Silver/Graphene Oxide Nanostructured Coatings for Modulating the Microbial Susceptibility of Fixation Devices Used in Knee Surgery.
Sorin ConstantinescuAdelina-Gabriela NiculescuAriana HudițăValentina GrumezescuDragoș RădulescuAlexandra Cătălina BîrcăStefan-Andrei IrimiciucOana GherasimAlina Maria HolbanBianca GălățeanuOvidiu Cristian OpreaAnton FicaiBogdan Ştefan VasileAlexandru-Mihai GrumezescuAlexandra BolocanRadu RădulescuPublished in: International journal of molecular sciences (2023)
Exploring silver-based and carbon-based nanomaterials' excellent intrinsic antipathogenic effects represents an attractive alternative for fabricating anti-infective formulations. Using chemical synthesis protocols, stearate-conjugated silver (Ag@C 18 ) nanoparticles and graphene oxide nanosheets (nGOs) were herein obtained and investigated in terms of composition and microstructure. Scanning electron microscopy (SEM) and transmission electron microscopy (TEM) characterizations revealed the formation of nanomaterials with desirable physical properties, while X-ray diffraction (XRD) analyses confirmed the high purity of synthesized nanomaterials. Further, laser-processed Ag@C 18 -nGO coatings were developed, optimized, and evaluated in terms of biological and microbiological outcomes. The highly biocompatible Ag@C 18 -nGO nanostructured coatings proved suitable candidates for the local modulation of biofilm-associated periprosthetic infections.
Keyphrases
- electron microscopy
- quantum dots
- gold nanoparticles
- minimally invasive
- highly efficient
- visible light
- silver nanoparticles
- total knee arthroplasty
- pseudomonas aeruginosa
- reduced graphene oxide
- staphylococcus aureus
- physical activity
- white matter
- microbial community
- photodynamic therapy
- coronary artery bypass
- total hip
- signaling pathway
- candida albicans
- type diabetes
- ionic liquid
- single cell
- metabolic syndrome
- coronary artery disease
- biofilm formation
- high resolution
- computed tomography
- magnetic resonance imaging
- drug release
- drug delivery
- escherichia coli
- insulin resistance
- atrial fibrillation
- single molecule