Fabrication of 3D printed antimicrobial polycaprolactone scaffolds for tissue engineering applications

被引:96
|
作者
Radhakrishnan, Socrates [1 ,2 ]
Nagarajan, Sakthivel [2 ]
Belaid, Habib [2 ,3 ]
Farha, Cynthia [2 ]
Iatsunskyi, Igor [4 ]
Coy, Emerson [4 ]
Soussan, Laurence [2 ]
Huon, Vincent [5 ]
Bares, Jonathan [5 ]
Belkacemi, Kawthar [3 ]
Teyssier, Catherine [3 ]
Balme, Sebastien [2 ]
Miele, Philippe [2 ,6 ]
Cornu, David [2 ]
Kalkura, Narayana [1 ]
Cavailles, Vincent [3 ]
Bechelany, Mikhael [2 ]
机构
[1] Anna Univ, Ctr Crystal Growth, Chennai 600025, Tamil Nadu, India
[2] Univ Montpellier, Inst Europeen Membranes, IEM UMR 5635, CNRS,ENSCM, Montpellier, France
[3] Univ Montpellier, Inst Rech Cancerol Montpellier, INSERM U1194, IRCM, F-34298 Montpellier, France
[4] Adam Mickiewicz Univ, NanoBioMed Ctr, 3 Wszechnicy Piastowskiej Str, PL-61614 Poznan, Poland
[5] Univ Montpellier, Lab Mecan & Genie Civil, LMGC, CNRS, Montpellier, France
[6] Inst Univ France IUF, 1 Rue Descartes, F-73231 Paris, France
基金
欧盟地平线“2020”;
关键词
Polycaprolactone; Silver nanoparticles; Nanocomposites; Cytocompatibility; Antimicrobial; Multifunctional properties; SILVER NANOPARTICLES; POLY(EPSILON-CAPROLACTONE); OPTIMIZATION; DEGRADATION; MECHANISM;
D O I
10.1016/j.msec.2020.111525
中图分类号
TB3 [工程材料学]; R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
Synthetic polymers are widely employed for bone tissue engineering due to their tunable physical properties and biocompatibility. Inherently, most of these polymers display poor antimicrobial properties. Infection at the site of implantation is a major cause for failure or delay in bone healing process and the development of antimicrobial polymers is highly desired. In this study, silver nanoparticles (AgNps) were synthesized in polycaprolactone (PCL) solution by in-situ reduction and further extruded into PCL/AgNps filaments. Customized 3D structures were fabricated using the PCL/AgNps filaments through 3D printing technique. As demonstrated by scanning electron microscopy, the 3D printed scaffolds exhibited interconnected porous structures. Furthermore, X-ray photoelectron spectroscopy analysis revealed the reduction of silver ions. Transmission electron microscopy along with energy-dispersive X-ray spectroscopy analysis confirmed the formation of silver nanoparticles throughout the PCL matrix. In vitro enzymatic degradation studies showed that the PCL/AgNps scaffolds displayed 80% degradation in 20 days. The scaffolds were cytocompatible, as assessed using hFOB cells and their antibacterial activity was demonstrated on Escherichia coli. Due to their interconnected porous structure, mechanical and antibacterial properties, these cytocompatible multifunctional 3D printed PCL/AgNps scaffolds appear highly suitable for bone tissue engineering.
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页数:9
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