Enhanced Silkworm Cecropin B Antimicrobial Activity against Pseudomonas aeruginosa from Single Amino Acid Variation

抗菌剂 铜绿假单胞菌 抗菌肽 生物 微生物学 天蚕素 基因亚型 生物化学 细菌 氨基酸 基因 遗传学
作者
Ottavia Romoli,Shruti Mukherjee,Sk Abdul Mohid,Arkajyoti Dutta,Aurora Montali,Elisa Franzolin,Daniel J. Brady,Francesca Zito,Elisabetta Bergantino,Chiara Rampazzo,Gianluca Tettamanti,Anirban Bhunia,Federica Sandrelli
出处
期刊:ACS Infectious Diseases [American Chemical Society]
卷期号:5 (7): 1200-1213 被引量:36
标识
DOI:10.1021/acsinfecdis.9b00042
摘要

Pseudomonas aeruginosa is an opportunistic bacterial pathogen causing severe infections in hospitalized and immunosuppressed patients, particularly individuals affected by cystic fibrosis. Several clinically isolated P. aeruginosa strains were found to be resistant to three or more antimicrobial classes indicating the importance of identifying new antimicrobials active against this pathogen. Here, we characterized the antimicrobial activity and the action mechanisms against P. aeruginosa of two natural isoforms of the antimicrobial peptide cecropin B, both isolated from the silkworm Bombyx mori. These cecropin B isoforms differ in a single amino acid substitution within the active portion of the peptide, so that the glutamic acid of the E53 CecB variant is replaced by a glutamine in the Q53 CecB isoform. Both peptides showed a high antimicrobial and membranolytic activity against P. aeruginosa, with Q53 CecB displaying greater activity compared with the E53 CecB isoform. Biophysical analyses, live-cell NMR, and molecular-dynamic-simulation studies indicated that both peptides might act as membrane-interacting elements, which can disrupt outer-membrane organization, facilitating their translocation toward the inner membrane of the bacterial cell. Our data also suggest that the amino acid variation of the Q53 CecB isoform represents a critical factor in stabilizing the hydrophobic segment that interacts with the bacterial membrane, determining the highest antimicrobial activity of the whole peptide. Its high stability to pH and temperature variations, tolerance to high salt concentrations, and low toxicity against human cells make Q53 CecB a promising candidate in the development of CecB-derived compounds against P. aeruginosa.
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