Search bioRxiv⌕ Search

Biology subjects

Wdowiak, M.

Publications and source records attributed to Wdowiak, M..

2 recordsLinked to original sources

Modulating backbone flexibility in hydroxamate siderophores for improved iron chelation and peptide nucleic acid (PNA) delivery into bacteria

Peptide nucleic acid (PNA) is a synthetic oligonucleotide analog with a peptide-based backbone that selectively binds with high affinity to natural nucleic acids. PNA is a valuable tool in antisense technology with potential antibacterial applications. However, PNA cannot penetrate bacterial cells alone. To address this, we explored iron chelators - siderophores - as PNA carriers. Bacteria acquire iron through siderophores, which are transported via specific TonB-dependent receptors in the bacterial envelope. Previously, we demonstrated that a synthetic hydroxamate-type siderophore (SL) exploited this transport system to deliver PNA into bacterial cells, achieving a gene-silencing effect. However, this transport was limited to an Escherichia coli mutant with continuous iron uptake, and was not observed in wild-type E. coli. In this study, we developed a new synthetic siderophore (SGLY) with glycine spacers between modified ornithine residues for enhanced flexibility and iron-binding. We also synthesized marine siderophore analogs (MGLY and MALA) inspired by natural moanachelins. Using circular dichroism spectroscopy, spectrophotometric assays, and molecular dynamics simulations, we confirmed iron binding. Growth recovery experiments showed SGLY recognition and internalization via the TonB-dependent transport system, likely using hydroxamate siderophore pathways. The MGLY and MALA siderophores showed lower growth promotion than SGLY, indicating less efficient internalization. Molecular docking revealed high affinity of SGLY for E. coli receptors involved in the uptake of hydroxamate siderophores. However, upon conjugation to PNA, all three siderophores effectively delivered PNA into E. coli cells. We confirmed PNA-mediated gene silencing using fluorescence measurements and confocal microscopy.

biochemistry↗

Phage-Nanoparticle Cocktails as a Novel Antibacterial Approach: Synergistic Effects of Bacteriophages and Green-Synthesized Silver Nanoparticles

Bacteriophages have emerged as promising natural antibacterial agents, offering a targeted approach to combating bacterial infections. While phage-antibiotic cocktails are widely explored to enhance antibacterial efficacy and prevent resistance, research on phage-nanoparticle combinations remains limited. However, antibiotic resistance continues to rise, necessitating alternative strategies. Combining bacteriophages with nanoparticles presents a novel approach that could enhance antibacterial potency while reducing the risk of resistance, yet studies in this area are still scarce. We explore the synergy between green tea extract-capped silver nanoparticles (G-TeaNPs) and bacteriophages in combating pathogenic bacteria (Staphylococcus aureus, Salmonella enterica). G-TeaNPs show no antiphage activity, ensuring compatibility in phage-NP formulations. These combinations significantly reduce bacterial counts in a short time (only 3 hours), e.g., S. aureus survival is around 30% after incubations with just 0.001 mg/mL of G-TeaNPs, with G-TeaNPs and phages alone result in around 80% and 70% survival, respectively. Cytotoxicity tests against eukaryotic 3T3 NIH fibroblast cells confirmed biocompatibility at effective concentrations. Additionally, we examine G-TeaNPs impact on the free-living protist Acanthamoeba castellanii. Both green tea extract and G-TeaNPs can reduce A. castellanii cell counts by 80%, but only at concentrations larger than 10 mg/mL. Microscopy revealed nanoparticle uptake by amoebae, causing intracellular accumulation and vacuolization, while green tea extract induced similar changes without uptake. Our findings highlight G-TeaNPs as safe, effective agents in phage-nanoparticle antibacterial formulations with dual antimicrobial and amoebicidal properties for therapeutic and environmental applications.

microbiology↗