Publication:
Antimicrobial Functionalized Mesoporous Silica FDU-12 Loaded with Bacitracin

dc.contributor.authorVasile, Dan Adrian
dc.contributor.authorMotelica, Ludmila
dc.contributor.authorMîrț, Luiza-Andreea
dc.contributor.authorVasilievici, Gabriel
dc.contributor.authorMemecică, Oana-Maria
dc.contributor.authorOprea, Ovidiu Cristian
dc.contributor.authorSurdu, Vasile Adrian
dc.contributor.authorTrușcă, Roxana Doina
dc.contributor.authorChircov, Cristina
dc.contributor.authorVasile, Bogdan Ștefan
dc.contributor.authorGhizdavet, Zeno Dorian
dc.contributor.authorFicai, Denisa
dc.contributor.authorAlbu, Ana-Maria
dc.contributor.authorPericleanu, Radu
dc.contributor.authorDumbravă, Andreea Ștefania
dc.contributor.authorMihai, Mara-Mădălina
dc.contributor.authorGheorghe-Barbu, Irina
dc.contributor.authorFicai, Anton
dc.date.accessioned2026-03-12T05:32:51Z
dc.date.issued2026-01-19
dc.description.abstractThe threats leading to the extinction of humanity accelerate the evolution and development of materials that are capable of providing conditions for preserving health and, implicitly, life. In our work, we developed drug delivery systems based on mesoporous silica which can deliver an antibiotic, bacitracin, in a more controlled manner. The synthesis of the FDU-12 was performed through a sol–gel method and alternatively functionalized with -NH2 groups or with poly(N-acryloylmorpholine) chains. The loading of bacitracin was performed using the vacuum-assisted method we successfully used to load these mesoporous materials preferentially within the pores as proved by the TGA-DSC results. The release was performed in two types of simulated body fluid (SBF) and this process was evaluated with chromatographic method using UV detection. The obtained data were fitted in three mathematical models of kinetic drug release (Weibull model, Korsmeyer–Peppas model, and nonlinear regression). The antimicrobial evaluation demonstrated that bacitracin-loaded FDU-12 formulations exhibited strong activity against both reference and clinical Staphylococcus strains. At sub-inhibitory concentrations, all formulations significantly reduced microbial adherence and biofilm formation, although certain strain-dependent stimulatory effects were observed. Furthermore, exposure to sub-MIC levels modulated the production of soluble virulence factors (hemolysins, lipase, and amylase), in a formulation- and strain-dependent manner, underscoring the ability of surface-functionalized FDU-12 carriers to influence bacterial pathogenicity while enhancing antimicrobial efficacy.
dc.description.sponsorshipThis research was supported by UEFISCDI through the projects “Nanostructured Bone Grafts with Predetermined Properties CollNanoBone” project number 29ROMD/20.05.2024 and by the project PN-IV-P7-7.1-PED-2024-2249 (9PED/2025). Most of the analyses were realized within the CNMN IOSIN infrastructure funded by the Romanian Government via the Ministry of Research and Education.
dc.identifier.doi10.3390/molecules31020340
dc.identifier.issn1420-3049
dc.identifier.urihttps://repository.unitbv.ro/handle/123456789/2942
dc.language.isoen
dc.publisherMDPI
dc.relation.ispartofMolecules
dc.subjectmesoporous silica
dc.subjectpoly(N‑acryloylmorpholine)
dc.subjectbacitracin
dc.subjectdrug delivery
dc.subjectvacuum‑assisted loading
dc.subjectsurface functionalization
dc.subjectskin infection
dc.subjectkinetic model
dc.subjectantimicrobial
dc.subjectanti‑biofilm virulence factors modulation
dc.subjectStaphylococcus spp
dc.titleAntimicrobial Functionalized Mesoporous Silica FDU-12 Loaded with Bacitracin
dc.typeArticle
dspace.entity.typePublication
oaire.citation.issue2
oaire.citation.volume31

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