Porous membranes of quaternized chitosan composited with strontium-based nanobioceramic for periodontal tissue regeneration

1. Gottlow, J, Nyman, S, Karring, T, et al. New attachment formation as the result of controlled tissue regeneration. J Clin Periodontol 1984; 11: 494–503.
Google Scholar | Crossref | Medline | ISI2. Wang, J, Wang, L, Zhou, Z, et al. Biodegradable polymer membranes applied in guided bone/tissue regeneration, a review. Polymers 2016; 8(4): 115.
Google Scholar | Crossref3. Zhang, Y, Zhang, X, Shi, B, et al. Membranes for guided tissue and bone regeneration. Ann Oral Maxill Surg 2013; 1(1): 10.
Google Scholar | Crossref4. Karring, T, Nyman, S, Gottlow, J, et al. Development of the biological concept of guided tissue regeneration-animal and human studies. Periodontology 2000; 1(1): 26–35.
Google Scholar | Crossref5. Sam, G, Pillai, BRM. Evolution of barrier membranes in periodontal regeneration-“are the third generation membranes really here? J Clin Diagn Res 2014; 8: ZE14–ZE17.
Google Scholar | Medline6. Sasaki, JI, Abe, GL, Li, A, et al. Barrier membranes for tissue regeneration in dentistry. Biomater Investig Dent 2021; 8: 54–63.
Google Scholar | Crossref | Medline7. Sculean, A, Nikolidakis, D, Schwarz, F. Regeneration of periodontal tissues: combinations of barrier membranes and grafting materials–biological foundation and preclinical evidence: a systematic review. J Clin Periodontol 2008; 35: 106–116.
Google Scholar | Crossref | Medline | ISI8. Li, WJ, Cooper, JA, Mauck, RL, et al. Fabrication and characterization of six electrospun poly(alpha-hydroxy ester)-based fibrous scaffolds for tissue engineering applications. Acta Biomater 2006; 2: 377–385.
Google Scholar | Crossref | Medline | ISI9. Liao, S, Wang, W, Uo, M, et al. A three-layered nano-carbonated hydroxyapatite/collagen/PLGA composite membrane for guided tissue regeneration. Biomaterials 2005; 26: 7564–7571.
Google Scholar | Crossref | Medline | ISI10. Furtos, G, Rivero, G, Rapuntean, S, et al. Amoxicillin‐loaded electrospun nanocomposite membranes for dental applications. J Biomed Mater Res B Appl Biomater 2017; 105: 966–976.
Google Scholar | Crossref | Medline11. Zeichner-David, M . Is there more to enamel matrix proteins than biomineralization? Matrix Biol 2001; 20: 307–316.
Google Scholar | Crossref | Medline | ISI12. Bajić, MP, Danilović, V, Prokić, B, et al. Histological effects of enamel matrix derivative on exposed dental pulp. Srp Arh Celok Lek 2015; 143: 397–403.
Google Scholar | Crossref | Medline13. Al Hezaimi, K, Al Askar, M, Al Rasheed, A. Characteristics of newly‐formed cementum following emdogain application. Int J Oral Sci 2011; 3: 21–26.
Google Scholar | Crossref | Medline14. Kasaj, A, Meister, J, Lehmann, K, et al. The influence of enamel matrix derivative on the angiogenic activity of primary endothelial cells. J Periodontal Res 2012; 47: 479–487.
Google Scholar | Crossref | Medline15. Kasaj, A, Willershausen, B, Reichert, C, et al. Ability of nanocrystalline hydroxyapatite paste to promote human periodontal ligament cell proliferation. J Oral Sci 2008; 50: 279–285.
Google Scholar | Crossref | Medline16. Canuto, RA, Pol, R, Martinasso, G, et al. Hydroxyapatite paste Ostim, without elevation of full-thickness flaps, improves alveolar healing stimulating BMP- and VEGF-mediated signal pathways: an experimental study in humans. Clin Oral Implants Res 2013; 24: 42–48.
Google Scholar | Crossref | Medline17. Rahmati, M, Frank, MJ, Walter, SM, et al. Osteoimmunomodulatory effects of enamel matrix derivate and strontium coating layers: a short-and long-term in vivo study. ACS Appl Bio Mater 2020; 3: 5169–5181.
Google Scholar | Crossref | Medline18. Rohilla, R, Tewari, S, Nayyar, AS. Efficacy of guided tissue regeneration (GTR) membranes in the healing of apico-marginal defects: a prospective, controlled clinical trial. Int J Orofacial Res 2017; 2(1): 11–17.
Google Scholar19. Pitaru, S, Tal, H, Soldinger, M, et al. Partial regeneration of periodontal tissues using collagen barriers. Initial observations in the canine. J Periodontol 1988; 59: 380–386.
Google Scholar | Crossref | Medline20. Mahesh, L, Kurtzman, GM, Shukla, S. Regeneration in periodontics: collagen-a review of its properties and applications in dentistry. Compend Contin Educ Dent 2015; 36(5): 358–363.
Google Scholar | Medline21. Madhuri, SV . Membranes for periodontal regeneration. Int J Pharm Sci Invent 2016; 5: 19–24.
Google Scholar22. Shariatinia, Z . Pharmaceutical applications of chitosan. Adv Colloid Interface Sci 2019; 263: 131–194.
Google Scholar | Crossref | Medline23. Wang, W, Meng, Q, Li, Q, et al. Chitosan derivatives and their application in biomedicine. Int J Mol Sci 2020; 21: 487.
Google Scholar | Crossref24. Wang, M, Ma, Y, Sun, Y, et al. Hierarchical porous chitosan sponges as robust and recyclable adsorbents for anionic dye adsorption. Sci Rep 2017; 7: 18054.
Google Scholar | Crossref | Medline25. Sadhasivam, B, Ravishankar, K, Desingh, R, et al. Biocompatible porous scaffolds of chitosan/poly (EG-ran-PG) blends with tailored pore size and nontoxic to Mesenchymal stem cells: preparation by controlled evaporation from aqueous acetic acid solution. ACS Omega 2018; 3: 10286–10295.
Google Scholar | Crossref | Medline26. Qasim, SB, Delaine-Smith, RM, Fey, T, et al. Freeze gelated porous membranes for periodontal tissue regeneration. Acta Biomater 2015; 23: 317–328.
Google Scholar | Crossref | Medline | ISI27. Tan, H, Ma, R, Lin, C, et al. Quaternized chitosan as an antimicrobial agent: antimicrobial activity, mechanism of action and biomedical applications in orthopedics. Int J Mol Sci 2013; 14: 1854–1869.
Google Scholar | Crossref | Medline28. Capuccini, C, Torricelli, P, Boanini, E, et al. Interaction of Sr-doped hydroxyapatite nanocrystals with osteoclast and osteoblast-like cells. J Biomed Mater.Res A 2009; 89: 594–600.
Google Scholar | Crossref | Medline | ISI29. Krishnan, V, Bhatia, A, Varma, H. Development, characterization and comparison of two strontium doped nano hydroxyapatite molecules for enamel repair/regeneration. Dent Mater 2016; 32: 646–659.
Google Scholar | Crossref | Medline30. Varghese, AG, Adarsh, RK, Nishad, KV, et al. In vitro evaluation of the enamel remineralization potential of a dentifrice containing nano calcium strontium apatite. Trends Biomater Artif Organs 2019; 33: 56–63.
Google Scholar31. Pan, HB, Li, ZY, Lam, WM, et al. Solubility of strontium-substituted apatite by solid titration. Acta Biomater 2009; 5: 1678–1685.
Google Scholar | Crossref | Medline | ISI32. Cui, D, Szarpak, A, Pignot-Paintrand, I, et al. Contact-killing polyelectrolyte microcapsules based on chitosan derivatives. Adv Funct Mater 2010; 20: 3303–3312.
Google Scholar | Crossref | ISI33. Sun, T, Khan, TH, Sultana, N. Fabrication and in vitro evaluation of nano sized hydroxyapatite/chitosan-based tissue engineering scaffolds. J Nanomater 2014; 2014: 11.
Google Scholar | Crossref34. Kuo, SM, Niu, GCC, Lan, CW, et al. Guided tissue regeneration with use of CaSO4-chitosan composite membrane. J Med Biol Eng 2009; 29: 304–310.
Google Scholar35. Chen, TW, Kuo, SM, Chang, SJ, et al. Fabrication and evaluation of chitosan membranes for guided tissue regeneration. Biomed Eng Applications Basis Commun 2004; 16: 259–264.
Google Scholar | Crossref36. Chen, TW, Chang, SJ, Niu, GC, et al. Alginate‐coated chitosan membrane for guided tissue regeneration. J Appl Polym Sci 2006; 102: 4528–4534.
Google Scholar | Crossref37. Zou, X, Zhao, X, Ye, L. Synthesis of cationic chitosan hydrogel with long chain alkyl and its controlled glucose-responsive drug delivery behavior. RSC Adv 2015; 5: 96230–96241.
Google Scholar | Crossref38. Cheung, RCF, Ng, TB, Wong, JH, et al. Chitosan: an update on potential biomedical and pharmaceutical applications. Mar Drugs 2015; 13: 5156–5186.
Google Scholar | Crossref | Medline39. Aguilar, A, Zein, N, Harmouch, E, et al. Application of chitosan in bone and dental engineering. Molecules 2019; 24: 3009.
Google Scholar | Crossref40. Gritsch, L, Maqbool, M, Mouriño, V, et al. Chitosan/hydroxyapatite composite bone tissue engineering scaffolds with dual and decoupled therapeutic ion delivery: Copper and strontium. J Mater Chem B 2019; 7: 6109–6124.
Google Scholar | Crossref | Medline41. Kalsi, PS . Spectroscopy of organic compounds. New Delhi, India: New Age International, 2007.
Google Scholar42. Xianmiao, C, Yubao, L, Yi, Z, et al. Properties and in vitro biological evaluation of nano-hydroxyapatite/chitosan membranes for bone guided regeneration. Mater Sci Eng C 2009; 29(1): 29–35.
Google Scholar | Crossref | ISI43. Chen, M, Runge, T, Wang, L, et al. Hydrogen bonding impact on chitosan plasticization. Carbohydr Polym 2018; 200: 115–121.
Google Scholar | Crossref | Medline44. Facas, GG, Maliekkal, V, Zhu, C, et al. Cooperative activation of cellulose with natural calcium. JACS Au 2021; 1: 272–281.
Google Scholar | Crossref | Medline45. Susanto, A, Satari, MH, Abbas, B, et al. Fabrication and characterization of chitosan-collagen membrane from barramundi (lates calcarifer) scales for guided tissue regeneration. Eur J Dent 2019; 13: 370–375.
Google Scholar | Crossref | Medline46. Kawasaki, H, Shimanouchi, T, Kimura, Y. Recent development of optimization of lyophilization process. J Chem 2019; 2019: 9502856.
Google Scholar | Crossref47. Rispoli, L, Fontana, F, Beretta, M, et al. Surgery guidelines for barrier membranes in guided bone regeneration (GBR). J Otolaryngol Rhinol 2015; 1: 1–8.
Google Scholar48. Greenstein, G, Carpentieri, JR. Utilization of D-PTFE barriers for post-extraction bone regeneration in preparation for dental implants. Compend Contin Educ Dent 2015; 36(7): 465–473.
Google Scholar | Medline49. Tavares, DD, Resende, CX, Quitan, MP, et al. Incorporation of strontium up to 5 Mol.(%) to hydroxyapatite did not affect its cytocompatibility. Mater Res 2011; 14: 456–460.
Google Scholar | Crossref50. Yang, Y, Yang, S, Wang, Y, et al. Anti-infective efficacy, cytocompatibility and biocompatibility of a 3D-printed osteoconductive composite scaffold functionalized with quaternized chitosan. Acta Biomater 2016; 46: 112–128.
Google Scholar | Crossref | Medline51. Ehret, C, Aid-Launais, R, Sagardoy, T, et al. Strontium-doped hydroxyapatite polysaccharide materials effect on ectopic bone formation. PLoS One 2017; 12: e0184663.
Google Scholar | Crossref | Medline52. Islam, MM, Shahruzzaman, M, Biswas, S, et al. Chitosan based bioactive materials in tissue engineering applications-A review. Bioact Mater 2020; 5: 164–183.
Google Scholar | Crossref | Medline

留言 (0)

沒有登入
gif