Effect of Secondary Structure on Biological Activities of Antimicrobial Peptides

A 15-mer cationic α-helical antibacterial peptide was used as the framework to study the effect of peptide secondary structure on antimicrobial activities. We designed an α-helical peptide with higher helical propensity compared with the original peptide, a β-sheet peptide and a random coiled pe...

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Main Author: Mai Xuan, Thanh
Format: Article
Language:English
Published: ĐHQGHN 2015
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Online Access:http://repository.vnu.edu.vn/handle/VNU_123/938
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Institution: Vietnam National University, Hanoi
Language: English
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spelling oai:112.137.131.14:VNU_123-9382017-10-27T01:42:20Z Effect of Secondary Structure on Biological Activities of Antimicrobial Peptides Mai Xuan, Thanh Antimicrobial peptide secondary structure specificity mechanism of action A 15-mer cationic α-helical antibacterial peptide was used as the framework to study the effect of peptide secondary structure on antimicrobial activities. We designed an α-helical peptide with higher helical propensity compared with the original peptide, a β-sheet peptide and a random coiled peptide without changing the originalamino acid composition of the peptide sequence. Three truncated peptides were also designed. The secondary structures of the peptides were determined by circular dichroism spectra both in aqueous solution and in hydrophobic environment. The biological activities of the peptides were detected against three Gram-negative bacterial strains, three Gram-positive bacterial strains and human red blood cells. The results showed that the two helical peptides exhibited comparable antibacterial activities but their hemolytic potency (cytotoxicity) varied from extreme hemolysis to no hemolysis, which was positively correlated with their helical propensity. The β-sheet peptide partially lost both of the biological activities. The random coiled peptide with the lowest improvement in hemolytic activity showed comparable antibacterial activity against Gram-positive bacteria but weaker antibacterial activity against Gram-negative bacteria. Truncated peptides showed inevitable weaker antimicrobial activity compared to the parent peptide. Our results show that peptide secondary structure is strongly correlated with hemolytic activity and relatively less correlated with antimicrobial activity, which provides an insight into the mechanism of action of the antimicrobial peptide. 2015-08-14T02:27:57Z 2015-08-14T02:27:57Z 2015 Article 0866 - 86 12 http://repository.vnu.edu.vn/handle/VNU_123/938 en Vol. 31, No. 2 (2015) 44-53; application/pdf ĐHQGHN
institution Vietnam National University, Hanoi
building VNU Library & Information Center
country Vietnam
collection VNU Digital Repository
language English
topic Antimicrobial peptide
secondary structure
specificity
mechanism of action
spellingShingle Antimicrobial peptide
secondary structure
specificity
mechanism of action
Mai Xuan, Thanh
Effect of Secondary Structure on Biological Activities of Antimicrobial Peptides
description A 15-mer cationic α-helical antibacterial peptide was used as the framework to study the effect of peptide secondary structure on antimicrobial activities. We designed an α-helical peptide with higher helical propensity compared with the original peptide, a β-sheet peptide and a random coiled peptide without changing the originalamino acid composition of the peptide sequence. Three truncated peptides were also designed. The secondary structures of the peptides were determined by circular dichroism spectra both in aqueous solution and in hydrophobic environment. The biological activities of the peptides were detected against three Gram-negative bacterial strains, three Gram-positive bacterial strains and human red blood cells. The results showed that the two helical peptides exhibited comparable antibacterial activities but their hemolytic potency (cytotoxicity) varied from extreme hemolysis to no hemolysis, which was positively correlated with their helical propensity. The β-sheet peptide partially lost both of the biological activities. The random coiled peptide with the lowest improvement in hemolytic activity showed comparable antibacterial activity against Gram-positive bacteria but weaker antibacterial activity against Gram-negative bacteria. Truncated peptides showed inevitable weaker antimicrobial activity compared to the parent peptide. Our results show that peptide secondary structure is strongly correlated with hemolytic activity and relatively less correlated with antimicrobial activity, which provides an insight into the mechanism of action of the antimicrobial peptide.
format Article
author Mai Xuan, Thanh
author_facet Mai Xuan, Thanh
author_sort Mai Xuan, Thanh
title Effect of Secondary Structure on Biological Activities of Antimicrobial Peptides
title_short Effect of Secondary Structure on Biological Activities of Antimicrobial Peptides
title_full Effect of Secondary Structure on Biological Activities of Antimicrobial Peptides
title_fullStr Effect of Secondary Structure on Biological Activities of Antimicrobial Peptides
title_full_unstemmed Effect of Secondary Structure on Biological Activities of Antimicrobial Peptides
title_sort effect of secondary structure on biological activities of antimicrobial peptides
publisher ĐHQGHN
publishDate 2015
url http://repository.vnu.edu.vn/handle/VNU_123/938
_version_ 1680964434091048960