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Published on: September 21, 2017
Antimicrobial Activity of Peptide-Coupled Antisense Peptide Nucleic Acids in Streptococcus pneumoniae
Gina Barkowsky1, Corina Abt1, Irina Pöhner1
1Institute of Medical Microbiology, Virology and Hygiene, University Medicine Rostock, Rostock, Germany.
Insights
Antisense peptide nucleic acids (PNAs) coupled with cell-penetrating peptides (CPPs) show promise for treating drug-resistant Streptococcus pneumoniae infections. This study demonstrated their effectiveness in vitro and in vivo, offering a potential new therapeutic strategy.
Area of Science:
- Antimicrobial drug development
- Molecular biology
- Infectious disease research
Background:
- Streptococcus pneumoniae causes pneumonia and other infections, with rising antibiotic resistance and vaccine-serotype replacement.
- Antisense peptide nucleic acids (PNAs) show antibacterial potential but require enhanced cellular uptake.
- Cell-penetrating peptides (CPPs) can facilitate PNA delivery into bacterial cells.
Purpose of the Study:
- To investigate the efficacy of different CPPs in delivering antisense PNAs into Streptococcus pneumoniae.
- To evaluate the antibacterial activity of CPP-coupled antisense PNAs against S. pneumoniae in vitro and in vivo.
Main Methods:
- Coupling of antisense PNAs targeting gyrA and rpoB genes with HIV-1 TAT and (RXR)4XB CPPs.
- In vitro assessment of bacterial viability and target gene transcription levels.
- In vivo efficacy testing using a Galleria mellonella infection model.
Main Results:
- HIV-1 TAT- and (RXR)4XB-coupled antisense PNAs significantly reduced S. pneumoniae viability in vitro.
- Anti-gyrA PNAs exhibited higher antimicrobial activity than anti-rpoB PNAs, with reduced target gene transcription confirmed.
- Treatment with CPP-antisense PNAs increased the survival rate of infected Galleria mellonella larvae.
Conclusions:
- CPP-coupled antisense PNAs demonstrate potent antibacterial activity against Streptococcus pneumoniae.
- These findings provide a proof of principle for developing novel antisense-based antimicrobials.
- This approach offers a potential therapeutic avenue for combating antibiotic-resistant S. pneumoniae infections.
Abstract:
Streptococcus pneumoniae is the most common cause of community-acquired pneumonia and is responsible for multiple other infectious diseases, such as meningitis and otitis media, in children. Resistance to penicillins, macrolides, and fluoroquinolones is increasing and, since the introduction of pneumococcal conjugate vaccines (PCVs), vaccine serotypes have been replaced by non-vaccine serotypes. Antisense peptide nucleic acids (PNAs) have been shown to reduce the growth of several pathogenic bacteria in various infection models. PNAs are frequently coupled to cell-penetrating peptides (CPPs) to improve spontaneous cellular PNA uptake. In this study, different CPPs were investigated for their capability to support translocation of antisense PNAs into S. pneumoniae. HIV-1 TAT- and (RXR)4XB-coupled antisense PNAs efficiently reduced the viability of S. pneumoniae strains TIGR4 and D39 in vitro. Two essential genes, gyrA and rpoB, were used as targets for antisense PNAs. Overall, the antimicrobial activity of anti-gyrA PNAs was higher than that of anti-rpoB PNAs. Target gene transcription levels in S. pneumoniae were reduced following antisense PNA treatment. The effect of HIV-1 TAT- and (RXR)4XB-anti-gyrA PNAs on pneumococcal survival was also studied in vivo using an insect infection model. Treatment increased the survival of infected Galleria mellonella larvae. Our results represent a proof of principle and may provide a basis for the development of efficient antisense molecules for treatment of S. pneumoniae infections. IMPORTANCE Streptococcus pneumoniae is the most common cause of community-acquired pneumonia and is responsible for the deaths of up to 2 million children each year. Antibiotic resistance and strain replacement by non-vaccine serotypes are growing problems. For this reason, S. pneumoniae has been added to the WHO "global priority list" of antibiotic-resistant bacteria for which novel antimicrobials are most urgently needed. In this study, we investigated whether CPP-coupled antisense PNAs show antibacterial activity in S. pneumoniae. We demonstrated that HIV-1 TAT- and (RXR)4XB-coupled antisense PNAs were able to kill S. pneumoniae in vitro. The specificity of the antimicrobial effect was verified by reduced target gene transcription levels in S. pneumoniae. Moreover, CPP-antisense PNA treatment increased the survival rate of infected Galleria mellonella larvae in vivo. Based on these results, we believe that efficient antisense PNAs can be developed for the treatment of S. pneumoniae infections.
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