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1.
Adv Healthc Mater ; 13(22): e2400492, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38924661

ABSTRACT

Blood-contacting medical devices routinely fail from the cascading effects of biofouling toward infection and thrombosis. Nitric oxide (NO) is an integral part of endothelial homeostasis, maintaining platelet quiescence and facilitating oxidative/nitrosative stress against pathogens. Recently, it is shown that the surface evolution of NO can mediate cell-surface interactions. However, this technique alone cannot prevent the biofouling inherent in device failure with dynamic blood-contacting applications. This work proposes an endothelium-mimicking surface design pairing controlled NO release with an inherently antifouling polyethylene glycol interface (NO+PEG). This simple, robust, and scalable platform develops surface-localized NO availability with surface hydration, leading to a significant reduction in protein adsorption as well as bacteria/platelet adhesion. Further in vivo thrombogenicity studies show a decrease in thrombus formation on NO+PEG interfaces, with preservation of circulating platelet and white blood cell counts, maintenance of activated clotting time, and reduced coagulation cascade activation. It is anticipated that this bio-inspired surface design will enable a facile alternative to existing surface technologies to address clinical manifestations of infection and thrombosis in dynamic blood-contacting environments.


Subject(s)
Nitric Oxide , Polyethylene Glycols , Thrombosis , Humans , Polyethylene Glycols/chemistry , Nitric Oxide/metabolism , Animals , Platelet Adhesiveness , Surface Properties , Blood Platelets/metabolism , Endothelium/metabolism , Biofouling/prevention & control , Bacterial Adhesion
2.
ACS Appl Mater Interfaces ; 16(19): 24248-24260, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38693878

ABSTRACT

Biomedical devices are vulnerable to infections and biofilm formation, leading to extended hospital stays, high expenditure, and increased mortality. Infections are clinically treated via the administration of systemic antibiotics, leading to the development of antibiotic resistance. A multimechanistic strategy is needed to design an effective biomaterial with broad-spectrum antibacterial potential. Recent approaches have investigated the fabrication of innately antimicrobial biomedical device surfaces in the hope of making the antibiotic treatment obsolete. Herein, we report a novel fabrication strategy combining antibacterial nitric oxide (NO) with an antibiofilm agent N-acetyl cysteine (NAC) on a polyvinyl chloride surface using polycationic polyethylenimine (PEI) as a linker. The designed biomaterial could release NO for at least 7 days with minimal NO donor leaching under physiological conditions. The proposed surface technology significantly reduced the viability of Gram-negative Escherichia coli (>97%) and Gram-positive Staphylococcus aureus (>99%) bacteria in both adhered and planktonic forms in a 24 h antibacterial assay. The composites also exhibited a significant reduction in biomass and extra polymeric substance accumulation in a dynamic environment over 72 h. Overall, these results indicate that the proposed combination of the NO donor with mucolytic NAC on a polymer surface efficiently resists microbial adhesion and can be used to prevent device-associated biofilm formation.


Subject(s)
Acetylcysteine , Anti-Bacterial Agents , Biofilms , Escherichia coli , Nitric Oxide , Staphylococcus aureus , Acetylcysteine/chemistry , Acetylcysteine/pharmacology , Nitric Oxide/chemistry , Nitric Oxide/metabolism , Nitric Oxide/pharmacology , Staphylococcus aureus/drug effects , Escherichia coli/drug effects , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Biofilms/drug effects , Polyethyleneimine/chemistry , Polyethyleneimine/pharmacology , Biocompatible Materials/chemistry , Biocompatible Materials/pharmacology , Microbial Sensitivity Tests , Polyvinyl Chloride/chemistry , Nitric Oxide Donors/chemistry , Nitric Oxide Donors/pharmacology
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