Vegard Borøy’s research while affiliated with UiT The Arctic University of Norway and other places

What is this page?


This page lists works of an author who doesn't have a ResearchGate profile or hasn't added the works to their profile yet. It is automatically generated from public (personal) data to further our legitimate goal of comprehensive and accurate scientific recordkeeping. If you are this author and want this page removed, please let us know.

Publications (1)


Figure 1. Schematic representation of the fabrication of A) Blank DNA micelles (ssDNA micelles) and B) Polymyxin B loaded DNA micelles (PMB micelles).
Figure 2. Characterization of different formulations using DLS. Size and PDI of (A) ssDNA micelles in water or micelle buffer; (B) free PMB; (C) PMB micelles in different buffers.
Figure 3. Characterization of different formulations using DLS, agarose gel electrophoresis and TEM. (A) Size and PDI of PMB micelles at different drug:oligonucleotide ratios (constant DNA concentration and increasing drug amounts); (B) Zeta potential of PMB micelles at different drug:oligonucleotide ratios (constant DNA concentration and increasing drug amounts); (C) Agarose gel electrophoresis of different formulations (Lane 1 -ladder; Lanes 2-5 -PMB micelles with drug concentrations of 128, 64, 32, 16 µg/mL, respectively; Lane 6 and 7 -ssDNA micelles in water and micelle buffer, respectively; Lane 8 -unmodified ssDNA); (D) Absorbance spectra of cholesterol-modified ssDNA, unmodified ssDNA without PMB or unmodified ssDNA and cholesterol-modified ssDNA with PMB and free PMB (E) Fluorescence spectra of dansyl-labelled PMB or in the presence of cholesterol-modified ssDNA (PMB micelles) or unmodified ssDNA, as well as unmodified ssDNA and cholesterol-modified ssDNA without PMB (ssDNA micelles); E) TEM images of PMB micelles at 64 µg/mL.
Figure 4. Stability of ssDNA micelles and PMB micelles upon dilution with water, showcasing the enhanced stability upon cation depletion. (A) Schematic representation of interactions in the (i) ssDNA micelles and (ii) PMB loaded DNA micelles (PMB micelles). Size and PDI changes upon serial dilution of (B) ssDNA micelles and (C) PMB micelles.
Figure 5. Drug release profile of PMB micelles (64 µg/mL) at different pH and antibacterial effect of PMB micelles at different drug concentrations. (A) Drug release profile of PMB micelles at neutral and acidic pH (pH 7.0 and pH 4.5); (B) CFU/mL reduction of P. aeruginosa over 24h after exposure to different PMB micelles and free PMB (64 µg/mL).

+3

Polymyxin B Stabilized DNA Micelles for Sustained Antibacterial and Antibiofilm Activity against P. aeruginosa
  • Article
  • Full-text available

July 2023

·

149 Reads

·

7 Citations

Journal of Materials Chemistry B

·

Vegard Borøy

·

·

[...]

·

Nucleic acid-based materials showcase an increasing potential for antimicrobial drug delivery. Although numerous reports on drug-loaded DNA nanoparticles outline their pivotal antibacterial activities, their potential as drug delivery systems against bacterial biofilms awaits further studies. Among different oligonucleotide structures, micellar nanocarriers derived from amphiphilic DNA strands are of particular interest due to their spontaneous self-assembly and high biocompatibility. However, their clinical use is hampered by structural instability upon cation depletion. In this work, we used a cationic amphiphilic antibiotic (polymyxin B) to stabilize DNA micelles destined to penetrate P. aeruginosa biofilms and exhibit antibacterial/antibiofilm properties. Our study highlights how the strong affinity of this antibiotic enhances the stability of the micelles and confirms that antibacterial activity of the novel micelles remains intact. Additionally, we show that PMB micelles can penetrate P. aeruginosa biofilms and impact their metabolic activity. Finally, PMB micelles were highly safe and biocompatible, highlighting their possible application against P. aeruginosa biofilm-colonized skin wounds.

Download

Citations (1)


... Other studies have advanced our understanding of biofilm-NP dynamics [31][32][33][34][35], however, a significant gap in research remains, especially regarding the use of DNA-based nanostructures. Our previous work has demonstrated the biofilm penetration capabilities of polymyxin-B loaded DNA micelles [36], yet this promising area remains largely under-researched. This study seeks to fill this gap by exploring the interaction, diffusion and retention of a range of drug-free DNA NPs distinct in their physicochemical properties with or within P. aeruginosa biofilms. ...

Reference:

Decoding interactions between biofilms and DNA nanoparticles
Polymyxin B Stabilized DNA Micelles for Sustained Antibacterial and Antibiofilm Activity against P. aeruginosa

Journal of Materials Chemistry B