Review on Zinc Oxide Nanoparticles: Antibacterial Activity and Toxicity Mechanism
Обзор наночастиц оксида цинка: антибактериальная активность и механизм токсического действия
2015-04-18
SCID: 54.1/w7dw7f6a
Discuss with AI
antibacterial activityfood packagingminimum inhibitory concentrationreactive oxygen specieszinc oxide nanoparticles
Figures from the paper
Abstract (AI)
Antibacterial activity of zinc oxide nanoparticles (ZnO-NPs) has received significant interest worldwide particularly by the implementation of nanotechnology to synthesize particles in the nanometer region. Many microorganisms exist in the range from hundreds of nanometers to tens of micrometers. ZnO-NPs exhibit attractive antibacterial properties due to increased specific surface area as the reduced particle size leading to enhanced particle surface reactivity. ZnO is a bio-safe material that possesses photo-oxidizing and photocatalysis impacts on chemical and biological species. This review covered ZnO-NPs antibacterial activity including testing methods, impact of UV illumination, ZnO particle properties (size, concentration, morphology, and defects), particle surface modification, and minimum inhibitory concentration. Particular emphasize was given to bactericidal and bacteriostatic mechanisms with focus on generation of reactive oxygen species (ROS) including hydrogen peroxide (H2O2), OH− (hydroxyl radicals), and O2 −2 (peroxide). ROS has been a major factor for several mechanisms including cell wall damage due to ZnO-localized interaction, enhanced membrane permeability, internalization of NPs due to loss of proton motive force and uptake of toxic dissolved zinc ions. These have led to mitochondria weakness, intracellular outflow, and release in gene expression of oxidative stress which caused eventual cell growth inhibition and cell death. In some cases, enhanced antibacterial activity can be attributed to surface defects on ZnO abrasive surface texture. One functional application of the ZnO antibacterial bioactivity was discussed in food packaging industry where ZnO-NPs are used as an antibacterial agent toward foodborne diseases. Proper incorporation of ZnO-NPs into packaging materials can cause interaction with foodborne pathogens, thereby releasing NPs onto food surface where they come in contact with bad bacteria and cause the bacterial death and/or inhibition.
Key Findings
1
Reactive oxygen species, including H2O2, hydroxyl radicals, and peroxide species, are central to ZnO nanoparticle bactericidal and bacteriostatic mechanisms.
2
Surface defects and abrasive texture may enhance antibacterial activity, supporting applications of ZnO nanoparticles in food packaging against foodborne pathogens.
3
The review identifies particle size, concentration, morphology, defects, UV illumination, surface modification, and minimum inhibitory concentration as major determinants of antibacterial performance.
4
ZnO nanoparticles can damage bacterial cell walls, increase membrane permeability, disrupt proton motive force, promote toxic zinc-ion uptake, and induce oxidative stress leading to growth inhibition and cell death.
5
ZnO nanoparticles exhibit antibacterial activity partly because nanoscale size increases specific surface area and surface reactivity.
Research Object
zinc oxide nanoparticles (ZnO-NPs) and their interactions with bacterial cells
Research Subject
the antibacterial activity, physicochemical factors, and bactericidal/bacteriostatic mechanisms of ZnO-NPs, particularly ROS-mediated cellular damage and toxicity
Publication Details
Publication Date
2015-04-18
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest