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Updated: Jan 27, 2026

Development and Assessment of Intracellular Infection Models for Staphylococcus aureus
Published on: January 17, 2025
Novel coating containing molybdenum oxide nanoparticles to reduce Staphylococcus aureus contamination on inanimate
Susana Piçarra1,2, Elizeth Lopes3, Pedro L Almeida4,5
1Centro de Química Estrutural-CQE, DEQ, Instituto Superior Técnico, Universidade de Lisboa, Lisboa, Portugal.
Abstract:
We previously synthetized molybdenum oxide (MoO3) nanoparticles (NP) and showed their antibacterial activity against a representative collection of the most relevant bacterial species responsible for hospital-acquired infections, including Staphylococcus aureus. The aim of the present study was to prepare and characterize a novel coating with these MoO3 NP, confirm its mechanical stability, and investigate its biocidal effect to reduce S. aureus contamination on inanimate surfaces. In addition, the novel MoO3 NP coating was compared to a silver (Ag) NP coating synthetized by the same procedure. The MoO3 and Ag NP coatings were characterized in terms of their chemical structure by FT-IR, surface morphology by scanning electron microscopy, and mechanical properties by tensile and adhesion tests. The antimicrobial activity of the coatings was tested by following the loss of viability of S. aureus after 6h, 24h, 48h, and 72h exposure. MoO3 and Ag coatings exhibited surfaces of comparable morphologies and both presented elastomeric properties (tensile strength of ~420 kPa, Young's modulus of ~48 kPa, and maximum elongation of ~12%), and excellent (classification of 5B) adhesion to glass, steel and polystyrene surfaces. The two coatings exhibited a good antibacterial activity (R) against S. aureus over time (RMoO3 = 0.2-0.81; RAg = 0.61-2.37), although the effect of the Ag NP coating was more pronounced, especially at 72h (RMoO3 = 0.81 vs RAg = 2.37). Noteworthy, contrary to the Ag NP coating, the MoO3 NP coating was colourless and transparent, avoiding undesired unaesthetic effects. The synthetized coating with NP of MoO3, which has low toxicity to humans, capability of biodegradation, and rapid excretion, can be applied onto most standard materials and therefore is a promising tool to reduce S. aureus contamination on usual inanimate surfaces found in healthcare and community environments.
Insights
Molybdenum oxide (MoO3) nanoparticles create a transparent, durable coating effective against Staphylococcus aureus. This novel MoO3 coating offers a promising, low-toxicity alternative to silver nanoparticles for reducing bacterial contamination on surfaces.
Area of Science:
- Materials Science
- Nanotechnology
- Antimicrobial Research
Background:
- Hospital-acquired infections, particularly those caused by Staphylococcus aureus, pose a significant healthcare challenge.
- Molybdenum oxide (MoO3) nanoparticles have demonstrated prior antibacterial activity.
- Developing effective antimicrobial surfaces is crucial for infection control.
Purpose of the Study:
- To prepare and characterize a novel MoO3 nanoparticle coating.
- To evaluate the mechanical stability and biocidal efficacy of the MoO3 coating against S. aureus.
- To compare the MoO3 coating with a silver (Ag) nanoparticle coating.
Main Methods:
- Coatings synthesized with MoO3 and Ag nanoparticles.
- Characterization using FT-IR (chemical structure) and scanning electron microscopy (surface morphology).
- Mechanical testing (tensile strength, Young's modulus, elongation, adhesion) and antimicrobial assays against S. aureus over 72 hours.
Main Results:
- Both MoO3 and Ag coatings showed comparable morphology, elastomeric properties, and excellent adhesion.
- Both coatings exhibited antibacterial activity against S. aureus, with Ag NP coating being more potent over time.
- The MoO3 NP coating was colorless and transparent, unlike the Ag NP coating.
Conclusions:
- The MoO3 NP coating demonstrates good mechanical properties and antibacterial efficacy against S. aureus.
- Its transparency, low toxicity, and biodegradability make it a promising alternative to Ag NP coatings for reducing S. aureus on inanimate surfaces.
- This coating can be applied to various materials, offering a versatile solution for infection control in healthcare and community settings.
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