Mechanical Behaviour Evaluation of Porous Scaffold for Tissue-Engineering Applications Using Finite Element Analysis
Abstract
:1. Introduction
2. Materials and Methods
2.1. Basic Properties of BNNTs with Gelatin and Alginate Scaffold
2.2. Representative Volume Elements (RVE)
2.3. Finite Element Analysis (FEA)
2.4. Boundary Conditions
2.5. Experimental
3. Results
3.1. Mesh Generation
3.2. Mechanical properties
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Giannitelli, S.M.; Accoto, D.; Trombetta, M.; Rainer, A. Current trends in the design of scaffolds for computer-aided tissue engineering. Acta Biomater. 2014, 10, 580–594. [Google Scholar] [CrossRef] [PubMed]
- Melchels, F.P.W.; Barradas, A.M.C.; van Blitterswijk, C.A.; de Boer, J.; Feijen, J.; Grijpma, D.W. Effects of the architecture of tissue engineering scaffolds on cell seeding and culturing. Acta Biomater. 2010, 6, 4208–4217. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Pires, T.; Santos, J.; Ruben, R.B.; Gouveia, B.P.; Castro, A.P.G.; Fernandes, P.R. Numerical-experimental analysis of the permeability-porosity relationship in triply periodic minimal surfaces scaffolds. J. Biomech. 2021, 117, 110263. [Google Scholar] [CrossRef] [PubMed]
- Ibañez, R.I.R.; do Amaral, R.J.F.C.; Reis, R.L.; Marques, A.P.; Murphy, C.M.; O’Brien, F.J. 3D-Printed Gelatin Methacrylate Scaffolds with Controlled Architecture and Stiffness Modulate the Fibroblast Phenotype towards Dermal Regeneration. Polymers 2021, 13, 2510. [Google Scholar] [CrossRef] [PubMed]
- Karageorgi, V.; Kalpan, D. Porosity of 3D biomaterial scaffolds and osteogenesis. Biomaterials 2005, 26, 5474–5491. [Google Scholar] [CrossRef]
- Soufivand, A.A.; Abolfathi, N.; Hashemi, S.A.; Lee, S.J. Prediction of mechanical behavior of 3D bioprinted tissue-engineered scaffolds using finite element method (FEM) analysis. Addit. Manuf. 2020, 33, 101181. [Google Scholar] [CrossRef]
- Gómez, S.; Vlad, M.D.; López, J.; Fernández, E. Design and properties of 3D scaffolds for bone tissue engineering. Acta Biomater. 2016, 42, 341–350. [Google Scholar] [CrossRef]
- Adachi, T.; Osako, Y.; Tanaka, M.; Hojo, M.; Hollister, S.J. Framework for optimal design of porous scaffold microstructure by computational simulation of bone regeneration. Biomaterials 2006, 27, 3964–3972. [Google Scholar] [CrossRef]
- Oladapo, B.I.; Zahedi, S.A.; Ismail, S.O.; Olawade, D.B. Recent advances in biopolymeric composite materials: Future sustainability of bone-implant. Renew. Sustain. Energy Rev. 2021, 150, 111505. [Google Scholar] [CrossRef]
- Childs, P.G.; Boyle, C.A.; Pemberton, G.D.; Nikukar, H.; Curtis, A.S.G.; Henriquez, F.L.; Dalby, M.J.; Reid, S. Use of nanoscale mechanical stimulation for control and manipulation of cell behaviour. Acta Biomater. 2016, 34, 159–168. [Google Scholar] [CrossRef]
- Hao, M.; Wei, C.; Liu, X.; Ge, Y.; Cai, J. Quantitative evaluation on mechanical characterization of Ti6Al4V porous scaffold designed based on Weaire-Phelan structure via experimental and numerical analysis methods. J. Alloys Compd. 2021, 885, 160234. [Google Scholar] [CrossRef]
- Jin, Y.; Chai, W.; Huang, Y. Printability study of hydrogel solution extrusion in nanoclay yield-stress bath during printing-then-gelation biofabrication. Mater. Sci. Eng. C 2017, 80, 313–325. [Google Scholar] [CrossRef] [PubMed]
- Curti, F.; Stancu, I.-C.; Voicu, G.; Iovu, H.; Dobrita, C.-I.; Ciocan, L.T.; Marinescu, R.; Iordache, F. Development of 3D Bioactive Scaffolds through 3D Printing Using Wollastonite–Gelatin Inks. Polymers 2020, 12, 2420. [Google Scholar] [CrossRef] [PubMed]
- Holzwarth, J.M.; Ma, P.X. Biomimetic nanofibrous scaffolds for bone tissue engineering. Biomaterials 2011, 32, 9622–9629. [Google Scholar] [CrossRef] [Green Version]
- Müller, M.; Becher, J.; Schnabelrauch, M.; Zenobi-Wong, M. Nanostructured Pluronic hydrogels as bioinks for 3D bioprinting. Biofabrication 2015, 7, 35006. [Google Scholar] [CrossRef]
- Gong, Y.; Wang, F.; Al-Furjan, M.S.H.; Shan, L.; He, J.; Bian, X.; Bi, Z.; Liu, H.; Li, W.; Shao, H.; et al. Experimental Investigation and Optimal 3D Bioprinting Parameters of SA-Gel Porous Cartilage Scaffold. Appl. Sci. 2020, 10, 768. [Google Scholar] [CrossRef] [Green Version]
- Ostrowska, B.; Di Luca, A.; Moroni, L.; Swieszkowski, W. Influence of internal pore architecture on biological and mechanical properties of three-dimensional fiber deposited scaffolds for bone regeneration. J. Biomed. Mater. Res. Part A 2016, 104, 991–1001. [Google Scholar] [CrossRef]
- Sun, K.; Li, R.; Li, H.; Fan, M.; Li, H. Analysis and Demonstration of a Scaffold Finite Element Model for Cartilage Tissue Engineering. ACS Omega 2020, 5, 32411–32419. [Google Scholar] [CrossRef]
- Uth, N.; Mueller, J.; Smucker, B.; Yousefi, A.-M. Validation of scaffold design optimization in bone tissue engineering: Finite element modeling versus designed experiments. Biofabrication 2017, 9, 015023. [Google Scholar] [CrossRef] [Green Version]
- Mustafa, N.S.; Akhmal, N.H.; Izman, S.; Ab Talib, M.H.; Shaiful, A.I.M.; Omar, M.N.B.; Yahaya, N.Z.; Illias, S. Application of Computational Method in Designing a Unit Cell of Bone Tissue Engineering Scaffold: A Review. Polymers 2021, 13, 1584. [Google Scholar] [CrossRef]
- Rodríguez-Montaño, Ó.L.; Cortés-Rodríguez, C.J.; Uva, A.E.; Fiorentino, M.; Gattullo, M.; Manghisi, V.M.; Boccaccio, A. An Algorithm to Optimize the Micro-Geometrical Dimensions of Scaffolds with Spherical Pores. Materials 2020, 13, 4062. [Google Scholar] [CrossRef] [PubMed]
- De Santis, R.; Russo, T.; Rau, J.V.; Papallo, I.; Martorelli, M.; Gloria, A. Design of 3D Additively Manufactured Hybrid Structures for Cranioplasty. Materials 2021, 14, 181. [Google Scholar] [CrossRef] [PubMed]
- Mohonee, V.K.; Lim Goh, K.; Mishnaevsky, L.; Pasbakhsh, P. Capsule based self-healing composites: New insights on mechanical behaviour based on finite element analysis. Comput. Mater. Sci. 2021, 192, 110203. [Google Scholar] [CrossRef]
- Mirtaghavi, A.; Luo, J.; Muthuraj, R. Recent Advances in Porous 3D Cellulose Aerogels for Tissue Engineering Applications: A Review. J. Compos. Sci. 2020, 4, 152. [Google Scholar] [CrossRef]
- Miranda, P.; Pajares, A.; Guiberteau, F. Finite element modeling as a tool for predicting the fracture behavior of robocast scaffolds. Acta Biomater. 2008, 4, 1715–1724. [Google Scholar] [CrossRef]
- Hashemi, S.A.; Esmaeili, S.; Ghadirinejad, M.; Saber-Samandari, S.; Sheikhbahaei, E.; Kordjamshidi, A.; Khandan, A. Micro-Finite Element Model to Investigate the Mechanical Stimuli in Scaffolds Fabricated via Space Holder Technique for Cancellous Bone. ADMT J. 2020, 13, 51–58. [Google Scholar]
- Ali, D.; Sen, S. Finite element analysis of mechanical behavior, permeability and fluid induced wall shear stress of high porosity scaffolds with gyroid and lattice-based architectures. J. Mech. Behav. Biomed. Mater. 2017, 75, 262–270. [Google Scholar] [CrossRef]
- Bagde, A.D.; Kuthe, A.M.; Nagdeve, S.R.; Dahake, S.W.; Sapkal, P.S.; Daronde, S.B.; Lande, N.H.; Sarode, B.D. Geometric Modeling and Finite Element Simulation for Architecture Design of 3D Printed Bio-ceramic Scaffold Used in Bone Tissue Engineering. J. Indian Inst. Sci. 2019, 99, 361–374. [Google Scholar] [CrossRef]
- Patel, R.; Lu, M.; Diermann, S.H.; Wu, A.; Pettit, A.; Huang, H. Deformation behavior of porous PHBV scaffold in compression: A finite element analysis study. J. Mech. Behav. Biomed. Mater. 2019, 96, 1–8. [Google Scholar] [CrossRef]
- Jiang, T.; Shang, J.; Tang, L.; Wang, Z. Thickness optimization of auricular silicone scaffold based on finite element analysis. J. Mech. Behav. Biomed. Mater. 2016, 53, 397–402. [Google Scholar] [CrossRef]
- Blázquez-Carmona, P.; Sanz-Herrera, J.A.; Martínez-Vázquez, F.J.; Domínguez, J.; Reina-Romo, E. Structural optimization of 3D-printed patient-specific ceramic scaffolds for in vivo bone regeneration in load-bearing defects. J. Mech. Behav. Biomed. Mater. 2021, 121, 104613. [Google Scholar] [CrossRef] [PubMed]
- Agrawal, R.; Nieto, A.; Chen, H.; Mora, M.; Agarwal, A. Nanoscale Damping Characteristics of Boron Nitride Nanotubes and Carbon Nanotubes Reinforced Polymer Composites. ACS Appl. Mater. Interfaces 2013, 5, 12052–12057. [Google Scholar] [CrossRef] [PubMed]
- Chung, C.; Kim, Y.K.; Shin, D.; Ryoo, S.R.; Hong, B.H.; Min, D.H. Biomedical applications of graphene and graphene oxide. Acc. Chem. Res. 2013, 46, 2211–2224. [Google Scholar] [CrossRef]
- Fiedler, T.; Belova, I.V.; Murch, G.E.; Roether, J.A.; Boccaccini, A.R. Tailoring elastic properties of PLGA/TiO2 biomaterials. Comput. Mater. Sci. 2012, 61, 283–286. [Google Scholar] [CrossRef]
- Du, X.; Dehghani, M.; Alsaadi, N.; Nejad, M.G.; Saber-Samandari, S.; Toghraie, D.; Su, C.-H.; Nguyen, H.C. A femoral shape porous scaffold bio-nanocomposite fabricated using 3D printing and freeze-drying technique for orthopedic application. Mater. Chem. Phys. 2022, 275, 125302. [Google Scholar] [CrossRef]
- Weidt, D.; Figiel, Ł. Finite strain compressive behaviour of CNT/epoxy nanocomposites: 2D versus 3D RVE-based modelling. Comput. Mater. Sci. 2014, 82, 298–309. [Google Scholar] [CrossRef] [Green Version]
- Gaharwar, A.K.; Peppas, N.A.; Khademhosseini, A. Nanocomposite hydrogels for biomedical applications. Biotechnol. Bioeng. 2014, 111, 441–453. [Google Scholar] [CrossRef] [Green Version]
- Warheit, D.B. Comparative Pulmonary Toxicity Assessment of Single-wall Carbon Nanotubes in Rats. Toxicol. Sci. 2003, 77, 117–125. [Google Scholar] [CrossRef] [Green Version]
- Lam, C.-W. Pulmonary Toxicity of Single-Wall Carbon Nanotubes in Mice 7 and 90 Days after Intratracheal Instillation. Toxicol. Sci. 2003, 77, 126–134. [Google Scholar] [CrossRef] [Green Version]
- Kostoglou, N.; Tampaxis, C.; Charalambopoulou, G.; Constantinides, G.; Ryzhkov, V.; Doumanidis, C.; Matovic, B.; Mitterer, C.; Rebholz, C. Boron Nitride Nanotubes Versus Carbon Nanotubes: A Thermal Stability and Oxidation Behavior Study. Nanomaterials 2020, 10, 2435. [Google Scholar] [CrossRef]
- Sedigh, P.; Zare, A.; Montazeri, A. Evolution in aluminum applications by numerically-designed high strength boron-nitride/Al nanocomposites. Comput. Mater. Sci. 2020, 171, 109227. [Google Scholar] [CrossRef]
- Akesh Babu, K.; Cin, K.; Wei, K.; Ing, K.; Kakarla, A.B.; Kong, C.; Kong, W.; Kong, I. Synthesis and Characterization of Boron Nitride Nanotubes-Polycaprolactone Nanocomposite. Mater. Sci. Forum 2019, 951, 39–44. [Google Scholar] [CrossRef]
- Nagarajan, S.; Belaid, H.; Pochat-Bohatier, C.; Teyssier, C.; Iatsunskyi, I.; Coy, E.; Balme, S.; Cornu, D.; Miele, P.; Kalkura, N.S.; et al. Design of Boron Nitride/Gelatin Electrospun Nanofibers for Bone Tissue Engineering. ACS Appl. Mater. Interfaces 2017, 9, 33695–33706. [Google Scholar] [CrossRef] [PubMed]
- Ali, D.; Sen, S. Finite element analysis of the effect of boron nitride nanotubes in beta tricalcium phosphate and hydroxyapatite elastic modulus using the RVE model. Compos. Part B Eng. 2016, 90, 336–340. [Google Scholar] [CrossRef]
- Lu, X.; Nautiyal, P.; Bustillos, J.; Loganathan, A.; Zhang, C.; Chen, Y.; Boesl, B.; Agarwal, A. Hydroxylated boron nitride nanotube-reinforced polyvinyl alcohol nanocomposite films with simultaneous improvement of mechanical and thermal properties. Polym. Compos. 2020, 41, 5182–5194. [Google Scholar] [CrossRef]
- Ceccaldi, C.; Fullana, S.G.; Alfarano, C.; Lairez, O.; Calise, D.; Cussac, D.; Parini, A.; Sallerin, B. Alginate Scaffolds for Mesenchymal Stem Cell Cardiac Therapy: Influence of Alginate Composition. Cell Transplant. 2012, 21, 1969–1984. [Google Scholar] [CrossRef] [Green Version]
- Czerner, M.; Fellay, L.S.; Suárez, M.P.; Frontini, P.M.; Fasce, L.A. Determination of Elastic Modulus of Gelatin Gels by Indentation Experiments. Procedia Mater. Sci. 2015, 8, 287–296. [Google Scholar] [CrossRef] [Green Version]
- Kakarla, A.B.; Kong, I.; Turek, I.; Kong, C.; Irving, H. Printable gelatin, alginate and boron nitride nanotubes hydrogel-based ink for 3D bioprinting and tissue engineering applications. Mater. Des. 2022, 213, 110362. [Google Scholar] [CrossRef]
- Oladapo, B.I.; Ismail, S.O.; Adebiyi, A.V.; Omigbodun, F.T.; Olawumi, M.A.; Olawade, D.B. Nanostructural interface and strength of polymer composite scaffolds applied to intervertebral bone. Colloids Surfaces A Physicochem. Eng. Asp. 2021, 627, 127190. [Google Scholar] [CrossRef]
- Li, L.; Qin, S.; Peng, J.; Chen, A.; Nie, Y.; Liu, T.; Song, K. Engineering gelatin-based alginate/carbon nanotubes blend bioink for direct 3D printing of vessel constructs. Int. J. Biol. Macromol. 2020, 145, 262–271. [Google Scholar] [CrossRef]
- Serrano-Aroca, Á.; Iskandar, L.; Deb, S. Green synthetic routes to alginate-graphene oxide composite hydrogels with enhanced physical properties for bioengineering applications. Eur. Polym. J. 2018, 103, 198–206. [Google Scholar] [CrossRef] [Green Version]
- Sakuma, I.; Nishimura, Y.; Chui, C.K.; Kobayashi, E.; Inada, H.; Chen, X.; Hisada, T. In Vitro Measurement of Mechanical Properties of Liver Tissue under Compression and Elongation Using a New Test Piece Holding Method with Surgical Glue BT—Surgery Simulation and Soft Tissue Modeling; Ayache, N., Delingette, H., Eds.; Springer: Berlin/Heidelberg, Germany, 2003; pp. 284–292. [Google Scholar]
- Pervin, F.; Chen, W.W.; Weerasooriya, T. Dynamic compressive response of bovine liver tissues. J. Mech. Behav. Biomed. Mater. 2011, 4, 76–84. [Google Scholar] [CrossRef] [PubMed]
- Holzapfel, G.A. Biomechanics of Soft Tissue. In Handbook of Materials Behavior Models; Elsevier: Amsterdam, The Netherlands, 2001; pp. 1057–1071. [Google Scholar]
- Ambu, R.; Morabito, A. Porous Scaffold Design Based on Minimal Surfaces: Development and Assessment of Variable Architectures. Symmetry 2018, 10, 361. [Google Scholar] [CrossRef] [Green Version]
- Smith, M.; Guan, Z.; Cantwell, W.J. Finite element modelling of the compressive response of lattice structures manufactured using the selective laser melting technique. Int. J. Mech. Sci. 2013, 67, 28–41. [Google Scholar] [CrossRef]
- Maskery, I.; Aremu, A.O.; Parry, L.; Wildman, R.D.; Tuck, C.J.; Ashcroft, I.A. Effective design and simulation of surface-based lattice structures featuring volume fraction and cell type grading. Mater. Des. 2018, 155, 220–232. [Google Scholar] [CrossRef]
- Bružauskaitė, I.; Bironaitė, D.; Bagdonas, E.; Bernotienė, E. Scaffolds and cells for tissue regeneration: Different scaffold pore sizes—Different cell effects. Cytotechnology 2016, 68, 355–369. [Google Scholar] [CrossRef] [Green Version]
- Griffon, D.; Sedighi, M.; Schaeffer, D.; Eurell, J.; Johnson, A. Chitosan scaffolds: Interconnective pore size and cartilage engineering. Acta Biomater. 2006, 2, 313–320. [Google Scholar] [CrossRef] [PubMed]
Properties | Alginate (A) | Gelatin (G) | Boron Nitride Nanotubes |
---|---|---|---|
Young’s modulus | 30 kPa [46] | 39 kPa [47] | 1300 kPa [44] |
Poisson’s ratio | 0.4 | 0.33 | 0.35 |
Young’s modulus X-direction | 0.14 MPa |
Young’s modulus Y-direction | 0.12 MPa |
Young’s modulus Z-direction | 0.16 MPa |
Poisson’s ratio | 0.33 |
Parameter | Scaffold |
---|---|
Cell size | L = 2 mm d = 2.82 mm |
Pore area (mm2) | 8 |
Porous volume (mm3) | 4 |
Total volume (mm3) | 100 |
Surface area (mm2) | 240 |
Porosity (%) | 84 |
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Kakarla, A.B.; Kong, I.; Nukala, S.G.; Kong, W. Mechanical Behaviour Evaluation of Porous Scaffold for Tissue-Engineering Applications Using Finite Element Analysis. J. Compos. Sci. 2022, 6, 46. https://doi.org/10.3390/jcs6020046
Kakarla AB, Kong I, Nukala SG, Kong W. Mechanical Behaviour Evaluation of Porous Scaffold for Tissue-Engineering Applications Using Finite Element Analysis. Journal of Composites Science. 2022; 6(2):46. https://doi.org/10.3390/jcs6020046
Chicago/Turabian StyleKakarla, Akesh Babu, Ing Kong, Satya Guha Nukala, and Win Kong. 2022. "Mechanical Behaviour Evaluation of Porous Scaffold for Tissue-Engineering Applications Using Finite Element Analysis" Journal of Composites Science 6, no. 2: 46. https://doi.org/10.3390/jcs6020046