3D printing of PLA:CaP:GO scaffolds for bone tissue applications

被引:16
作者
Gonzalez-Rodriguez, L. [1 ,2 ]
Perez-Davila, S. [1 ,2 ]
Lama, R. [3 ]
Lopez-Alvarez, M. [1 ,2 ]
Serra, J. [1 ,2 ]
Novoa, B. [3 ]
Figueras, A. [3 ]
Gonzalez, P. [1 ,2 ]
机构
[1] Univ Vigo, CINTECX, Grp Novos Mat, Vigo 36310, Spain
[2] UVIGO, Galicia Hlth Res Inst IIS Galicia Sur, SERGAS, Vigo 36213, Spain
[3] CSIC, Inst Marine Reseach IIM, Eduardo Cabello 6, Vigo 36208, Spain
关键词
FUNCTIONAL GRAPHENE OXIDE; IN-VITRO; CELLS; CYTOTOXICITY; COMPOSITE; OXIDATION; BIOCOMPATIBILITY; DIFFERENTIATION; HYDROXYAPATITE; MECHANISMS;
D O I
10.1039/d3ra00981e
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Graphene oxide (GO) has attracted increasing interest for biomedical applications owing to its outstanding properties such as high specific surface area, ability to bind functional molecules for therapeutic purposes and solubility, together with mechanical resistance and good thermal conductivity. The combination of GO with other biomaterials, such as calcium phosphate (CaP) and biodegradable polymers, presents a promising strategy for bone tissue engineering. Presently, the development of these advanced biomaterials benefits from the use of additive manufacturing techniques, such as 3D printing. In this study, we develop a 3D printed PLA:CaP:GO scaffold for bone tissue engineering. First, GO was characterised alone by XPS to determine its main bond contributions and C : O ratio. Secondly, we determined the GO dose which ensures the absence of toxicity, directly exposed in vitro (human osteoblast-like cells MG-63) and in vivo (zebrafish model). In addition, GO was microinjected in the zebrafish to evaluate its effect on immune cells, quantifying the genetic expression of the main markers. Results indicated that the GO tested (C : O of 2.14, 49.50% oxidised, main bonds: C-OH, C-O-C) in a dose <= 0.25 mg mL(-1) promoted MG63 cells viability percentages above 70%, and in a dose <= 0.10 mg mL(-1) resulted in the absence of toxicity in zebrafish embryos. The immune response evaluation reinforced this result. Finally, the optimised GO dose (0.10 mg mL(-1)) was combined with polylactic acid (PLA) and CaP to obtain a 3D printed PLA:CaP:GO scaffold. Physicochemical characterisation (SEM/EDS, XRD, FT-Raman, nano-indentation) was performed and in vivo tests confirmed its biocompatibility, enabling a novel approach for bone tissue-related applications.
引用
收藏
页码:15947 / 15959
页数:13
相关论文
共 68 条
[1]   Mesoporous silica particle embedded functional graphene oxide as an efficient platform for urea biosensing [J].
Abraham, Shiju ;
Ciobota, Valerian ;
Srivastava, Saurabh ;
Srivastava, Sunil K. ;
Singh, Rajesh K. ;
Dellith, Jan ;
Malhotra, B. D. ;
Schmitt, Michael ;
Popp, Juergen ;
Srivastava, Anchal .
ANALYTICAL METHODS, 2014, 6 (17) :6711-6720
[2]   Structural characterization of bioceramics and mineralized tissues based on Raman and XRD techniques [J].
Aguiar, H. ;
Chiussi, S. ;
Lopez-Alvarez, M. ;
Gonzalez, P. ;
Serra, J. .
CERAMICS INTERNATIONAL, 2018, 44 (01) :495-504
[3]   Extracting hydroxyapatite and its precursors from natural resources [J].
Akram, Muhammad ;
Ahmed, Rashid ;
Shakir, Imran ;
Ibrahim, Wan Aini Wan ;
Hussain, Rafaqat .
JOURNAL OF MATERIALS SCIENCE, 2014, 49 (04) :1461-1475
[4]   Purified Graphene Oxide Dispersions Lack In Vitro Cytotoxicity and In Vivo Pathogenicity [J].
Ali-Boucetta, Hanene ;
Bitounis, Dimitrios ;
Raveendran-Nair, Rahul ;
Servant, Ania ;
Van den Bossche, Jeroen ;
Kostarelos, Kostas .
ADVANCED HEALTHCARE MATERIALS, 2013, 2 (03) :433-441
[5]   Neutrophil Function: From Mechanisms to Disease [J].
Amulic, Borko ;
Cazalet, Christel ;
Hayes, Garret L. ;
Metzler, Kathleen D. ;
Zychlinsky, Arturo .
ANNUAL REVIEW OF IMMUNOLOGY, VOL 30, 2012, 30 :459-489
[6]   Graphene oxide induces cardiovascular defects in developing zebrafish (Danio rerio) embryo model: In-vivo toxicity assessment [J].
Bangeppagari, Manjunatha ;
Park, Sung Ho ;
Kundapur, Rajesh R. ;
Lee, Sang Joon .
SCIENCE OF THE TOTAL ENVIRONMENT, 2019, 673 (810-820) :810-820
[7]   Development of new biocompatible 3D printed graphene oxide-based scaffolds [J].
Belaid, Habib ;
Nagarajan, Sakthivel ;
Teyssier, Catherine ;
Barou, Carole ;
Bares, Jonathan ;
Balme, Sebastien ;
Garay, Helene ;
Huon, Vincent ;
Cornu, David ;
Cavailles, Vincent ;
Bechelany, Mikhael .
MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2020, 110
[8]   No cytotoxicity or genotoxicity of graphene and graphene oxide in murine lung epithelial FE1 cells in vitro [J].
Bengtson, Stefan ;
Kling, Kirsten ;
Madsen, Anne Mette ;
Noergaard, Asger W. ;
Jacobsen, Nicklas Raun ;
Clausen, Per Axel ;
Alonso, Beatriz ;
Pesquera, Amaia ;
Zurutuza, Amaia ;
Ramos, Raphael ;
Okuno, Hanako ;
Dijon, Jean ;
Wallin, Hakan ;
Vogel, Ulla .
ENVIRONMENTAL AND MOLECULAR MUTAGENESIS, 2016, 57 (06) :469-482
[9]   A PLA/calcium phosphate degradable composite material for bone tissue engineering: an in vitro study [J].
Charles-Harris, Montse ;
Koch, Martin A. ;
Navarro, Melba ;
Lacroix, Damien ;
Engel, Elisabeth ;
Planell, Josep A. .
JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2008, 19 (04) :1503-1513
[10]   A graphene-based platform for induced pluripotent stem cells culture and differentiation [J].
Chen, G. -Y. ;
Pang, D. W. -P. ;
Hwang, S. -M. ;
Tuan, H. -Y. ;
Hu, Y. -C. .
BIOMATERIALS, 2012, 33 (02) :418-427