Design and 3D bioprinting of interconnected porous scaffolds for bone regeneration. An additive manufacturing approach

被引:41
作者
Roque, Renan [1 ]
Barbosa, Gustavo Franco [2 ]
Guastaldi, Antonio Carlos [3 ]
机构
[1] Sao Paulo State Univ, Dept Bioproc & Biomat Engn, Araraquara Jaui Rd,Km 1, BR-14800901 Araraquara, SP, Brazil
[2] Univ Fed Sao Carlos, Dept Mech Engn, Washington Luis Rd,Km 235, BR-13565905 Sao Carlos, SP, Brazil
[3] Sao Paulo State Univ, Dept Chem, Prof Francisco Degni St 55, BR-14800060 Araraquara, SP, Brazil
关键词
3D bioprinting; Scaffolds; Pneumatic gelling liquid extrusion; Bone regeneration; MECHANICAL-PROPERTIES; TISSUE; FABRICATION; DEPOSITION;
D O I
10.1016/j.jmapro.2021.01.057
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Scaffolds are very important element for bone regeneration issues. On this way, the purpose of this paper is the design and manufacturing of porous scaffolds fabricated by 3D printing technology from biodegradable thermoplastic polymers and calcium phosphates (in micrometric scale). So, the main aim of this research is to obtain complex porous 3D structures that present adequate mechanical properties in relation to bones, through a structured interconnectivity between the pores. Based on the 3D models of the designed scaffolds, selection and preparation of the biomaterials, the process parameters were set in order to provide conditions for the scaffolds? manufacturing. Using an additive manufacturing technology of pneumatic gelling liquid extrusion, with a bioprinter that uses pneumatic distribution system for continuous extrusion of material, two models of designed scaffolds were 3D printed and characterized by mechanical compression analyses and then, evaluated by Scanning Electron Microscopy (SEM) method. Results of Linear Static Analysis (LSA) showed that the 3D designed scaffolds meet the specifications required in the literature for specific rigidity (20?141 MPa). The stress x strain curves showed that the compressive strength values of the composite biomaterial used for all tested coupons are within the values described in the literature for trabecular bone application (range from 2 to 12 MPa). In addition, the pore sizes proven by micrographs have been within the range of application for tissue engineering (20?850 ?m), as mentioned by the literature too. Also, the SEM showed the repeatability related to the interconnectivity between pores, based on homogeneous and uniform structures, regarding adhesion between layers, dimensions of pores and constant extruded filament. Thus, development and applications of the biomaterial composed by Polycaprolactone and Amorphous Calcium Phosphate (PCL + ACP) faced to the additive manufacturing method used to perform the printing of designed scaffolds, can be considered a potential and promising novelty for application in tissue engineering field.
引用
收藏
页码:655 / 663
页数:9
相关论文
共 45 条
[1]   Framework for optimal design of porous scaffold microstructure by computational simulation of bone regeneration [J].
Adachi, T ;
Osako, Y ;
Tanaka, M ;
Hojo, M ;
Hollister, SJ .
BIOMATERIALS, 2006, 27 (21) :3964-3972
[2]   3D printing: a critical review of current development and future prospects [J].
Ali, Md. Hazrat ;
Batai, Shaheidula ;
Sarbassov, Dastan .
RAPID PROTOTYPING JOURNAL, 2019, 25 (06) :1108-1126
[3]   Investigation of the mechanical properties and porosity relationships in fused deposition modelling-fabricated porous structures [J].
Ang, Ker Chin ;
Leong, Kah Fai ;
Chua, Chee Kai ;
Chandrasekaran, Margam .
RAPID PROTOTYPING JOURNAL, 2006, 12 (02) :100-105
[4]  
[Anonymous], 2013, F215013 ASTM
[5]  
[Anonymous], 2015, EXTRUSION BIOPRINTIN
[6]  
Bellani CF, 2013, ANALISE MORFOLOGIA C
[7]   Application of scaffolds for bone regeneration strategies: Current trends and future directions [J].
Billstrom, Gry Hulsart ;
Blom, Ashley W. ;
Larsson, Sune ;
Beswick, Andrew D. .
INJURY-INTERNATIONAL JOURNAL OF THE CARE OF THE INJURED, 2013, 44 :S28-S33
[8]   3D Printing of Porous Scaffolds with Controlled Porosity and Pore Size Values [J].
Buj-Corral, Irene ;
Bagheri, Ali ;
Petit-Rojo, Oriol .
MATERIALS, 2018, 11 (09)
[9]  
Canessa E, 2013, 3D PRINTING SCI ED S
[10]  
Carvalho MM, 2007, COBEF RS, V6o