Enhancing antibacterial properties by regulating valence configurations of copper: a focus on Cu-carboxyl chelates.
Qiuping QianJige ChenMingming QinYu PeiChunxiu ChenDongping TangGiuseppe PeraleWei DuGuoqiang YangHaiping FangYunlong ZhouPublished in: Journal of materials chemistry. B (2024)
Optimizing the antibacterial effectiveness of copper ions while reducing environmental and cellular toxicity is essential for public health. A copper chelate, named PAI-Cu, is skillfully created using a specially designed carboxyl copolymer (a combination of acrylic and itaconic acids) with copper ions. PAI-Cu demonstrates a broad-spectrum antibacterial capability both in vitro and in vivo , without causing obvious cytotoxic effects. When compared to free copper ions, PAI-Cu displays markedly enhanced antibacterial potency, being about 35 times more effective against Escherichia coli and 16 times more effective against Staphylococcus aureus . Moreover, Gaussian and ab initio molecular dynamics (AIMD) analyses reveal that Cu+ ions can remain stable in the carboxyl compound's aqueous environment. Thus, the superior antibacterial performance of PAI-Cu largely stems from its modulation of copper ions between mono- and divalent states within the Cu-carboxyl chelates, especially via the carboxyl ligand. This modulation leads to the generation of reactive oxygen species (˙OH), which is pivotal in bacterial eradication. This research offers a cost-effective strategy for amplifying the antibacterial properties of Cu ions, paving new paths for utilizing copper ions in advanced antibacterial applications.
Keyphrases
- aqueous solution
- silver nanoparticles
- oxide nanoparticles
- quantum dots
- molecular dynamics
- public health
- escherichia coli
- staphylococcus aureus
- reactive oxygen species
- anti inflammatory
- metal organic framework
- randomized controlled trial
- essential oil
- water soluble
- systematic review
- oxidative stress
- cystic fibrosis
- risk assessment
- single cell
- gene expression
- density functional theory
- helicobacter pylori
- ionic liquid
- human health