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Biology subjects

Truskewycz, A.

Publications and source records attributed to Truskewycz, A..

3 recordsLinked to original sources

Injectable Electrospun Hydrogel with Antimicrobial, pH Sensing Nanoparticles for Local Infection Control and Monitoring

Most antimicrobial drug candidates currently in development are derivatives of established antibiotic classes. In contrast, antimicrobial heteroatom-doped carbon quantum dot (COD) nanoparticles vastly differ from their chemical antibiotic counterparts and exhibit potent antibacterial activity and favourable biocompatibility, representing a promising alternative strategy, particularly for topical applications. Here, we report the incorporation of cobalt-doped carbon quantum dots (Co-CODs) into injectable, biocompatible hydrogels capable of both sensing pH and eliminating bacteria. Ultrasmall Co-CODs demonstrated broad-spectrum activity against gram-positive Methicillin-resistant Staphylococcus aureus (MRSA) and Gram-negative Pseudomonas aeruginosa (PAO1), mediated by membrane hyperpolarisation and reactive oxygen species (ROS) induced membrane damage. The particles showed negligible effect on primary fibroblast and endothelial cell viability at concentrations that were bactericidal to MRSA. Polymeric hydrogels were fabricated via electrospinning of chitosan, polyvinylpyrrolidone (PVP), and polyvinyl alcohol (PVA) polymer blends incorporating Co-COD and pH-responsive HPTS particles. This approach provided accurate measurement of environmental pH within the physiological range observed across healthy and chronic wounds. In vivo, the injectable hydrogels exhibited robust antimicrobial efficacy against MRSA without impairing wound closure relative to untreated controls, while also reducing inflammatory immune responses in infected tissues. Collectively, these findings demonstrate the potential of ultrasmall metal-doped CODs for infection control and their integration into 3D matrices as multifunctional theragnostic platforms. ToC (<60 words describe the main results)Ultrasmall antimicrobial carbon nanoparticles were incorporated into polymeric hydrogels containing a pH-responsive probe. This platform enabled detection across a physiologically relevant pH range of 5.0-6.5, spanning conditions associated with both healthy healing and chronically infected wounds. The hydrogel demonstrated strong antibacterial activity by generating damaging reactive oxygen species, and, in mice, effectively controlled infection while reducing pro-inflammatory immune responses. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=171 SRC="FIGDIR/small/736887v1_ufig1.gif" ALT="Figure 1"> View larger version (41K): org.highwire.dtl.DTLVardef@1a52b32org.highwire.dtl.DTLVardef@b6eed2org.highwire.dtl.DTLVardef@1f94143org.highwire.dtl.DTLVardef@12b9ff3_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOScheme 1:C_FLOATNO Antimicrobial nanoparticle-doped hydrogel glows in alkaline wound conditions which are representative of chronic infections. Once in the wound bed, the hydrogel removes all MRSA infection, reducing inflammatory macrophage (iNOS) and neutrophil (MPO) populations, and restores healthy wound collagen deposition. C_FIG

bioengineering↗

Ionic regulation of Gram-positive phage adsorption governs host range and improves phage isolation efficiency

Antimicrobial-resistant Staphylococcus aureus and S. epidermidis remain major causes of invasive infection, yet isolation of therapeutically robust lytic phages targeting Gram-positive pathogens is often constrained by adsorption barriers imposed by thick peptidoglycan cell walls. We demonstrate that these limitations are primarily methodological. By optimising the ionic microenvironment during isolation through divalent cation supplementation (10 mM CaCl2 and MgSO4), controlled enrichment, phage polyclonal mixtures, and limited lysozyme-assisted release, we recovered 28 genomically distinct lytic phages compared with six obtained using conventional protocols. Host-range profiling across 103 clinical isolates showed broad infectivity, with 51.7% of interactions supporting high-efficiency infection and multiple phages exhibiting cross-species activity. Ion-supplemented adaptive passaging restored and expanded lytic capacity against resistant strains within five rounds. These findings show that ionic regulation of adsorption reshapes Gram-positive phage-host dynamics and provide a scalable framework for precision targeting of resistant Staphylococcus infections.

microbiology↗

Acetic acid induces osmotic imbalances in drug-resistant bacteria synergistically enhancing cobalt-doped carbon quantum dots bactericidal efficiency

When pathogenic bacteria colonise a wound, they can create an alkaline ecological niche which selects for their survival by creating an inflammatory environment which restricts healthy wound healing to proceed. To aid healing, wound acidification has been exploited to disrupt this process and stimulate fibroblast growth, increase wound oxygen concentrations, minimise proteolytic activity and re-stimulate the host immune system. Within this study, we have developed unique cobalt doped carbon quantum dot nanoparticles which work together with mild acetic acid creating a potent synergistic antimicrobial therapy. The acidic environment alters the osmotic balance of microorganisms forcing them to swell and speed up the internalisation of the ultra-small particles. The particles hyperpolarise the bacterial membranes and generate damaging peroxidase species resulting in cellular lysis. In mice, cobalt doped carbon quantum dots remove MRSA infection while allowing wounds to heal at equivalent rates to uninfected wounds. This work demonstrates how synergistic antimicrobial treatment strategies can be successfully used to combat antimicrobial resistant infections.

microbiology↗