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Copper in the Nanotechnology Era: A Systematic Review of Antimicrobial Implications

delete2026-07-31
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PRE
AI
C
Chochliourou Elpis
M
Maria-Nefeli Georgaki *
I
Ioannou Despoina
T
Trevlias Ioannis
D
Dimitrios Kavvadas
S
Sofia Karachrysafi
D
Dimosthenis Sarigiannis
P
Papamitsou Theodora
DOI:10.1007/s10876-026-03083-2delete
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Abstract

Abstract

En 中文
The global rise in antimicrobial resistance has highlighted the importance of complementary, non-antibiotic infection-prevention techniques. Due to their broad-spectrum activity, versatility, and suitability for surface, textile, wound-care, and filtration applications, copper-based nanomaterials (CuNMs) have emerged as potential antimicrobial platforms. This systematic review, conducted in accordance with PRISMA guidelines, provides evidence from 46 peer-reviewed studies on the antimicrobial mechanisms, application settings, safety considerations, and environmental consequences of CuNM technology. CuNMs can inhibit bacteria, fungi, and viruses through membrane disruption, Cu⁺/Cu²⁺ ion release, ROS generation, protein dysfunction, nucleic acid damage, and biofilm suppression, according to the studies included. Several platforms, including copper oxide nanoparticles, copper sulfide nanostructures, copper-containing nanozymes, hydrogels, coatings, textiles, and filtration materials, demonstrated high antibacterial or antibiofilm activity in experimental or preclinical studies. However, the significant variation in material characterization, antimicrobial testing methodologies, exposure settings, and outcome reporting precludes direct quantitative comparisons between investigations. Concerns about cytotoxicity, environmental persistence, copper ion release, durability, and regulatory uncertainty emphasize the importance of standardized characterization, long-term safety evaluation, environmental fate assessment, and translational validation. In general, CuNMs are potential infection-prevention platforms that have not yet undergone complete validation. Further research is needed to standardize material characterization and antimicrobial testing, evaluate long-term safety and environmental fate, assess durability under real-use conditions, and support translational validation before widespread clinical or public-health implementation can be recommended.
Keywords:
Copper nanomaterials
Antimicrobial resistance
Infection prevention
Nanotechnology
Biofilms

Journal

Journal of Cluster Science cover
Journal of Cluster Science
IF:
3.6
Papers:
364
Citations:
5.1K

Organization

D
department of chemical engineering
Scholars:
2.3K
Papers: 1.0K
Citations: 0
S
school of medicine
Scholars:
3.6K
Papers: 1.3K
Citations: 0
A
aristotle university of thessaloniki
Scholars:
2.5W
Papers: 2.0W
Citations: 19
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