Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Synthesis and Application of AgNPs-Chitosan Composite as a Self-Disinfecting Coating in Water-Based Polyurethane

View through CrossRef
Infectious diseases still represent an important cause of mortality for humans. One of the main reasons is that various pathogenic bacteria can persist and survive on inanimate surfaces for many days. Therefore, self-disinfection coating technology has become of interest to deal with this problem. In this research, we propose to develop a self-disinfection coating containing AgNPs-chitosan composite in 50% water-based polyurethane (WPU), which has a strong short- and long-term antibacterial effect. The coating agent was synthesized by conventional composite approaches. The physical and chemical properties of AgNPs-chitosan nanocomposite are studied by TEM, SEM, and FTA 100 Drop Shape Instrument B Frame System. The results show that at a concentration of 39 μg/mL, when reducing the size of AgNPs from 7.29 ± 1.65 to 4.66 ± 2.08 nm, the shape of a sphere turns into an asymmetrical circle and leads to increasing aggregation of AgNPs. Negative charges on the surface of AgNPs interact with amine (-NH2) and hydroxyl (-OH) groups of chitosan through an electrostatic force. All formulations of the coating showed low hydrophobicity properties. Moreover, the short- and long-term antibacterial activity of the coating were investigated by application of the ISO 22196 standard protocol. The mean inhibition percentage of E. coli O157:H7 and S. aureus ATCC25722 of the formulation containing AgNPs at a concentration of 1280 µg/mL and 50% v/v of WPU (Formula 4) and the formulation containing AgNPs at a concentration of 1280 µg/mL, chitosan 39 µg/mL and 50% v/v of WPU (Formula 8) from 1 day to 4 months after the coating completely dried was 81.72% ± 3.15% and 82.07% ± 3.01% on E. coli O157:H7, 84.64% ± 2.59% and 83.27% ± 3.12% on S. aureus ATCC25722, respectively. There was no significant difference from statistical analysis at 95% confidence interval (p < 0.05). Furthermore, the quantify of silver ion from coating was measured by ICP-MS. The result reveal that the formulation containing AgNPs at a concentration of 1280 µg/mL, chitosan 39 µg/mL and 50% v/v of WPU (Formula 8) released an amount of silver ion lower than the formulation containing AgNPs at a concentration of 1280 µg/mL and 50% v/v of WPU (Formula 4) by approximately 5.92 times, while the same concentration of AgNPs and inhibition efficacy was not significantly different. In addition, such a concentration was non-toxic on NHDF cells, which were investigated by MTT assay. Therefore, formulation containing AgNPs at a concentration of 1280 µg/mL, chitosan 39 µg/mL and 50% v/v of WPU coating (Formula 8) will be further developed into commercial self-disinfection coatings.
Title: Synthesis and Application of AgNPs-Chitosan Composite as a Self-Disinfecting Coating in Water-Based Polyurethane
Description:
Infectious diseases still represent an important cause of mortality for humans.
One of the main reasons is that various pathogenic bacteria can persist and survive on inanimate surfaces for many days.
Therefore, self-disinfection coating technology has become of interest to deal with this problem.
In this research, we propose to develop a self-disinfection coating containing AgNPs-chitosan composite in 50% water-based polyurethane (WPU), which has a strong short- and long-term antibacterial effect.
The coating agent was synthesized by conventional composite approaches.
The physical and chemical properties of AgNPs-chitosan nanocomposite are studied by TEM, SEM, and FTA 100 Drop Shape Instrument B Frame System.
The results show that at a concentration of 39 μg/mL, when reducing the size of AgNPs from 7.
29 ± 1.
65 to 4.
66 ± 2.
08 nm, the shape of a sphere turns into an asymmetrical circle and leads to increasing aggregation of AgNPs.
Negative charges on the surface of AgNPs interact with amine (-NH2) and hydroxyl (-OH) groups of chitosan through an electrostatic force.
All formulations of the coating showed low hydrophobicity properties.
Moreover, the short- and long-term antibacterial activity of the coating were investigated by application of the ISO 22196 standard protocol.
The mean inhibition percentage of E.
coli O157:H7 and S.
aureus ATCC25722 of the formulation containing AgNPs at a concentration of 1280 µg/mL and 50% v/v of WPU (Formula 4) and the formulation containing AgNPs at a concentration of 1280 µg/mL, chitosan 39 µg/mL and 50% v/v of WPU (Formula 8) from 1 day to 4 months after the coating completely dried was 81.
72% ± 3.
15% and 82.
07% ± 3.
01% on E.
coli O157:H7, 84.
64% ± 2.
59% and 83.
27% ± 3.
12% on S.
aureus ATCC25722, respectively.
There was no significant difference from statistical analysis at 95% confidence interval (p < 0.
05).
Furthermore, the quantify of silver ion from coating was measured by ICP-MS.
The result reveal that the formulation containing AgNPs at a concentration of 1280 µg/mL, chitosan 39 µg/mL and 50% v/v of WPU (Formula 8) released an amount of silver ion lower than the formulation containing AgNPs at a concentration of 1280 µg/mL and 50% v/v of WPU (Formula 4) by approximately 5.
92 times, while the same concentration of AgNPs and inhibition efficacy was not significantly different.
In addition, such a concentration was non-toxic on NHDF cells, which were investigated by MTT assay.
Therefore, formulation containing AgNPs at a concentration of 1280 µg/mL, chitosan 39 µg/mL and 50% v/v of WPU coating (Formula 8) will be further developed into commercial self-disinfection coatings.

Related Results

Evaluación del riesgo ambiental de las nanopartículas de plata (AgNPs) en ecosistemas acuáticos
Evaluación del riesgo ambiental de las nanopartículas de plata (AgNPs) en ecosistemas acuáticos
(English) The widespread and increasing use of silver nanoparticles (AgNPs) in various products is leading to their release into different environmental compartments, especially in...
Synthesis and Investigation into Apatite-forming Ability of Hydroxyapatite/Chitosan-based Scaffold
Synthesis and Investigation into Apatite-forming Ability of Hydroxyapatite/Chitosan-based Scaffold
In this study, porous scaffolds were fabricated using inorganic material-hydroxyapatite and chitosan for bone-tissue engineering. The combination of hydroxyapatite and chitosan may...
Green synthesis of silver nanoparticles from Verbena officinalis L.: Characterization and antibacterial efficacy
Green synthesis of silver nanoparticles from Verbena officinalis L.: Characterization and antibacterial efficacy
In recent times, attention has been paid to phyto-assisted synthesis of nanoparticles using plant extracts due to its ecofriendly, low cost and easy modes. In our research, silver ...
Biosynthesis of Silver Nanoparticles Using Barleria albostellata C.B. Clarke Leaves and Stems: Antibacterial and Cytotoxic Activity
Biosynthesis of Silver Nanoparticles Using Barleria albostellata C.B. Clarke Leaves and Stems: Antibacterial and Cytotoxic Activity
Silver nanoparticles (AgNPs) have increasingly gained attention owing to their distinctive physicochemical and biological properties. The objective of the investigation was to biol...
Efficient green silver nanoparticles-antibiotic combinations against antibiotic-resistant bacteria
Efficient green silver nanoparticles-antibiotic combinations against antibiotic-resistant bacteria
AbstractAntibiotic-resistant bacterial strains and the consequent surge in infections caused by them have become major public health concerns. Silver nanoparticles (AgNPs) exhibit ...
Metallic nanoparticles with polymeric shell : a multifunctional platform for application to biosensors
Metallic nanoparticles with polymeric shell : a multifunctional platform for application to biosensors
Nanoparticules métalliques enrobées de polymère : une plateforme multifonctionnelle pour application aux biocapteurs électrochimiques. La tuberculose (TB) est une m...

Back to Top