Chitin Scaffolds in Tissue Engineering
Abstract
:1. Introduction
2. Chitin Scaffolds in Tissue Engineering
2.1. Bone
2.2. Cartilage
2.3. Wound
3. Conclusions
Acknowledgments
References
- Madhumathi, K; Binulal, NS; Nagahama, H; Tamura, H; Shalumon, KT; Selvamurugan, N; Nair, SV; Jayakumar, R. Preparation and characterization of novel β-chitin-hydroxyapatite composite membranes for tissue engineering applications. Int. J. Biol. Macromol 2009, 44, 1–5. [Google Scholar]
- Nagahama, H; Divya Rani, VV; Shalumon, KT; Jayakumar, R; Nair, SV; Furuike, T; Tamura, H. Preparation, characterization, bioactive and cell attachment studies of α-chitin/gelatin composite membranes. Int. J. Biol. Macromol 2009, 44, 333–337. [Google Scholar]
- Nagahama, H; Kashiki, T; Nwe, N; Jayakumar, R; Furuike, T; Tamura, H. Preparation of biodegradable chitin/gelatin membranes with GlcNAc for tissue engineering applications. Carbohydr. Polym 2008, 73, 456–463. [Google Scholar]
- Nagahama, H; Nwe, N; Jayakumar, R; Koiwa, S; Furuike, T; Tamura, H. Novel biodegradable chitin membranes for tissue engineering applications. Carbohydr. Polym 2008, 73, 295–302. [Google Scholar]
- Jayakumar, R; Divya Rani, VV; Shalumon, KT; Sudheesh Kumar, PT; Nair, SV; Furuike, T; Tamura, H. Bioactive and osteoblast cell attachment studies of novel α- and β-chitin membranes for tissue-engineering applications. Int. J. Biol. Macromol 2009, 45, 260–264. [Google Scholar]
- Nagahama, H; Nwe, N; Jayakumar, R; Furuike, T; Tamura, H. Preparation of chitinous compound/gelatin composites and their biomedical applications. Macromol. Symp 2008, 264, 8–12. [Google Scholar]
- Jayakumar, R; Nwe, N; Nagahama, H; Tamura, H. Synthesis, characterization and biospecific degradation behavior of sulfated chitin. Macromol. Symp 2008, 264, 163–167. [Google Scholar]
- Jayakumar, R; Rajkumar, M; Fretias, H; Selvamurgan, N; Nair, SV; Furuike, T; Tamura, H. Preparation of alginate/phosphorylated chitin blend films for tissue engineering and environmental applications. Int. J. Biol. Macromol 2009, 44, 107–111. [Google Scholar]
- Jayakumar, R; Prabaharan, M; Nair, SV; Tamura, H. Novel chitin and chitosan nanofibers in biomedical applications. Biotechnol. Adv 2010, 28, 142–150. [Google Scholar]
- Shalumon, KT; Binulal, NS; Selvamurugan, N; Nair, SV; Menon, D; Furuike, T; Tamura, H; Jayakumar, R. Electrospinning of carboxymethyl chitin/poly(vinyl alcohol) nanofibrous scaffolds for tissue engineering applications. Carbohydr. Polym 2009, 77, 863–869. [Google Scholar]
- Tamura, H; Nagahama, H; Tokura, S. Preparation of chitin hydrogel under mild conditions. Cellulose 2006, 13, 357–364. [Google Scholar]
- Tamura, H; Sawada, M; Nagagama, H; Higuchi, T; Tokura, S. Influence of amide content on the crystal structure of chitin. Holzforschung 2006, 60, 480–484. [Google Scholar]
- Jayakumar, R; Tamura, H. Synthesis, characterization and thermal properties of chitin-g-poly(ɛ-caprolactone) copolymers by using chitin hydrogel. Int. J. Biol. Macromol 2008, 43, 32–36. [Google Scholar]
- Maeda, Y; Jayakumar, R; Nagahama, H; Furuike, T; Tamura, H. Synthesis, characterization and bioactive studies of novel β-chitin scaffolds for tissue engineering applications. Int. J. Biol. Macromol 2008, 42, 463–467. [Google Scholar]
- Madhumathi, K; Kavya, KC; Sudheesh Kumar, PT; Furuike, T; Tamura, H; Nair, SV; Jayakumar, R. Novel chitin/nanosilica composite scaffolds for bone tissue engineering applications. Int. J. Biol. Macromol 2009, 45, 289–292. [Google Scholar]
- Peter, M; Sudheesh Kumar, PT; Binulal, NS; Nair, SV; Tamura, H; Jayakumar, R. Development of novel chitin/nanobioactive glass ceramic nanocomposite scaffolds for tissue engineering applications. Carbohydr. Polym 2009, 78, 926–931. [Google Scholar]
- Sowmya, S; Sudheesh Kumar, PT; Chennazhi, KP; Nair, SV; Tamura, H; Jayakumar, R. Biocompatible β-chitin hydrogel/nanobioactive glass ceramic nanocomposite scaffolds for periodontal bone regeneration. Trends Biomater. Artif. Organs 2011, 25, 1–11. [Google Scholar]
- Jayakumar, R; Prabaharan, M; Nair, SV; Tokura, S; Tamura, H; Selvamurugan, N. Novel carboxymethyl derivatives of chitin and chitosan materials and their biomedical applications. Prog. Mat. Sci 2010, 55, 675–709. [Google Scholar]
- Jayakumar, R; Menon, D; Manzoor, K; Nair, SV; Tamura, H. Biomedical applications of chitin and chitosan based nanomaterials-A short review. Carbohydr. Polym 2010, 82, 227–232. [Google Scholar]
- Tamura, H; Furuike, T; Nair, SV; Jayakumar, R. Biomedical applications of chitin hydrogel membranes and scaffolds. Carbohydr. Polym 2010, 84, 820–824. [Google Scholar]
- Muzzarelli, RAA. Chitins and chitosans for the repair of wounded skin, nerve, cartilage and bone. Carbohydr. Polym 2009, 76, 167–182. [Google Scholar]
- Jayakumar, R; Nwe, N; Tokura, S; Tamura, H. Sulfated chitin and chitosan as novel biomaterials. Int. J. Biol. Macromol 2007, 40, 175–181. [Google Scholar]
- Jayakumar, R; Prabaharan, M; Nair, SV; Tamura, H. Biomaterials based on chitin and chitosan nanofibers in wound dressing applications. Biotechnol Adv 2010. submitted. [Google Scholar]
- Sudheesh Kumar, PT; Abhilash, S; Manzoor, K; Nair, SV; Tamura, H; Jayakumar, R. Preparation and characterization of novel β-chitin/nano silver composite scaffolds for wound dressing applications. Carbohydr. Polym 2010, 80, 761–767. [Google Scholar]
- Madhumathi, K; Sudhessh Kumar, PT; Abhilash, S; Sreeja, V; Tamura, H; Manzoor, K; Nair, SV; Jayakumar, R. Development of novel chitin/nanosilver composite scaffolds for wound dressing applications. J. Mat. Sci. Mater. Med 2010, 21, 807–813. [Google Scholar]
- Khor, E; Lim, LY. Implantable applications of chitin and chitosan. Biomaterials 2003, 24, 2339–2349. [Google Scholar]
- Kim, IY; Seo, SJ; Moon, HS; Yoo, MK; Park, IY; Kim, BC; Cho, CS. Chitosan and its derivatives for tissue engineering applications. Biotechnol. Adv 2008, 26, 1–21. [Google Scholar]
- Langer, R; Vacanti, JP. Tissue engineering. Science 1993, 260, 920–926. [Google Scholar]
- Putnam, AJ; Mooney, DJ. Tissue engineering using synthetic extracellular matrices. Nat. Med 1996, 2, 824–826. [Google Scholar]
- Wake, MC; Patrick, CW; Mikos, AG. Pore morphology effects on the fibrovascular tissue growth in porous polymer substrates. Cell Transplant 1994, 3, 339–343. [Google Scholar]
- Higashi, S; Yamamuro, T; Nakamura, T; Ikada, Y; Hyon, SH; Jamshidi, K. Polymer-hydroxyapatite composites for biodegradable bone filler. Biomaterials 1986, 7, 183–187. [Google Scholar]
- Ito, M. In vitro properties of a chitosan-bonded hydroxyapatite bone-filling paste. Biomaterials 1991, 12, 41–45. [Google Scholar]
- Wan, ACA; Khor, E; Hastings, GW. Hydroxyapatite modified chitin as potential hard tissue substitute material. J. Biomed. Mater. Res 1997, 38, 235–241. [Google Scholar]
- Wan, ACA; Khor, E; Wong, JM; Hastings, GW. Promotion of calcification on carboxymethylchitin discs. Biomaterials 1996, 17, 1529–1534. [Google Scholar]
- Wan, ACA; Khor, E; Hastings, GW. The influence of anionic chitin derivatives on calcium phosphate crystallization. Biomaterials 1998, 19, 1309–1316. [Google Scholar]
- Wan, ACA; Khor, E; Hastings, GW. Preparation of a chitin-apatite composite by in situ precipitation onto porous chitin scaffolds. J. Biomed. Mater. Res 1998, 41, 541–548. [Google Scholar]
- Chow, KS; Khor, E; Wan, ACA. Porous chitin matrices for tissue engineering: fabrication and in-vitro cytotoxic assessment. J. Polym. Res 2001, 8, 27–35. [Google Scholar]
- Wang, M; Chen, LJ; Ni, J; Weng, J; Yue, CY. Manufacture and evaluation of bioactive and biodegradable materials and scaffolds for tissue engineering. J. Mater. Sci. Mater. Med 2001, 12, 855–860. [Google Scholar]
- Ge, Z; Baguenard, S; Lim, LY; Weec, A; Khor, E. Hydroxyapatite-chitin materials as potential tissue engineered bone substitutes. Biomaterials 2004, 25, 1049–1058. [Google Scholar]
- Tokura, S; Tamura, H. O-Carboxymethyl-chitin concentration in granulocytes during bone repair. Biomacromolecules 2001, 2, 417–421. [Google Scholar]
- Farzadi, A; Solati-Hashjin, M; Bakhshi, F; Aminian, A. Synthesis and characterization of hydroxyapatite/β-tricalcium phosphate nanocomposites using microwave irradiation. Ceram. Int 2011, 37, 65–71. [Google Scholar]
- Murugan, R; Ramakrishna, S. Bioresorbable composite bone paste using polysaccharide based nano hydroxyapatite. Biomaterials 2004, 25, 3829–3835. [Google Scholar]
- Peter, M; Nitya, G; Selvamurugan, N; Nair, SV; Furuike, T; Tamura, H; Jayakumar, R. Preparation and characterization of chitosan–gelatin/nanohydroxyapatite composite scaffolds for tissue engineering applications. Carbohydr. Polym 2010, 80, 687–694. [Google Scholar]
- Chen, F; Wang, ZC; Lin, CJ. Preparation and characterization of nano-sized hydroxyapatite particles and hydroxyapatite/chitosan nano-composite for use in biomedical materials. Mater. Lett 2002, 57, 858–861. [Google Scholar]
- Jiang, L; Li, Y; Wang, X; Zhang, L; Wen, J; Gong, M. Preparation and properties of nano-hydroxyapatite/chitosan/carboxymethyl cellulose composite scaffold. Carbohydr. Polym 2008, 74, 680–684. [Google Scholar]
- Sudheesh Kumar, PT; Sowmya, S; Vinoth, KL; Tamura, H; Nair, SV; Jayakumar, R. β-Chitin hydrogel/nano hydroxyapatite composite scaffolds for tissue engineering applications. Carbohydr Polym 2011. accepted. [Google Scholar]
- Sudheesh Kumar, PT; Sowmya, S; Vinoth, KL; Tamura, H; Nair, SV; Jayakumar, R. Synthesis, characterization and cytocompatibility studies of α-Chitin Hydrogel/nano hydroxyapatite composite scaffolds. Int J Biol Macromol 2011. accepted. [Google Scholar]
- Hench, LL. Bioceramics: From concept to clinic. J. Am. Ceramic Soc 1991, 74, 1487–1510. [Google Scholar]
- Wheeler, DL; Montfort, MJ; McLoughlin, SW. Differential healing response of bone adjacent to porous implant coated with hydroxyapatite and bioactive glass. J. Biomed. Mater. Res 2000, 55, 603–612. [Google Scholar]
- Verrier, S; Blaker, JJ; Maquet, M; Hench, LL; Boccaccinia, RAA. PDLLA/bioglass composites for soft-tissue and hard-tissue engineering: An in vitro cell biology assessment. Biomaterials 2004, 25, 3013–3021. [Google Scholar]
- Kokubo, T. Bioactive glass ceramics: Properties and applications. Biomaterials 1991, 12, 155–163. [Google Scholar]
- Bosetti, M; Cannas, M. The effect of bioactive glasses on bone marrow stromal cells differentiation. Biomaterials 2005, 26, 3873–3879. [Google Scholar]
- Foppiano, S; Marshall, SJ; Marshall, GW; Saiz, E; Tomsia, AP. Bioactive glass coatings affect the behaviour of osteoblast-like cells. Acta Biomater 2007, 3, 765–771. [Google Scholar]
- Hench, LL. Genetic design of bioactive glass. J. Eur. Ceramic Soc 2009, 29, 1257–1265. [Google Scholar]
- Valerio, P; Pereira, MM; Goes, AM; Leite, F. The effect of ionic products from bioactive glass dissolution on osteoblast proliferation and collagen production. Biomaterials 2004, 25, 2941–2948. [Google Scholar]
- Xynos, ID; Edgar, AJ; Buttery, LDK; Hench, LL; Polak, JM. Ionic products of bioactive glass dissolution increase proliferation of human osteoblasts and induce insulin-like growth factor II mRNA expression and protein synthesis. Biochem. Biophys. Res. Commun 2000, 276, 461–465. [Google Scholar]
- Elsdale, T; Bard, J. Collagen substrata for studies on cell behavior. J. Cell Biol 1972, 54, 626–637. [Google Scholar]
- Laurencin, CT; Ambrosio, AMA; Borden, MD; Cooper, JA. Tissue engineering: orthopedic applications. Ann. Rev. Biomed. Eng 1999, 1, 19–46. [Google Scholar]
- Teixeira, AI; Abrams, GA; Bertics, PJ; Murphy, CJ; Nealey, PF. Epithelial contact guidance on well-defined micro- and nanostructured substrates. J. Cell Sci 2003, 116, 1881–1892. [Google Scholar]
- Hay, ED. Cell Biology of Extracellular Matrix; Plenum Press: New York, NY, USA, 1991. [Google Scholar]
- Chiu, JB; Liu, C; Hsiao, BS; Chu, B; Hadjiargyrou, M. Functionalization of poly(l-lactide) nanofibrous scaffolds with bioactive collagen molecules. J. Biomed. Mater. Res 2007, A83, 1117–1127. [Google Scholar]
- Zhang, C; Yuan, X; Wu, L; Han, Y; Sheng, J. Study on morphology of electrospun poly(vinyl alcohol) mats. Eur. Polym. J 2005, 41, 423–432. [Google Scholar]
- Zhang, Y; Lim, CT; Ramakrishna, S; Huang, ZM. Recent development of polymer nanofibers for biomedical and biotechnological applications. J. Mater. Sci. Mater. Med 2005, 16, 933–946. [Google Scholar]
- Venugopal, J; Low, S; Choon, AT; Ramakrishna, S. Interaction of cells and nanofiber scaffolds in tissue engineering. J. Biomed. Mater. Res. Appl. Biomater 2008, 84B, 34–48. [Google Scholar]
- Mow, VC; Ratcliffe, A; Poole, AR. Cartilage and diarthrodial joints as paradigms for hierarchical materials and structures. Biomaterials 1992, 13, 67–97. [Google Scholar]
- Suzuki, D; Takahashi, M; Abe, M; Sarukawa, J; Tamura, H; Tokura, S; Kurahashi, Y; Nagano, A. Comparison of various mixtures of beta-chitin and chitosan as a scaffold for three-dimensional culture of rabbit chondrocytes. J. Mater. Sci. Mater. Med 2008, 19, 1307–1315. [Google Scholar]
- Mezzana, P. Clinical efficacy of a new chitin nanofibrils-based gel in wound healing. Acta Chir. Plast 2008, 50, 81–84. [Google Scholar]
- Noh, HK; Lee, SW; Kim, JM; Oh, JE; Kim, KH; Chung, CP; Choi, SC; Park, WH; Min, BM. Electrospinning of chitin nanofibers: degradation behavior and cellular response to normal human keratinocytes and fibroblasts. Biomaterials 2006, 27, 3934–3944. [Google Scholar]
- Park, KE; Kang, HK; Lee, SJ; Min, BM; Park, WH. Biomimetic nanofibrous scaffolds: preparation and characterization of PGA/chitin blend nanofibers. Biomacromolecules 2006, 7, 635–643. [Google Scholar]
- Park, KE; Jung, SY; Lee, SJ; Min, BM; Park, WH. Biomimetic nanofibrous scaffolds: Preparation and characterization of chitin/silk fibroin blend nanofibers. Int. J. Biol. Macromol 2006, 38, 165–173. [Google Scholar]
© 2011 by the authors; licensee MDPI, Basel, Switzerland. This article is an open-access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/3.0/).
Share and Cite
Jayakumar, R.; Chennazhi, K.P.; Srinivasan, S.; Nair, S.V.; Furuike, T.; Tamura, H. Chitin Scaffolds in Tissue Engineering. Int. J. Mol. Sci. 2011, 12, 1876-1887. https://doi.org/10.3390/ijms12031876
Jayakumar R, Chennazhi KP, Srinivasan S, Nair SV, Furuike T, Tamura H. Chitin Scaffolds in Tissue Engineering. International Journal of Molecular Sciences. 2011; 12(3):1876-1887. https://doi.org/10.3390/ijms12031876
Chicago/Turabian StyleJayakumar, Rangasamy, Krishna Prasad Chennazhi, Sowmya Srinivasan, Shantikumar V. Nair, Tetsuya Furuike, and Hiroshi Tamura. 2011. "Chitin Scaffolds in Tissue Engineering" International Journal of Molecular Sciences 12, no. 3: 1876-1887. https://doi.org/10.3390/ijms12031876
APA StyleJayakumar, R., Chennazhi, K. P., Srinivasan, S., Nair, S. V., Furuike, T., & Tamura, H. (2011). Chitin Scaffolds in Tissue Engineering. International Journal of Molecular Sciences, 12(3), 1876-1887. https://doi.org/10.3390/ijms12031876