| Literature DB >> 26688811 |
Wen-Ping Liu1, Ya-Hui Chen2, Xin Ming3, Yi Kong2.
Abstract
Antibacterial and antifungal peptides have increasingly been used to combat the antibiotic-resistant microbes in recent years. KW-13, a novel cationic α-helical antibacterial peptide consisting of 13 amino acid residues, was designed and chemically synthesized. The peptide has a net charge of +6 with a total hydrophobic ratio of 38%. The antibacterial experiments revealed that KW-13 strongly inhibited the growth of human pathogenic bacteria with minimal inhibitory concentrations of 4 and 16 μg/mL for Staphylococcus epidermidis and Staphylococcus aureus, respectively, while the hemolytic assay showed that this peptide did not destroy human red blood cells in vitro. Scanning electron microscopy imaging of Escherichia coli confirmed that KW-13 can damage the membrane of bacterial cells. Thus, this peptide could be a potential candidate for the treatment of infectious diseases.Entities:
Mesh:
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Year: 2015 PMID: 26688811 PMCID: PMC4673326 DOI: 10.1155/2015/578764
Source DB: PubMed Journal: Biomed Res Int Impact factor: 3.411
The sequences of six designed peptides.
| Name | Sequence | Design |
|---|---|---|
| KWKK-13 | KWKKPKLLKKLLK | N-terminal domain contains three cationic lysine residues and C-terminal is a standard |
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| KW-13 | KWKYPKLLKKLLK | N-terminal domain contains two cationic lysine residues and C-terminal is a standard |
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| RFFR-15 | RRWWRFPRFFRRFFR-NH2 | N-terminal domain contains three cationic arginines and C-terminal is a standard |
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| RFPP-18 | RRWWRFPPPRFPPRFPPP-NH2 | N-terminal domain contains three cationic arginines and C-terminal is a standard |
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| KPV-13 | KWKLFKKIWGKPV-NH2 | Hybrid peptide based on the AMPs in the database. The N-terminal is from cecropin A1 and C-terminal is from MSH. |
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| KPV-8 | KFRWGKPV-NH2 | Hybrid peptide based on the AMPs in the database. The N-terminal is from cecropin A1 and C-terminal is from MSH. |
Bacterial and fungi strains used in the current study.
| Strain | Culture condition (°C) | Medium |
|---|---|---|
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| 37 | Luria-Bertani |
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| 37 | Luria-Bertani |
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| 37 | Luria-Bertani |
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| 37 | Luria-Bertani |
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| 37 | Luria-Bertani |
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| 30 | Martin Broth, Modified |
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| 30 | Martin Broth, Modified |
Luria-Bertani (LB): peptone 10 g/L, yeast extract 5 g/L, and NaCl 10 g/L, pH 7.4 after sterilization; Martin Broth, Modified: peptone 10 g/L, yeast extract 2 g/L, glucose 20 g/L, dipotassium hydrogen phosphate 1 g/L, and MgSO4 0.5 g/L, pH 6.4 ± 0.2 after sterilization.
Peptides with homology to KW-13.
| Peptidea | Source | Homology |
|---|---|---|
| KW-13 | Synthetic, | |
| AP00143 | Synthetic, | 61.53% |
| AP00506 | Synthesis | 50% |
| AP00501 | Synthesis | 50% |
| AP00142 | Synthetic, database-aided design using freq. occurring residues | 50% |
| AP00859 | Rana temporaria | 46.15% |
aThe homologue peptides are identified according to APD ID.
Figure 1ClustalW alignment of the KW-13 with the most similar AMPs in the APD database.
Physicochemical properties of KW-13 peptide.
| Primary structure | KWKYPKLLKKLLK |
|---|---|
| Hydrophobic amino acid | I: 0, V: 0, L: 0, F: 0, C: 0, A: 0, W: 1 |
| MW (Da) | 1686.02 |
| Cationicity | 6 |
| Total hydrophobic ratio | 38% |
| Protein-binding potential (kcal/mol) | 0.87 |
Figure 2The secondary structure model for KW-13. The color codes are red for the regular α-helix and white for random coil.
Antimicrobial activities (MIC) of peptide against bacteria and fungi.
| Strain | MIC ( | |||||
|---|---|---|---|---|---|---|
| KW-13 | RFFR-15 | RFPP-18 | KWKK-13 | KPV-13 | KPV-8 | |
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| 16 | 64 | >512 | >512 | >512 | >512 |
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| 4 | 128 | 512 | >512 | 32 | >512 |
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| 64 | 256 | 128 | 256 | 512 | >512 |
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| 128 | >512 | >512 | >512 | >512 | >512 |
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| 128 | >512 | 256 | >512 | >512 | >512 |
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| ND | ND | ND | ND | ND | ND |
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| 256 | >512 | >512 | >512 | >512 | >512 |
MIC: minimal inhibitory concentration. These concentrations represent mean values of three independent experiments performed in duplicate. ND denotes no inhibition was observed even at a peptide concentration of 512 μg/mL.
Figure 3Scanning electron micrographs of E. coli treated with KW-13. E. coli in mid-logarithmic growth was incubated with antibacterial peptide KW-13 for 2.5 h. (a) Untreated E. coli showing a normal intact cell surface. Scale bar is 3 μm. (b) Treated with 256 μg/mL KW-13 for 2.5 h, the E. coli cell membranes were disrupted. Scale bar is 3 μm. (c) The amplification of (b) in different visual field. Scale bar is 1 μm.