的替代疗法。研究目的本研究旨在评估铜绿假单胞菌对白色念珠菌的抗真菌潜力。材料与方法:本研究于 2021-2022 年期间在巴基斯坦卡拉奇联邦乌尔都艺术、科学和技术大学进行。为了检测该抗真菌化合物,采用琼脂井扩散技术对临床分离的铜绿假单胞菌 HS 28(通过传统方法和 16S r RNA 分析鉴定)进行了筛选,以检测其对白色念珠菌的生物活性。研究还确定了其生长动力学以及不同物理和化学因素的影响。该化合物还通过硫酸铵沉淀法进行了部分纯化。研究结果该抗真菌化合物对白色念珠菌、光滑念珠菌、热带念珠菌、克鲁塞念珠菌等念珠菌菌种具有良好的抑制活性。这种化合物在较高的温度范围和不同的 pH 值下都能保持稳定。此外,在使用有机溶剂、氯仿蒸汽、金属盐和不同的表面活性剂/清洁剂处理时,它的生物活性也保持不变。生长动力学分析表明,抗真菌化合物的最大产量出现在生长的对数期,最高产量一直持续到对数后期。此外,在硫酸铵浓度为 60% 时,这种蛋白质的饱和度最高。结论总体结果表明,铜绿假单胞菌 HS 28 产生的化合物对白色念珠菌具有良好的抗真菌潜力。
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