Biomimetic fabrication of antibacterial calcium phosphates mediated by polydopamine
In this work we developed new antibacterial composite materials using polydopamine (PDA) to trigger the deposition of silver nanoparticles (AgNPs) onto calcium phosphates, namely octacalcium phosphate (OCP) and α-tricalcium phosphate (αTCP). Functionalization of OCP and αTCP with a self-polymerized...
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Veröffentlicht in: | Journal of inorganic biochemistry 2018-01, Vol.178, p.43-53 |
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Sprache: | eng |
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Zusammenfassung: | In this work we developed new antibacterial composite materials using polydopamine (PDA) to trigger the deposition of silver nanoparticles (AgNPs) onto calcium phosphates, namely octacalcium phosphate (OCP) and α-tricalcium phosphate (αTCP). Functionalization of OCP and αTCP with a self-polymerized polydopamine layer was obtained by soaking the calcium phosphates in dopamine solution. The PDA surface of functionalized calcium phosphates (OCPd and αTCPd) promoted the deposition of AgNPs by reducing silver ions when soaked in a silver nitrate solution. The amount of deposited AgNPs can be modulated by varying the concentration of silver nitrate solution and the type of substrate. The results of in vitro tests carried out with osteoblast-like MG63 cells indicate that the combination of AgNPs with OCP provides more biocompatible materials than those obtained using αTCP as substrate. In particular, the study of osteoblast activity and differentiation was focused on the samples OCPdAg5 (silver content=8.2wt%) and αTCPdAg5 (silver content=4.7wt%), which did not show any cytotoxicity, and compared with those obtained on pure OCP and αTCP. The results demonstrate that the AgNPs loaded materials support osteoblast viability and differentiation, whereas they significantly inhibit the growth of relevant antibiotic-resistant pathogenic bacteria.
Polydopamine mediated deposition of silver nanoparticles on calcium phosphates provides composite materials, which support osteoblast growth and differentiation, whereas they inhibit the growth of multi-drug resistant Gram positive and Gram negative bacteria. [Display omitted]
•Polydopamine functionalized calcium phosphates trigger silver nanoparticles deposition.•Octacalcium phosphate and α-tricalcium phosphate materials at different silver content are proposed.•Composite materials are able to inhibit antibiotic-resistant clinical isolates.•These antibacterial materials also support osteoblast viability and differentiation. |
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ISSN: | 0162-0134 1873-3344 |
DOI: | 10.1016/j.jinorgbio.2017.10.004 |