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Influence of Different Cell-Penetrating Peptides on the Antimicrobial Efficiency of PNAs in Streptococcus pyogenes
Gina Barkowsky1, Anna-Lena Lemster1, Roberto Pappesch1
1Institute of Medical Microbiology, Virology and Hygiene, University Medicine Rostock, 18057 Rostock, Germany.
Abstract:
Streptococcus pyogenes is an exclusively human pathogen causing a wide range of clinical manifestations from mild superficial infections to severe, life-threatening, invasive diseases. S. pyogenes is consistently susceptible toward penicillin, but therapeutic failure of penicillin treatment has been reported frequently. At the same time, streptococcal resistance to alternative antibiotics, e.g., macrolides, is common. To reduce the application of antibiotics for treatment of S. pyogenes infections, it is mandatory to develop novel therapeutic strategies. Antisense peptide nucleic acids (PNAs) are synthetic DNA derivatives widely applied for hybridization-based microbial diagnostics. They have a high potential as therapeutic agents, because PNA antisense targeting of essential genes was shown to reduce growth of several pathogenic bacterial species. Spontaneous cellular uptake of PNAs is restricted in eukaryotes and in bacteria. To overcome this problem, PNAs can be coupled to cell-penetrating peptides (CPPs) that support PNA translocation over the cell membrane. In bacteria, the efficiency of CPP-mediated PNA uptake is species specific. Previously, HIV-1 transactivator of transcription (HIV-1 TAT) peptide-coupled anti-gyrA PNA was shown to inhibit growth of S. pyogenes. Here, we investigate the effect of 18 CPP-coupled anti-gyrA PNAs on S. pyogenes growth and virulence. HIV-1 TAT, oligolysine (K8), and (RXR)4XB peptide-coupled anti-gyrA PNAs efficiently abolished bacterial growth in vitro. Consistently, treatment with these three CPP-PNAs increased survival of larvae in a Galleria mellonella infection model.
Insights
Novel peptide nucleic acids (PNAs) coupled with cell-penetrating peptides (CPPs) effectively inhibit Streptococcus pyogenes growth. This strategy offers a promising alternative to antibiotics for treating bacterial infections.
Area of Science:
- Microbiology
- Antimicrobial Research
- Drug Development
Background:
- Streptococcus pyogenes causes diverse infections, with increasing antibiotic resistance limiting treatment options.
- Penicillin therapy failures are common, and resistance to macrolides is widespread in S. pyogenes.
- Novel therapeutic strategies are crucial to combat S. pyogenes infections and reduce antibiotic reliance.
Purpose of the Study:
- To evaluate the efficacy of 18 different cell-penetrating peptide (CPP)-coupled antisense peptide nucleic acids (PNAs) against Streptococcus pyogenes.
- To identify specific CPP-PNA combinations that inhibit bacterial growth and virulence.
- To assess the therapeutic potential of CPP-PNAs in a relevant infection model.
Main Methods:
- Synthesized and coupled 18 distinct CPPs to anti-gyrA PNAs targeting S. pyogenes.
- Assessed the in vitro antibacterial activity of CPP-PNAs against S. pyogenes.
- Evaluated the in vivo efficacy of lead CPP-PNAs using a Galleria mellonella infection model.
Main Results:
- HIV-1 TAT, oligolysine (K8), and (RXR)4XB peptide-coupled anti-gyrA PNAs demonstrated potent inhibition of S. pyogenes growth in vitro.
- Treatment with these three CPP-PNAs significantly enhanced the survival rate of Galleria mellonella larvae.
- These findings highlight the species-specific efficiency of CPP-mediated PNA uptake in bacteria.
Conclusions:
- CPP-PNAs represent a viable alternative therapeutic strategy for S. pyogenes infections.
- Targeting essential genes with CPP-PNAs offers a promising approach to overcome antibiotic resistance.
- Further research into CPP-PNA conjugates could lead to new antimicrobial agents.
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