Multifunctional Biocomposites: Synthesis, Characterization, and Prospects for Regenerative Medicine and Controlled Drug Delivery

Author:

Aaddouz Mohamed1ORCID,El Yousfi Ridouan1ORCID,Sabbahi Rachid23ORCID,Azzaoui Khalil34ORCID,Yahyaoui Meryem Idrissi5ORCID,Asehraou Abdeslam5ORCID,Hammouti Belkheir3ORCID,Laoutid Fouad6ORCID,Alanazi Mohammed M.7ORCID,Mejdoubi Elmiloud1

Affiliation:

1. Laboratory of Applied Chemistry and Environment, Department of Chemistry, Faculty of Sciences. Mohammed First University, Oujda 60000, Morocco

2. Research Team in Science and Technology, Higher School of Technology, Ibn Zohr University, Quartier 25 Mars, Laayoune 70000, Morocco

3. Euromed Research Center, Euromed Polytechnic School, Euromed University of Fes, UEMF, Fes 30030, Morocco

4. Engineering Laboratory of Organometallic, Molecular Materials and Environment, Faculty of Sciences, Sidi Mohammed Ben Abdellah University, Fez 30000, Morocco

5. Laboratory of Bioresources, Biotechnology, Ethnopharmacology and Health, Faculty of Sciences, Mohammed First University, Oujda 60000, Morocco

6. Laboratory of Polymeric & Composite Materials, Materia Nova Research Center, 3 Avenue Nicolas Copernic, B-7000 Mons, Belgium

7. Department of Pharmaceutical Chemistry, College of Pharmacy, King Saud University, Riyadh 11451, Saudi Arabia

Abstract

This article presents a new method for preparing multifunctional composite biomaterials with applications in advanced biomedical fields. The biomaterials consist of dicalcium phosphate (DCPD) and bioactive silicate glasses (SiO2/Na2O and SiO2/K2O), containing the antibiotic streptomycin sulfate. Materials were deeply characterized by X-ray diffraction and attenuated total reflectance Fourier transform infrared spectroscopy, and zeta potential analysis, UV–visible spectrophotometry, and ion-exchange measurement were applied in a simulating body fluid (SBF) solution. The main results include an in situ chemical transformation of dicalcium phosphate into an apatitic phase under the influence of silicate solutions and the incorporation of the antibiotic. The zeta potential showed a decrease in surface charge from ζ = −24.6 mV to ζ = −16.5 mV. In addition, a controlled and prolonged release of antibiotics was observed over a period of 37 days, with a released concentration of up to 755 ppm. Toxicity tests in mice demonstrated good tolerance of the biomaterials, with no significant adverse effects. Moreover, these biomaterials have shown potent antibacterial activity against various bacterial strains, including Listeria monocytogenes, Staphylococcus aureus, Escherichia coli, and Pseudomonas aeruginosa, suggesting their potential use in tissue engineering, drug delivery, and orthopedic and dental implants. By integrating the antibiotic into the biomaterial composites, we achieved controlled release and prolonged antibacterial efficacy. This research contributes to advancing biomaterials by exploring innovative synthetic routes and showcasing their promise in regenerative medicine and controlled drug delivery.

Funder

King Saud University

Publisher

MDPI AG

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