Antimicrobial Activity of Two Different Types of Silver Nanoparticles against Wide Range of Pathogenic Bacteria

Author:

Holubnycha Viktoriia1,Husak Yevheniia12,Korniienko Viktoriia13,Bolshanina Svetlana1ORCID,Tveresovska Olesia1,Myronov Petro1,Holubnycha Marharyta1,Butsyk Anna4,Borén Thomas4,Banasiuk Rafal56,Ramanavicius Arunas7ORCID,Pogorielov Maksym13ORCID

Affiliation:

1. Medical Institute, Sumy State University, 2, Rymskogo-Korsakova St., 40007 Sumy, Ukraine

2. Faculty of Chemistry, Silesian University of Technology, 44-100 Gliwice, Poland

3. Institute of Atomic Physics and Spectroscopy, University of Latvia, 3 Jelgavas St., LV-1004 Riga, Latvia

4. Department Medical Biochemistry and Biophysics, Umeå University, SE-901 87 Umeå, Sweden

5. NanoWave, 02-676 Warsaw, Poland

6. Mechanical Faculty, Gdańsk University of Technology, G. Narutowicza 11/12, 80-233 Gdańsk, Poland

7. Department of Physical Chemistry, Institute of Chemistry, Faculty of Chemistry and Geosciences, Vilnius University, Naugarduko Str. 24, LT-03225 Vilnius, Lithuania

Abstract

The emergence of antibiotic-resistant bacteria, particularly the most hazardous pathogens, namely Enterococcus faecium, Staphylococcus aureus, Klebsiella pneumoniae, Acinetobacter baumannii, Pseudomonas aeruginosa, and Enterobacter spp. (ESKAPE)-pathogens pose a significant threat to global health. Current antimicrobial therapies, including those targeting biofilms, have shown limited effectiveness against these superbugs. Nanoparticles, specifically silver nanoparticles (AgNPs), have emerged as a promising alternative for combating bacterial infections. In this study, two types of AgNPs with different physic-chemical properties were evaluated for their antimicrobial and antibiofilm activities against clinical ESKAPE strains. Two types of silver nanoparticles were assessed: spherical silver nanoparticles (AgNPs-1) and cubic-shaped silver nanoparticles (AgNPs-2). AgNPs-2, characterized by a cubic shape and higher surface-area-to-volume ratio, exhibited superior antimicrobial activity compared to spherical AgNPs-1. Both types of AgNPs demonstrated the ability to inhibit biofilm formation and disrupt established biofilms, leading to membrane damage and reduced viability of the bacteria. These findings highlight the potential of AgNPs as effective antibacterial agents against ESKAPE pathogens, emphasizing the importance of nanoparticle characteristics in determining their antimicrobial properties. Further research is warranted to explore the underlying mechanisms and optimize nanoparticle-based therapies for the management of infections caused by antibiotic-resistant bacteria.

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

Reference52 articles.

1. The antibiotic resistance crisis: Part 1: Causes and threats;Ventola;Pharm. Ther.,2015

2. World Health Organization (2018). WHO Report on Surveillance of Antibiotic Consumption, World Health Organization.

3. ESKAPE Pathogens in Bloodstream Infections Are Associated With Higher Cost and Mortality but Can Be Predicted Using Diagnoses Upon Admission;Lowery;Open Forum Infect. Dis.,2019

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

5. Foodborne ESKAPE Biofilms and Antimicrobial Resistance: Lessons Learned from Clinical Isolates;Patil;Pathog. Glob. Health,2021

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