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Updated: Jun 18, 2025

High-throughput Identification of Bacteria Repellent Polymers for Medical Devices
Published on: November 5, 2016
Effect of multifunctional cationic polymer coatings on mitigation of broad microbial pathogens
Jianliang Gong1, Chun-Yin Or1, Eric Tung-Po Sze2
1C-POLAR Technologies Inc., West Vancouver, British Columbia, Canada.
Abstract:
Infection control measures to prevent viral and bacterial infection spread are critical to maintaining a healthy environment. Pathogens such as viruses and pyogenic bacteria can cause infectious complications. Viruses such as SARS-CoV-2 are known to spread through the aerosol route and on fomite surfaces, lasting for a prolonged time in the environment. Developing technologies to mitigate the spread of pathogens through airborne routes and on surfaces is critical, especially for patients at high risk for infectious complications. Multifunctional coatings with a broad capacity to bind pathogens that result in inactivation can disrupt infectious spread through aerosol and inanimate surface spread. This study uses C-POLAR, a proprietary cationic, polyamine, organic polymer with a charged, dielectric property coated onto air filtration material and textiles. Using both SARS-CoV-2 live viral particles and bovine coronavirus models, C-POLAR-treated material shows a dramatic 2-log reduction in circulating viral inoculum. This reduction is consistent in a static room model, indicating simple airflow through a static C-POLAR hanging can capture significant airborne particles. Finally, Gram-positive and Gram-negative bacteria are applied to C-POLAR textiles using a viability indicator to demonstrate eradication on fomite surfaces. These data suggest that a cationic polymer surface can capture and eradicate human pathogens, potentially interrupting the infectious spread for a more resilient environment.
Importance:
Infection control is critical for maintaining a healthy home, work, and hospital environment. We test a cationic polymer capable of capturing and eradicating viral and bacterial pathogens by applying the polymer to the air filtration material and textiles. The data suggest that the simple addition of cationic material can result in the improvement of an infectious resilient environment against viral and bacterial pathogens.
Insights
A new cationic polymer coating, C-POLAR, effectively captures and eradicates airborne viruses like SARS-CoV-2 and bacteria on surfaces. This innovation enhances infection control, creating healthier environments by reducing pathogen spread.
Area of Science:
- Materials Science
- Infectious Disease Control
- Polymer Chemistry
Background:
- Maintaining healthy environments requires effective infection control against viral and bacterial pathogens.
- Pathogens like SARS-CoV-2 spread via aerosols and fomites, posing risks, especially to vulnerable populations.
- Novel technologies are needed to mitigate pathogen transmission through air and surfaces.
Purpose of the Study:
- To evaluate a cationic polymer coating (C-POLAR) for capturing and eradicating viral and bacterial pathogens.
- To assess the efficacy of C-POLAR applied to air filtration materials and textiles for infection control.
- To determine if C-POLAR can improve environmental resilience against infectious agents.
Main Methods:
- C-POLAR, a cationic polyamine organic polymer, was coated onto air filtration material and textiles.
- Live SARS-CoV-2 and bovine coronavirus models were used to test viral capture and inactivation.
- Gram-positive and Gram-negative bacteria were applied to C-POLAR textiles to assess eradication.
Main Results:
- C-POLAR-treated materials demonstrated a significant 2-log reduction in circulating viral particles.
- Airflow through C-POLAR-coated material effectively captured airborne viral particles in a static room model.
- C-POLAR textiles eradicated both Gram-positive and Gram-negative bacteria on fomite surfaces.
Conclusions:
- Cationic polymer surfaces can effectively capture and eradicate human pathogens.
- C-POLAR shows potential for interrupting infectious spread via aerosols and surfaces.
- This technology can contribute to more resilient and healthier indoor environments.
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