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Published on: May 22, 2018
The broad-spectrum antibiofilm activity of amyloid-forming hexapeptides
Dongru Chen1, Jing Li2, Ting Pan2
1Guangdong Provincial Key Laboratory of Stomatology, Department of Orthodontics, Hospital of Stomatology, Guanghua School of Stomatology, Sun Yat-sen University, Guangzhou, Guangdong, China.
Abstract:
Evidence suggests that short amyloid-forming peptides derived from bacterial proteomes have functional roles; however, the reported activities are diverse and the underlying mechanisms remain unclear. In this study, we simulated short amyloid-forming peptides from the amyloid-forming truncated protein C123 of Streptococcus mutans (S. mutans), studied their biological functions in microbial proliferation and biofilm formation, and further investigated the underlying mechanism. Fourteen hexapeptides were simulated, 13 of which were successfully synthesized. We found that the amyloid-forming hexapeptides (AFhPs) displayed efficient broad-spectrum antibiofilm activity against the Gram-positive bacteria S. mutans, Streptococcus sanguis and Staphylococcus aureus, Gram-negative bacteria Escherichia coli and fungus Candida albicans, by aggregating into rigid amyloid fibres agglutinating microbes, whereas the non-amyloid-forming hexapeptides (non-AFhPs) did not. The AFhPs did not kill microbes and showed little or no cytotoxicity. Furthermore, a set of AFhPs displayed broad-spectrum antibiofilm activity, regardless of its source. The microbial cell wall carbohydrates, peptidoglycan (PGN), lipoteichoic acid (LTA), glucan and zymosan A, mediated AFhP binding and triggered significant AFhP fibrillation. Although amyloid fibres agglutinated lipid membrane model - large unilamellar vesicles (LUVs) - and LUVs facilitated AFhP fibrillation, the roles of lipid membranes in AFhP antibiofilm activities remain to be elucidated. We highlight the potential use of AFhPs as novel antibiofilm agents.
Insights
Short amyloid-forming hexapeptides (AFhPs) effectively prevent microbial biofilm formation across diverse species by aggregating microbes. These novel agents show broad-spectrum antibiofilm activity without killing microbes, offering potential for new anti-biofilm strategies.
Area of Science:
- Microbiology
- Biochemistry
- Materials Science
Background:
- Functional roles of short amyloid-forming peptides from bacterial proteomes are suggested but poorly understood.
- Mechanisms underlying the diverse activities of amyloid-forming peptides require elucidation.
Purpose of the Study:
- To simulate and synthesize short amyloid-forming hexapeptides (AFhPs) from Streptococcus mutans.
- To investigate the biological functions of AFhPs in microbial proliferation and biofilm formation.
- To elucidate the underlying mechanisms of AFhP activity.
Main Methods:
- Simulation and synthesis of fourteen hexapeptides derived from a truncated S. mutans protein.
- Assessment of broad-spectrum antibiofilm activity against various bacteria and fungi.
- Investigation of AFhP interaction with microbial cell wall components and lipid membranes.
Main Results:
- Thirteen synthesized hexapeptides, identified as amyloid-forming hexapeptides (AFhPs), demonstrated potent broad-spectrum antibiofilm activity.
- AFhPs aggregated microbes via rigid amyloid fibers, effectively inhibiting biofilm formation without microbial killing or significant cytotoxicity.
- Microbial cell wall carbohydrates (peptidoglycan, lipoteichoic acid, glucan, zymosan A) mediated AFhP binding and fibrillation.
Conclusions:
- Amyloid-forming hexapeptides (AFhPs) exhibit significant broad-spectrum antibiofilm properties by agglutinating microbes.
- AFhPs represent a promising class of novel antibiofilm agents with minimal cytotoxicity.
- Further research is needed to fully understand the role of lipid membranes in AFhP-mediated antibiofilm activities.
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