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Updated: Feb 16, 2026

A Novel Approach for the Administration of Medications and Fluids in Emergency Scenarios and Settings
Published on: November 9, 2016
Nitric oxide releasing vascular catheters for eradicating bacterial infection
Jitendra Pant1, Marcus J Goudie1, Sarah M Chaji1
1School of Chemical, Materials and Biomedical Engineering, College of Engineering, University of Georgia, Athens, Georgia.
Insights
New catheters incorporating a nitric oxide donor (SNAP) effectively prevent bacterial adhesion on surfaces coated with blood proteins. These antimicrobial and non-thrombogenic devices show high efficacy and no cytotoxicity, reducing infection risks.
Area of Science:
- Biomaterials Science
- Infectious Disease Research
- Medical Device Engineering
Background:
- Plasma protein adsorption on medical implants promotes bacterial adhesion, leading to catheter-related blood infections (CRBIs).
- CRBIs cause significant mortality and healthcare costs, necessitating advanced antimicrobial and non-thrombogenic catheter designs.
- Nitric oxide (NO) possesses antithrombotic and antibacterial properties without inducing drug resistance or cytotoxicity.
Purpose of the Study:
- To develop and evaluate novel Elasteon-E2As catheters incorporating a nitric oxide (NO) donor, S-nitroso-N-acetyl-penicillamine (SNAP).
- To assess the antithrombotic and antimicrobial efficacy of E2As-SNAP catheters in the presence of blood proteins.
- To determine the biocompatibility of the developed catheters through cytotoxicity assays.
Main Methods:
- Fabrication of Elasteon-E2As catheters with incorporated SNAP.
- Coating catheters with fibrinogen to simulate a blood-contacting surface.
- In vitro evaluation of contact angle, NO release kinetics, bacterial inhibition, and cytotoxicity.
- Standard cytotoxicity assay using mouse fibroblast cells.
Main Results:
- The E2As-SNAP catheters exhibited hydrophobic properties and released NO within the physiological range.
- Over 99% bacterial viability was inhibited on fibrinogen-coated catheters within 24 hours.
- No cytotoxic response was observed from the E2As-SNAP catheter leachate.
Conclusions:
- E2As-SNAP catheters demonstrate significant potential for inhibiting bacterial adhesion in the presence of blood proteins.
- The developed catheters are non-thrombogenic and antimicrobial without exhibiting cytotoxicity.
- This approach is applicable to other blood-contacting medical devices to reduce infection risks.
Abstract:
The interaction of blood proteins with an implant surface is not only a fundamental phenomenon but is also key to several important medical complications. Plasma proteins binding on the surface of intravascular catheters can promote bacterial adhesion leading to the risk of local and systemic complications such as catheter-related blood infections (CRBIs). The incidences of CRBIs in the United States amount to more than 250,000 cases/year with an attributable mortality of up to 35% and an annual healthcare expenditure of $2.3 billion approximately. This demands the development of truly nonthrombogenic and antimicrobial catheters. In the present study, catheters were fabricated by incorporating a nitric oxide (NO) donor molecule, S-nitroso-N-acetyl-penicillamine (SNAP) in a hydrophobic medical grade polymer, Elasteon-E2As. NO offers antithrombotic and antibacterial attributes without promoting drug resistance and cytotoxicity. E2As-SNAP catheters were first coated with fibrinogen, a blood plasma protein plays a key role in clot formation and eventual bacterial adhesion to the implant surface. The suitability of the catheters for biomedical applications was tested in vitro for contact angle, NO release kinetics, inhibition of bacteria, and absence of cytotoxicity toward mammalian cells. The highly hydrophobic catheters released NO in the physiological range that inhibited >99% bacterial viability on fibrinogen-coated catheters in a 24 h study. No toxic response of E2As-SNAP catheters leachate was observed using a standard cytotoxicity assay with mouse fibroblast cells. Overall, the results showed that the E2As-SNAP catheters can inhibit viable bacteria even in the presence of blood proteins without causing a cytotoxic response. The fundamentals of this study are applicable to other blood-contacting medical devices as well. © 2017 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater, 106B: 2849-2857, 2018.
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