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Production of Recombinant Antimicrobial Polymeric Protein Beta Casein-E 50-52 and Its Antimicrobial Synergistic Effects Assessment with Thymol

机译:重组抗菌聚合物β-酪蛋白-E 50-52的制备及其与百里酚的协同作用

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摘要

Accelerating emergence of antimicrobial resistance among food pathogens and consumers’ increasing demands for preservative-free foods are two contemporary challenging aspects within the food industry. Antimicrobial packaging and the use of natural preservatives are promising solutions. In the present study, we used beta-casein—one of the primary self-assembly proteins in milk with a high polymeric film production capability—as a fusion partner for the recombinant expression of E 50-52 antimicrobial peptide in Escherichia coli. The pET21a-BCN-E 50-52 construct was transformed to E. coli BL21 (DE3), and protein expression was induced under optimized conditions. Purified protein obtained from nickel affinity chromatography was refolded under optimized dialysis circumstances and concentrated to 1600 µg/mL fusion protein by ultrafiltration. Antimicrobial activities of recombinant BCN-E 50-52 performed against Escherichia coli, Salmonella typhimurium, Listeria monocytogenes, Staphylococcus aureus, Aspergillus flavus, and Candida albicans. Subsequently, the synergistic effects of BCN-E 50-52 and thymol were assayed. Results of checkerboard tests showed strong synergistic activity between two compounds. Time–kill and growth kinetic studies indicated a sharp reduction of cell viability during the first period of exposure, and SEM (scanning electron microscope) results validated the severe destructive effects of BCN E 50-52 and thymol in combination on bacterial cells.
机译:食品病原体中抗菌药耐药性的不断出现以及消费者对不含防腐剂食品的需求不断增加是食品工业中两个当代的挑战性方面。抗菌包装和使用天然防腐剂是有前途的解决方案。在本研究中,我们使用β-酪蛋白(一种牛奶中具有高聚合膜生产能力的主要自组装蛋白之一)作为E 50-52抗菌肽在大肠杆菌中重组表达的融合伴侣。将pET21a-BCN-E 50-52构建体转化到大肠杆菌BL21(DE3),并在优化条件下诱导蛋白质表达。在优化的透析条件下,将从镍亲和色谱中获得的纯化蛋白重新折叠,并通过超滤浓缩至1600 µg / mL融合蛋白。重组BCN-E 50-52对大肠杆菌,鼠伤寒沙门氏菌,单核细胞增生李斯特菌,金黄色葡萄球菌,黄曲霉和白色念珠菌的抗菌活性。随后,测定了BCN-E 50-52和百里酚的协同作用。棋盘测试的结果表明两种化合物之间具有很强的协同活性。时间杀灭和生长动力学研究表明,在暴露的第一阶段细胞活力急剧下降,而SEM(扫描电子显微镜)结果证实了BCN E 50-52和百里酚的组合对细菌细胞具有严重的破坏作用。

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