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Published on: February 23, 2021
Deciphering Structure-Function Relationship Unveils Salt-Resistant Mode of Action of a Potent MRSA-Inhibiting
Chih-Chuan Kao1, Tzu-Lu Lin2, Chi-Jan Lin2
1Division of Infectious Disease, Department of Internal Medicine, Tungs' Taichung Metroharbor Hospital, Taichung, Taiwan.
Abstract:
Multidrug-resistant (MDR) bacteria lead to considerable morbidity and mortality, threatening public health worldwide. In particular, infections of methicillin-resistant Staphylococcus aureus (MRSA) in hospital and community settings are becoming a serious health problem. Antimicrobial peptides (AMPs) are considered novel therapeutic targets against MDR bacteria. However, salt sensitivity reduces the bactericidal potency of AMPs, posing a major obstacle for their development as antibiotics. Thus, the design and development of salt-insensitive peptides with potent antibacterial activity is imperative. Here, we employed biochemical and biophysical examinations coupled with molecular modeling to systematically investigate the structure-function relationship of a novel salt-insensitive AMP, RR14. The secondary structure of RR14 was characterized as an apparent α-helix, a structure that confers strong membrane-permeabilizing ability targeting bacterial-mimetic membranes. Additionally, the bioactive structure of RR14 was determined in complex with dodecylphosphocholine (DPC) micelles, where it possesses a central α-helical segment comprising residues R4 to K13 (R4-K13). RR14 was observed to orient itself into the DPC micelle with its N terminus and the α-helical segment (I5-R10) buried inside the micelles, which is essential for membrane permeabilization and bactericidal activity. Moreover, the specific and featured arrangement of positively charged residues of RR14 on its amphipathic helical conformation has great potential to render its strong salt resistance ability. Our study explored the structure-function relationship of RR14, explaining its possible mode of action against MRSA and other microbes. The insights obtained are of great applicability for the development of new antibacterial agents. IMPORTANCE Many antimicrobial peptides have been observed to become inactive in the presence of high salt concentrations. To further develop new and novel AMPs with potent bactericidal activity and salt insensitivity, understanding the structural basis for salt resistance is important. Here, we employed biochemical and biophysical examinations to systematically investigate the structure-function relationship of a novel salt-insensitive AMP, RR14. RR14 was observed to orient itself into DPC micelles with the N terminus and the α-helical segment (I5-R10) buried inside the micelles, which is essential for membrane permeabilization and bactericidal activity. Moreover, the specific and featured arrangement of cationic residues of RR14 on its amphipathic helical conformation renders its strong salt resistance ability. The insights obtained are of great applicability for developing new antibacterial agents.
Insights
This study introduces RR14, a novel antimicrobial peptide (AMP) effective against multidrug-resistant bacteria like MRSA. Its unique structure allows potent activity even in high salt conditions, overcoming a key limitation for developing new antibiotics.
Area of Science:
- Biochemistry
- Biophysics
- Molecular Biology
Background:
- Multidrug-resistant (MDR) bacteria, including methicillin-resistant Staphylococcus aureus (MRSA), pose a significant global health threat.
- Antimicrobial peptides (AMPs) show promise against MDR bacteria but often lose potency in high salt concentrations, hindering their therapeutic development.
Purpose of the Study:
- To investigate the structure-function relationship of a novel salt-insensitive antimicrobial peptide, RR14.
- To elucidate the molecular mechanisms underlying RR14's potent antibacterial activity and salt resistance.
Main Methods:
- Biochemical and biophysical examinations were employed to characterize RR14.
- Molecular modeling was utilized to understand its interaction with bacterial membranes.
- The bioactive structure of RR14 in complex with dodecylphosphocholine (DPC) micelles was determined.
Main Results:
- RR14 adopts an α-helical structure, demonstrating strong membrane-permeabilizing ability.
- The peptide orients within DPC micelles with its N terminus and α-helical segment (I5-R10) buried, crucial for its activity.
- The specific arrangement of cationic residues on its amphipathic helix confers significant salt resistance.
Conclusions:
- RR14 exhibits potent antibacterial activity against MRSA and other microbes, mediated by its unique structural features.
- The findings provide critical insights into the design of salt-insensitive AMPs for novel antibiotic development.
- Understanding RR14's structure-function relationship is key to overcoming challenges in AMP-based therapeutics.
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