Different Geometry Design Structures of Tissue Scaffolds for Additive Manufacturing
Subject Areas :
additive manufacturing
amirhossein Ehsani
1
,
sadegh rahmati
2
,
Mohammad Nikkhoo
3
,
Shahram Etemadi Haghighi
4
,
Mohammad Haghpanahi
5
1 - Department of Mechanical Engineering,
Science and Research Branch, Islamic Azad University, Tehran, Iran
2 - Department of Biomedical Engineering,
Science and Research Branch, Islamic Azad University, Tehran, Iran
3 - Department of Biomedical Engineering,
Science and Research Branch, Islamic Azad University, Tehran, Iran
4 - Department of Mechanical Engineering,
Science and Research Branch, Islamic Azad University, Tehran, Iran
5 - Biomechanics Group, Department of Mechanical Engineering,
Iran University of Science and Technology, Tehran, Iran
Received: 2021-07-27
Accepted : 2021-09-21
Published : 2021-12-01
Keywords:
References:
Pina, S., Oliveira, J., and Reis, R., Natural‐Based Nanocomposites for Bone Tissue Engineering and Regenerative Medicine: A Review, Advanced Materials, Vol. 27, No. 7, 1986, pp. 1143- 1169.
Bose, S., Vahabzadeh, S., and Bandyopadhyay A., Bone tissue engineering using 3D printing, Materials Today, 16, No. 12, 2013, pp. 496- 504.
Lichte, P., Pape, H., Pufe, T., Scaffolds for bone healing: concepts, Materials and evidence Injury, 42, No. 6, 2011, pp. 569- 573.
Polo-Corrales, L., Latorre-Esteves, M., and Ramirez-Vick., J.E., Scaffold design for bone regeneration, Nanoscience and Nanotechnology, 14, No. 1, 2014, pp. 15.
Roseti, L., Parisi, V., Petretta, M., Scaffolds for Bone Tissue Engineering: State of the art and new perspectives, Mater Sci Eng C Mater Biol Appl, 1, No. 78, 2017, pp. 1246- 1262.
Szojka, A., Lalh, K.H.J., Andrews, S., Biomimetic 3D printed scaffolds for meniscus tissue engineering, Bioprinting, 8, No. 1, 2017, pp. 1- 7.
Agarwal, R., and García, J.A., Biomaterial strategies for engineering implants for enhanced osseointegration and bone repair, Advanced Drug Delivery Reviews, 1, No. 98, 2015, pp. 53- 62.
Guo, B., Lei, B., Li, P., Functionalized scaffolds to enhance tissue regeneration, Regenerative biomaterials, 1, No. 2, 2015, pp. 47- 57.
Wu, S., Liu, X., Yeung, K.W., Biomimetic porous scaffolds for bone tissue engineering, Materials Science and Engineering: R: Reports, 80, No. 1, 2014, pp. 1- 36.
Fereshteh, Z., Nooeaid, P., Fathi, M., The effect of coating type on mechanical properties and controlled drug release of PCL/zein coated 45S5 bioactive glass scaffolds for bone tissue engineering, Materials Science and Engineering : C, 1, No. 54, 2015, pp. 50- 60.
Sadeghpour, S., Amirjani, A., Hafezi, M., Fabrication of a novel nanostructured calcium zirconium silicate scaffolds prepared by a freeze-casting method for bone tissue engineering, Ceramics International, 40, No. 10, 2014, pp. 16107- 16114.
Gentile, P., Chiono, V., Carmagnola, I., An overview of poly (lactic-co-glycolic) acid (PLGA)- based biomaterials for bone tissue engineering, International journal of molecular sciences, 3, No. 15, 2014, pp. 13640- 3659.
Rajzer, I., Menaszek, E., Kwiatkowski, R., Electrospun gelatin/poly (ε-caprolactone) fibrous scaffold modified with calcium phosphate for bone tissue engineering, Materials Science and Engineering : C, 1, No. 44, 2014, pp. 183- 190.
Sadiasa, A., Nguyen, T.H., and Lee, B.T., In vitro and in vivo evaluation of porous PCL-PLLA 3D polymer scaffolds fabricated via salt leaching method for bone tissue engineering applications, Journal of Biomaterials Science,Polymer, 2, No. 25, 2013, pp. 150- 167.
Yeong, W.Y., Chua, C.K., Leong, K.F., Rapid prototyping in tissue engineering: challenges and potential, Trends Biotechnol, 22, No. 12, 2004, pp. 643- 652.
Vaezi, M., Seitz. H., and Yang, S. A., review on 3D micro-additive manufacturing technologies, International Journal of Advanced Manufacturing Technology, 1, No. 67, 2013, pp. 1721- 1754.
Leong, K.F., Cheah, C.M., and Chua, C.K., Solid freeform fabrication of three-dimensional scaffolds for engineering replacement tissues and organs, Biomaterials, 13, No. 24, 2003, pp. 2363- 2378.
Scott Crump S. Apparatus and method for creating three-dimensional objects. Patent 5121329, USA, 2014.
Upcraft, S., and Fletcher, R., The rapid prototyping technologies. Materials Science, Assembly Automation, 4, No. 23, 2003, pp. 318- 330.
Gómez, S., Vlad, M.D., Lopez, J., Design and properties of 3D scaffolds for bone tissue engineering, Acta Biomater, 1, No. 42, 2016, pp. 341- 350.
Williams, J.M., Adewunmi, A., Schek, R.M., Bone tissue engineering using polycaprolactone scaffolds fabricated via selective laser sintering, Biomaterials, 23, No. 26, 2005, pp. 4817- 4827.
Shuai, C., Mao, Z., Lu, H., Fabrication of porous polyvinyl alcohol scaffold for bone tissue engineering via selective laser sintering, Biofabrication, 1, No. 5, 2013, pp. 14- 15.
Eydivand, M.A., Hashjin, M.S, Farzad, A., Effect of technical parameters on porous structure and strength of 3D printed calcium sulfate prototypes, Robotics and Computer-Integrated Manufacturing, 37, No. 1, 2016, pp. 57- 67.
Farzadi, A., Waran, V., Hashjin, M.S., Effect of layer printing delay on mechanical properties and dimensional accuracy of 3D printed porous prototypes in bone tissue engineering, Ceramics International, 41, No. 1, 2015, pp. 8320- 8330.
Viana, T., Biscaia, S., Almeida, H.A., Permeability evaluation of laydown patterns and pore size of PCL scaffolds, Procedia Engineering, 59, No. 1, 2013, pp. 255- 262.
Feng, P., Meng, X., Chen, J.F., Mechanical properties of structures 3D printed with cementitious powders, Construction and Building Materials, 93, No. 1, 2015, pp. 486- 497.
Speirs, M., Hooreweder, B.V., Humbeeck, J.V., Fatigue behaviour of NiTi shape memory alloy scaffolds produced by SLM, a unit cell design comparison, Journal of the Mechanical Behaviour of Biomedical Materials, 70, No. 1, 2017, pp. 53- 59.
Kadkhodapour, J., Montazerian, H., Darabi, A.C., Failure mechanisms of additively manufactured porous biomaterials: effects of porosity and type of unit cell, Journal of the Mechanical Behaviour of Biomedical Materials, 50, No. 1, 2015, pp. 180- 191.
Bohner, M., Loosli, Y., Baroud, G., Commentary: deciphering the link between architecture and biological response of a bone graft substitute, Acta biomaterial, 7, No. 2, 2011, pp. 478- 484.
Liu, C., Xia, Z., and Czernuszka, J., Design and development of three-dimensional scaffolds for tissue engineering, Chemical Engineering Research and Design, 85, No. 7, 2007, pp. 1051- 1064.
Singhvi, M.S., Zinjarde, S.S., and Gokhale, D.V., Polylactic acid: Synthesis and biomedical applications, Appl Microbiol, 127, No. 1, 2019, pp. 1612- 1626.
ASTM D695-02a:2002. Standard Test Method for Compressive Properties of Rigid Plastic.
Farah, S., Anderson, D.G., and Langer, R., Physical and mechanical properties of PLA, and their functions in widespread applications - A comprehensive review, Adv Drug Deliv Rev, 107, No. 1, 2016, pp. 367- 392.
Stamboulis, Boccaccini, A.R., and Hench, L.L., Novel Biodegradable Polymer/Bioactive Glass Composites for Tissue Engineering Applications, Advanced Engineering Materials, 4, No. 3, 2002, pp. 105- 109.
Driscoll, S.B., The Basics of Testing Plastics: Mechanical Properties, Flame Exposure, and General Guidelines, Pennsylvania: Mayfield, 2004, p.25.
Goldstein, S.A., Wilson, D.L., Sonstegard, D.A., The mechanical properties of human tibial trabecular bone as a function of metaphyseal location, Biomech, 16, No. 1, 1983, pp. 965- 969.
Hutmacher, D.W., Scaffolds in tissue engineering bone and cartilage, Biomaterials, Vol. 21, No. 24, 2000, pp. 2529- 2543.