Advancing Antimicrobial Textiles: A Comprehensive Study on Combating ESKAPE Pathogens and Ensuring User Safety

Author:

Vojnits Kinga1,Mohseni Majid2,Parvinzadeh Gashti Mazeyar34ORCID,Nadaraja Anupama Vijaya5,Karimianghadim Ramin1,Crowther Ben1,Field Brad6,Golovin Kevin5ORCID,Pakpour Sepideh1

Affiliation:

1. School of Engineering, University of British Columbia, Kelowna, BC V6T 1Z2, Canada

2. Research and Development Laboratory, PRE Labs, Inc., Kelowna, BC V1X 7Y5, Canada

3. GTI Chemical Solutions, Inc., Wellford, SC 29385, USA

4. InsectaPel, LLC, Wellford, SC 29585, USA

5. Mechanical and Industrial Engineering, University of Toronto, Toronto, ON M5S 3G8, Canada

6. PRE Labs, Inc., Kelowna, BC V1X 7Y5, Canada

Abstract

Antibiotic-resistant bacteria, ESKAPE pathogens, present a significant and alarming threat to public health and healthcare systems. This study addresses the urgent need to combat antimicrobial resistance by exploring alternative ways to reduce the health and cost implications of infections caused by these pathogens. To disrupt their transmission, integrating antimicrobial textiles into personal protective equipment (PPE) is an encouraging avenue. Nevertheless, ensuring the effectiveness and safety of these textiles remains a persistent challenge. To achieve this, we conduct a comprehensive study that systematically compares the effectiveness and potential toxicity of five commonly used antimicrobial agents. To guide decision making, a MULTIMOORA method is employed to select and rank the optimal antimicrobial textile finishes. Through this approach, we determine that silver nitrate is the most suitable choice, while a methoxy-terminated quaternary ammonium compound is deemed less favorable in meeting the desired criteria. The findings of this study offer valuable insights and guidelines for the development of antimicrobial textiles that effectively address the requirements of effectiveness, safety, and durability. Implementing these research outcomes within the textile industry can significantly enhance protection against microbial infections, contribute to the improvement of public health, and mitigate the spread of infectious diseases.

Funder

Innovation for Defence Excellence and Security (IDEaS) Program

Publisher

MDPI AG

Reference95 articles.

1. Santajit, S., and Indrawattana, N. (2016). Mechanisms of Antimicrobial Resistance in ESKAPE Pathogens. Biomed. Res. Int., 2016.

2. WHO (2022, November 21). WHO Publishes List of Bacteria for Which New Antibiotics Are Urgently Needed. Available online: https://www.who.int/news/item/27-02-2017-who-publishes-list-of-bacteria-for-which-new-antibiotics-are-urgently-needed.

3. The role of textiles as fomites in the healthcare environment: A review of the infection control risk;Owen;PeerJ,2020

4. The Role of Patient Care Items as a Fomite in Healthcare-Associated Outbreaks and Infection Prevention;Kanamori;Clin. Infect. Dis.,2017

5. Antimicrobial Resistance in ESKAPE Pathogens;Forde;Clin. Microbiol. Rev.,2020

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