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Biocompatible and antibacterial nanofibrous poly(ε-caprolactone)- nanosilver composite scaffolds for tissue engineering applications

Publication Type : Journal Article

Thematic Areas : Nanosciences and Molecular Medicine

Publisher : Journal of Macromolecular Science, Part A: Pure and Applied Chemistry

Source : Journal of Macromolecular Science, Part A: Pure and Applied Chemistry, Volume 49, Number 2, p.131-138 (2012)

Url : http://www.scopus.com/inward/record.url?eid=2-s2.0-84856405787&partnerID=40&md5=9de3416925bb775b1a23ec9944026795

Keywords : Adhesion, Adhesion studies, Ag nanoparticle, Anti-bacterial activity, Antibacterial, Bacteria, Biodegradable polymers, Bone fixation, Caprolactone, cell adhesion, Cell culture, Composite scaffolds, Diffusion method, Drug delivery, Drug delivery devices, Electrospinning, Electrospuns, Fiber mat, Fibrous scaffolds, FTIR, Functional polymers, Growth inhibitor, Human mesenchymal stem cells (hMSCs), Implants (surgical), In-situ, matrix, Medical applications, Microbial adhesion, Multifunctional properties, Nano silver, Nanocomposite films, Nanofibers, Nanoparticles, Physicochemical parameters, Scaffolds (biology), Silver, silver nanoparticles, Staphylococcus aureus, Stem cells, Surgical sutures, Tissue, tissue engineering, Tissue engineering applications, XRD

Campus : Kochi

School : Center for Nanosciences

Center : Amrita Center for Nanosciences and Molecular Medicine Move, Nanosciences

Department : Nanosciences and Molecular Medicine

Year : 2012

Abstract : Biodegradable polymers have been developed for medical applications such as surgical sutures, drug delivery devices, tissue supports and implants for interior bone fixation. However, implants are highly susceptible to microbial adhesion, which can ultimately lead to the formation of bio-films. The goal of the current study was to fabricate a biocompatible and antibacterial nanofibrous poly(ε-caprolactone) (PCL) scaffold for tissue engineering applications. To develop such a scaffold, silver nanoparticles synthesized by a novel in situ reduction route were incorporated into the PCL matrix during the process of electrospinning. The electrospun PCL and composite PCL/nanosilver fiber mats were characterized for their physico-chemical parameters using UV-VIS, SEM, XRD, FTIR and EDAX. Antibacterial activity of the composite scaffold was tested against Staphylococcus aureus using disc diffusion method and cytotoxicity evaluated using alamar blue assay. Cell adhesion studies carried out using human Mesenchymal Stem Cells (hMSCs) seeded on the scaffold containing the lowest concentration of silver nanoparticles (0.2 mM) revealed that Ag nanoparticles can be effectively used as a growth inhibitor of microorganisms, without compromising on the cell adhesion. Thus, nanosilver incorporated PCL fibrous scaffold can be a potential candidate for tissue engineering applications, possessing multifunctional properties. © 2012 Taylor and Francis Group, LLC.

Cite this Research Publication : M. S. Sumitha, Shalumon, K. T., Sreeja, V. N., Dr. Jayakumar Rangasamy, and Nair, S. V., “Biocompatible and antibacterial nanofibrous poly(ε-caprolactone)- nanosilver composite scaffolds for tissue engineering applications”, Journal of Macromolecular Science, Part A: Pure and Applied Chemistry, vol. 49, pp. 131-138, 2012.

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