A 3D Bioprinted Pseudo-Bone Drug Delivery Scaffold for Bone Tissue Engineering

被引:54
作者
Kondiah, Pariksha Jolene [1 ]
Kondiah, Pierre P. D. [1 ]
Choonara, Yahya E. [1 ]
Marimuthu, Thashree [1 ]
Pillay, Viness [1 ]
机构
[1] Univ Witwatersrand, Dept Pharm & Pharmacol, Wits Adv Drug Delivery Platform Res Unit, Sch Therapeut Sci,Fac Hlth Sci, 7 York Rd, ZA-2193 Parktown, South Africa
基金
新加坡国家研究基金会;
关键词
3D bioprinting; polymeric ink; optimization; pseudo-bone; implantable scaffold; computer-aided design (CAD) design; drug delivery; IN-VITRO;
D O I
10.3390/pharmaceutics12020166
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
A 3D bioprinted pseudo-bone drug delivery scaffold was fabricated to display matrix strength, matrix resilience, as well as porous morphology of healthy human bone. Computer-aided design (CAD) software was employed for developing the 3D bioprinted scaffold. Further optimization of the scaffold was undertaken using MATLAB(R) software and artificial neural networks (ANN). Polymers employed for formulating the 3D scaffold comprised of polypropylene fumarate (PPF), free radical polymerized polyethylene glycol- polycaprolactone (PEG-PCL-PEG), and pluronic (PF127). Simvastatin was incorporated into the 3D bioprinted scaffolds to further promote bone healing and repair properties. The 3D bioprinted scaffold was characterized for its chemical, morphological, mechanical, and in vitro release kinetics for evaluation of its behavior for application as an implantable scaffold at the site of bone fracture. The ANN-optimized 3D bioprinted scaffold displayed significant properties as a controlled release platform, demonstrating drug release over 20 days. The 3D bioprinted scaffold further displayed formation as a pseudo-bone matrix, using a human clavicle bone model, induced with a butterfly fracture. The strength of the pseudo-bone matrix, evaluated for its matrix hardness (MH) and matrix resilience (MR), was evaluated to be as strong as original bone, having a 99% MH and 98% MR property, to healthy human clavicle bones.
引用
收藏
页数:17
相关论文
共 31 条
[1]   A neural network based dynamic forecasting model for Trend Impact Analysis [J].
Agami, Nedaa ;
Atiya, Amir ;
Saleh, Mohamed ;
El-Shishiny, Hisham .
TECHNOLOGICAL FORECASTING AND SOCIAL CHANGE, 2009, 76 (07) :952-962
[2]   Three-dimensional inkjet biofabrication based on designed images [J].
Arai, Kenichi ;
Iwanaga, Shintaroh ;
Toda, Hideki ;
Genci, Capi ;
Nishiyama, Yuichi ;
Nakamura, Makoto .
BIOFABRICATION, 2011, 3 (03)
[3]   Synthesis and characterization of triblock copolymers of methoxy poly(ethylene glycol) and poly(propylene fumarate) [J].
Behravesh, E ;
Shung, AK ;
Jo, S ;
Mikos, AG .
BIOMACROMOLECULES, 2002, 3 (01) :153-158
[4]   Effects of low-level laser therapy on bone healing of critical-size defects treated with bovine bone graft [J].
Bosco, Alvaro Francisco ;
Faleiros, Paula Lazilha ;
Carmona, Luana Rodrigues ;
Garcia, Valdir Gouveia ;
Theodoro, Leticia Helena ;
de Araujo, Nathalia Januario ;
Hitomi Nagata, Maria Jose ;
de Almeida, Juliano Milanezi .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY B-BIOLOGY, 2016, 163 :303-310
[5]   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)
[6]   Fibrin as a Multipurpose Physiological Platform for Bone Tissue Engineering and Targeted Delivery of Bioactive Compounds [J].
Bujoli, Bruno ;
Scimeca, Jean-Claude ;
Verron, Elise .
PHARMACEUTICS, 2019, 11 (11)
[7]   Cellularized versus decellularized scaffolds for bone regeneration [J].
Caetano, Guilherme ;
Violante, Ricardo ;
Sant'Ana, Ana Beatriz ;
Murashima, Adriana Batista ;
Domingos, Marco ;
Gibson, Andrew ;
Bartolo, Paulo ;
Frade, Marco Andrey .
MATERIALS LETTERS, 2016, 182 :318-322
[8]   3D-printing and the effect on medical costs: a new era? [J].
Choonara, Yahya E. ;
du Toit, Lisa C. ;
Kumar, Pradeep ;
Kondiah, Pierre P. D. ;
Pillay, Viness .
EXPERT REVIEW OF PHARMACOECONOMICS & OUTCOMES RESEARCH, 2016, 16 (01) :23-32
[9]   Formulation, Colloidal Characterization, and In Vitro Biological Effect of BMP-2 Loaded PLGA Nanoparticles for Bone Regeneration [J].
del Castillo-Santaella, Teresa ;
Ortega-Oller, Inmaculada ;
Padial-Molina, Miguel ;
O'Valle, Francisco ;
Galindo-Moreno, Pablo ;
Belen Jodar-Reyes, Ana ;
Manuel Peula-Garcia, Jose .
PHARMACEUTICS, 2019, 11 (08)
[10]   Scaffolds as Structural Tools for Bone-Targeted Drug Delivery [J].
Ferracini, Riccardo ;
Herreros, Isabel Martinez ;
Russo, Antonio ;
Casalini, Tommaso ;
Rossi, Filippo ;
Perale, Giuseppe .
PHARMACEUTICS, 2018, 10 (03)