Modulation of Structure and Antibacterial and Hemolytic Activity by Ring Size in Cyclic Gramicidin S Analogs
Модуляция структуры, антибактериальной и гемолитической активности изменением размера кольца в циклических аналогах грамицидина S
1996-10-01
SCID: 54.1/e4cmsxyj
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antibacterial and hemolytic activitybeta-sheet secondary structurecyclic gramicidin S analogslipopolysaccharide bindingring size
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Abstract (AI)
We have evaluated the effect of ring size of gramicidin S analogs on secondary structure, lipid binding, lipid disruption, antibacterial and hemolytic activity. Cyclic analogs with ring sizes ranging from 4 to 14 residues were designed to maintain the amphipathic character as found in gramicidin S and synthesized by solid phase peptide synthesis. The secondary structure of these peptides showed a definite periodicity in beta-sheet content, with rings containing 6, 10, and 14 residues exhibiting beta-sheet structure, and rings containing 8 or 12 residues being largely disordered. Peptides containing 4 or 6 residues did not bind lipopolysaccharide, whereas longer peptides showed a trend of increasing binding affinity for lipopolysaccharide with increasing length. Destabilization of Escherichia coli outer membranes was only observed in peptides containing 10 or more residues. Peptides containing fewer than 10 residues were completely inactive and exhibited no hemolytic activity. The 10-residue peptide showed an activity profile similar to that of gramicidin S itself, with activity against Gram-positive and Gram-negative microorganisms as well as yeast, but also showed high hemolytic activity. Differential activities were obtained by increasing the size of the ring to either 12 or 14 residues. The 14-residue peptide showed no antibiotic activity but exhibited increased hemolytic activity. The 12-residue peptide lost activity against Gram-positive bacteria, retained activity against Gram-negative microorganisms and yeast, but displayed decreased hemolytic activity. Biological activities in the 12-residue peptide were optimized by a series of substitutions in residues comprising both hydrophobic and basic sites resulting in a peptide that exhibited activities comparable with gramicidin S against Gram-negative microorganisms and yeast but with substantially lower hemolytic activity. Compared with gramicidin S, the best analog showed a 10-fold improvement in antibiotic specificity for Gram-negative microorganisms and a 7-fold improvement in specificity for yeast over human erythrocytes as determined by a therapeutic index. These results indicate that it is possible to modulate structure and activities of cyclic gramicidin S analogs by varying ring sizes and further show the potential for developing clinically useful antibiotics based on gramicidin S.
Key Findings
1
A 12-residue analog, after targeted hydrophobic and basic residue substitutions, achieved comparable activity to gramicidin S against Gram-negative bacteria and yeast with substantially lower hemolysis, yielding a 10-fold improvement in antibiotic specificity for Gram-negatives and 7-fold improvement for yeast versus human erythrocytes by therapeutic index.
2
Beta-sheet content of cyclic gramicidin S analogs shows periodicity with ring size: 6, 10, and 14 residues form beta-sheet; 8 and 12 are largely disordered.
3
Outer membrane destabilization of Escherichia coli is observed only for peptides with ring sizes of 10 residues or larger; peptides under 10 residues are inactive and non-hemolytic.
4
Peptides of 4 or 6 residues do not bind lipopolysaccharide; binding affinity for lipopolysaccharide increases with peptide length above 6 residues.
5
Ring-size variation modulates structure and biological activities, indicating potential to develop clinically useful gramicidin S–based antibiotics.
6
The 10-residue analog mirrors gramicidin S activity against Gram-positive, Gram-negative bacteria and yeast but has high hemolytic activity.
Research Object
Cyclic gramicidin S analogs with varying ring sizes (4–14 residues)
Research Subject
How ring size modulates secondary structure, lipid binding/disruption, antibacterial activity (against Gram-positive, Gram-negative, yeast), and hemolytic activity (therapeutic index/specifity)
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1996-10-01
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