Fabrication of porous polymeric structures using a simple sonication technique for tissue engineering
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Alan Saúl Álvarez-Suarez
, Eduardo Alberto López-Maldonado , Olivia A. Graeve , Fabián Martinez-Pallares , Luis Enrique Gómez-Pineda , Mercedes Teresita Oropeza-Guzmán , Ana Leticia Iglesias , Theodore Ng , Eduardo Serena-Gómez and Luis Jesús Villarreal-Gómez
Abstract
Porous polymeric scaffolds have been applied successfully in the biomedical field. This work explores the use of an ultrasonic probe to generate cavitation in a polymeric solution, thus producing pores in the polymeric scaffolds. Porous polymeric structures with average pore sizes ranging from 5 to 63 μm and porosity of 6–44% were fabricated by a process consisting of sonication, flash freezing, and lyophilization of poly(lactic-co-glycolic acid) (PLGA), gelatin (GEL), chitosan (CS) and poly(vinyl alcohol) (PVAL) solutions. Pore structure was characterized by scanning electron microscopy (SEM) and image analysis software. The infrared spectra were analyzed before and after the fabrication process to observe any change in the chemical structure of the polymers. A water absorption test indicated the susceptibility of the samples to retain water in their structure. TGA results showed that GEL experienced degradation at 225°C, CS had a decomposition peak at 280°C, the thermal decomposition of PLGA occurred at 375°C, and PVAL showed two degradation regions. The DSC analysis showed that the glass transition temperature (Tg) of GEL, CS, PLGA and PVAL occurred at 70°C, 80°C, 60°C and 70°C, respectively. The fabricated porous structures demonstrated similar physical characteristics to those found in bone and cartilage.
Acknowledgment
The authors are grateful for the support by “Programa para el Desarrollo de Personal Docente, Secretaria de EducaciónPublica” (PRODEP-SEP; project no. UABC-PTC-629).
References
[1] Robert JK, Marco NH, Leon EG, Theo HS. Materials 2009, 2, 833–856.10.3390/ma2030833Search in Google Scholar
[2] Karageorgiou V, Kaplan D. Biomaterials 2005, 26, 5474–5491.10.1016/j.biomaterials.2005.02.002Search in Google Scholar
[3] Thomson CR, Shung AK, Yaszemski MJ, Mikos AG, Eds., Principles of Tissue Engineering, 4th ed., Academic Press: San Diego, 2000.Search in Google Scholar
[4] Mikos AG, Temenoff JS. Electron. J. Biotechnol. 2000, 3, 23–24.10.2225/vol3-issue2-fulltext-5Search in Google Scholar
[5] Ma PX. Mater. Today 2000, 7, 30–40.10.1016/S1369-7021(04)00233-0Search in Google Scholar
[6] Holy C, Shoichet M, Davies J. Polymer scaffold having microporous polymer struts defining interconnected macropores. United States; US6379962 B1, 2002.Search in Google Scholar
[7] Langer R, Peppas NA. AIChE J. 2003, 49, 2990–300.10.1002/aic.690491202Search in Google Scholar
[8] Kellomaki M, Niiranen H, Puumanen K, Ashammakhi N, Waris T, Tormala P. Biomaterials 2000, 21, 2495–2505.10.1016/S0142-9612(00)00117-4Search in Google Scholar
[9] Wen Z, Jiaojiao L, Kaixiang J, Wenlong L, Xuefeng Q, Chenrui L. Mater. Sci. Eng. C Mater. Biol. Appl. 2016, 59, 1181–1194.10.1016/j.msec.2015.11.026Search in Google Scholar PubMed
[10] Thais MC, Rosemary AC, Paulo JA, Ana BQ, Javier SF. J. Food Eng. 2008, 87, 191–199.10.1016/j.jfoodeng.2007.11.026Search in Google Scholar
[11] Venkatesan J, Kim SK. Mar. Drugs 2010, 8, 2252–2266.10.3390/md8082252Search in Google Scholar PubMed PubMed Central
[12] Pinto J, Athanassiou A, Fragouli D. J. Phys. D Appl. Phys. 2016, 49, 145601–145608.10.1088/0022-3727/49/14/145601Search in Google Scholar
[13] Yin N, Chen S, Li Z, Ouyang Y, Hu W, Tang L, Zhang W, Zhou B, Yang J, Xu Q, Wang H. Mater. Lett. 2010, 81, 131–134.10.1016/j.matlet.2012.04.133Search in Google Scholar
[14] Petchwattana N, Covavisaruch S. Adv. Mat. Res. 2011, 306–307, 869–873.10.4028/www.scientific.net/AMR.306-307.869Search in Google Scholar
[15] Pavia FC, La Carrubba V, Piccarolo S, Brucato V. J. Biomed. Mater. Res. A 2008, 86, 459–466.10.1002/jbm.a.31621Search in Google Scholar PubMed
[16] Reignier J, Huneault MA. Polymer 2006, 47, 4703–4717.10.1016/j.polymer.2006.04.029Search in Google Scholar
[17] Jiang L, Liu J, Wu D, Li H, Jin R. Thin Solid Films 2006, 510, 241–246.10.1016/j.tsf.2005.12.216Search in Google Scholar
[18] Kausar A. J. Compos. Mater. 2015, 49, 3497–3506.10.1177/0021998314567009Search in Google Scholar
[19] Hulbert SF, Young FA, Mathews RS, Klawitter JJ, Talbert CD, Stelling FH. J. Biomed. Mater. Res. 1970, 4, 433–456.10.1002/jbm.820040309Search in Google Scholar PubMed
[20] Hannink G, Arts JJC. Int. J. Care Injured 2011, 42, S22–S25.10.1016/j.injury.2011.06.008Search in Google Scholar PubMed
[21] Pereira Jr VA, Queiroz de Arruda IN. Food. Hydrocoll. 2015, 44, 180–188.10.1016/j.foodhyd.2014.05.014Search in Google Scholar
[22] Dhandayuthapani B, Yoshida Y, Maekawa T, Kumar DS. Int. J. Polymer Sci. 2011, 2011, 1–19.10.1155/2011/290602Search in Google Scholar
[23] Place ES, George JH, Williams K, Stevens MM, George JH. Chem. Soc. Rev. 2009, 38, 1139–1151.10.1039/b811392kSearch in Google Scholar PubMed
[24] Petrochenko P, Narayan RJ. J. Long Term Eff. Med. Implants 2010, 20, 303–315.10.1615/JLongTermEffMedImplants.v20.i4.50Search in Google Scholar PubMed PubMed Central
[25] Changfeng C, Li L, Tao H, Qiong W, Yue’e F. Int. J. BiolMacromol. 2013, 62, 188–193.10.1016/j.ijbiomac.2013.08.042Search in Google Scholar PubMed
[26] ASTM D570-98(2010)e1, Standard Test Method for Water Absorption of Plastics, ASTM International: West Conshohocken, PA, 2010, www.astm.org.Search in Google Scholar
[27] Torres-Sanchez C, Corney JR. Ultrason. Sonochem. 2008, 15, 408–415.10.1016/j.ultsonch.2007.05.002Search in Google Scholar PubMed
[28] Filipczak K, Janik I, Kozicki M, Ulanski P, Rosiak JM, Pajewski LA, Olkowski R, Wozniak P, Chroscicka A, Lewandowska-Szumiel M. E. Polym. 2005, 5, 1, 110–122.10.1515/epoly.2005.5.1.110Search in Google Scholar
[29] Pan Z, Ding J. Interface Focus 2012, 2, 366–377.10.1098/rsfs.2011.0123Search in Google Scholar PubMed PubMed Central
[30] Rupali K. Design and development of surgical dressings for advanced wound management. SNDT Womens University. Thesis, 2010.Search in Google Scholar
[31] Ikeda T, Ikeda K, Yamamoto K, Ishizaki H, Yoshizawa Y, Yanagiguchi K, Yamada S, Hayashi Y. BioMed. Res. Inter. 2014, 2014, 1–8.10.1155/2014/786892Search in Google Scholar
[32] Renner R, Rogalski C, Friedlein H, Simon JC. JDDG: J. Dtsch. Dermatol. Ges. 2006, 4, 468–475.10.1111/j.1610-0387.2006.06004.xSearch in Google Scholar PubMed
[33] Joseph DB, Eds., Tissue Engineering and Artificial Organs. 4th ed., CRC Press; Taylor and Francis: Hartford, CT 2006.Search in Google Scholar
[34] Song H, Chen A, Wang S, Kang Y, Ye S, Liu Y, Wu W. Materials 2014, 7, 2459–2473.10.3390/ma7042459Search in Google Scholar PubMed PubMed Central
[35] Correlo VM, Pinho ED, Pashkuleva I, Bhattacharya M, Neves NM, Reis RL. Macromol. Biosci. 2007, 7, 354–363.10.1002/mabi.200600233Search in Google Scholar PubMed
[36] Jayakumar R, Prabaharan M, Kumar PTS, Nair SV, Tamura H. Biotechnol. Adv. 2011, 29, 322–337.10.1016/j.biotechadv.2011.01.005Search in Google Scholar PubMed
[37] Taurozzi JS, Hackley VA, Wiesner MR. National Institute of Standards and Technology, Materials Science and Engineering Laboratory: Gaithersburg, MD20899, USA, 2010.Search in Google Scholar
[38] Pereira Jr, VA, de Arruda INQ, Stefani R. Food. Hydrocoll. 2015, 43, 180–188.10.1016/j.foodhyd.2014.05.014Search in Google Scholar
[39] Frazier SD, Srubar III, WV. Mater. Sci. Eng. C 2016, 62, 467–473.10.1016/j.msec.2016.01.074Search in Google Scholar PubMed
[40] Guirguis OW, Moselhey MTH. Natural Sci. 2012, 4, 57–67.10.4236/ns.2012.41009Search in Google Scholar
[41] Lakatos E, Magyar L, Bojtár I. J. Med. Eng. 2014, 2014, 1–7.10.1155/2014/470539Search in Google Scholar PubMed PubMed Central
[42] Poitout DG. Biomechanics and Biomaterials in Orthopedics, Springer: London 2016.10.1007/978-1-84882-664-9Search in Google Scholar
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Articles in the same Issue
- Frontmatter
- Preparation and processing
- Cellulose modification and shaping – a review
- The effect of shear history on urea containing gliadin solutions
- Preparation and characterization of poly(ethylene 2,5-furandicarboxylate/nanocrystalline cellulose composites via solvent casting
- Material properties
- Mechanical properties of natural fibre polymer composites
- Structure and properties of poly(lactic acid)/poly(lactic acid)-α-cyclodextrin inclusion compound composites
- Fabrication of random and aligned-oriented cellulose acetate nanofibers containing betamethasone sodium phosphate: structural and cell biocompatibility evaluations
- Matrix impact on the mechanical, thermal and electrical properties of microfluidized nanofibrillated cellulose composites
- Engineering
- Bi-layered electrospun nanofibrous polyurethane-gelatin scaffold with targeted heparin release profiles for tissue engineering applications
- Fabrication of porous polymeric structures using a simple sonication technique for tissue engineering