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Scanning Electron Microscopy Analysis of Changes of Hydroxiapatite/Poly-L-Lactide with Different Molecular Weight of PLLAaAfter Intraperitoneal Implantation


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1. Keating FJ, McQueen MM. Substitutes for autologous bone graft in orthopaedic trauma. J Bone Joint Surg 2001; 83(1): 3-8.10.1302/0301-620X.83B1.0830003Search in Google Scholar

2. Lazić Z, Bubalo M, Milović R, Matijević S, Magić M, Đorđević I. Comparison of resorbable membranes for guided bone regeneration of human and bovine origin. Acta Veterinaria- Beograd 2014; 64(4): 477-492.10.2478/acve-2014-0045Search in Google Scholar

3. Gao C, Deng Y, Feng P, Mao Z, Li P, Yang B, Deng J, Cao Y, Shuai C, Peng S. Current progress in bioactive ceramic scaffolds for bone repair and regeneration. Int J Mol Sci 2014; 15: 4714-4732.10.3390/ijms15034714Search in Google Scholar

4. Kurashina K, Kurita H, Takeuchi H, Hirano M, Klein C, de-Groot K. Osteogenesis in muscle with composite graft of hydroxyapatite and autogenous calvarial periosteum: A preliminary report. Biomaterials 1995; 16(2): 119-123.10.1016/0142-9612(95)98273-HSearch in Google Scholar

5. Ripamonti U, Duneas N. Tissue engineering of bone by osteoinductive biomaterials. MRS Bulletin 1996; 21(11): 36-42.10.1557/S0883769400031833Search in Google Scholar

6. Angelova N, Hunkeler D. Rationalizing the design of polymeric biomaterials. Trends in Biotechnology 1999; 17(10): 409-421.10.1016/S0167-7799(99)01356-6Search in Google Scholar

7. Wang Z, Wang Y, Ito Y, Zhang P, Chen X. A comparative study on the in vivo degradation of poly(L-lactide) based composite implants for bone fracture fixation, Scientific Reports 2016; 9;6:2077010.1038/srep20770Search in Google Scholar

8. Yanagida H, Okada M,Masuda M, Narama I, Nakano S, Kitao S, Takakuda K, Furuzono T. Preparation and in vitro/in vivo evaluations of dimpled poly(l-lactic acid) fi bers mixed/ coated with hydroxyapatite nanocrystals. Journal of Artificial Organs 2011; 14, 331-341.10.1007/s10047-011-0594-4Search in Google Scholar

9. Freed L E, Vunjak-Novakovic G, Biron R J, Eagles D, Lesnoy D, Barlow S K, Langer R. Biodegradable polymer scaffolds for tissue engineering. Nature Biotechnology 1994; 12: 689-693.10.1038/nbt0794-689Search in Google Scholar

10. Ignjatović N, Tomić S, Dakić M, Miljković M, Plavšić M, Uskoković D. Synthesis and properties of hydroxyapatite/poly-L-lactide composite biomaterials. Biomaterials 1999; 20(9): 809-816. 10.1016/S0142-9612(98)00234-8Search in Google Scholar

11. Nejati E, Firouzdor V, Eslaminejad M B, Bagheri F. Needle-like nano hydroxyapatite/ poly(L-lactide acid) composite scaffold for bone tissue engineering application. Materials Science and Engineering C 2009; 29: 942-949.10.1016/j.msec.2008.07.038Search in Google Scholar

12. Ignjatović N, Savić V, Najman S, Plavšić M, Uskoković D. A study of HAp/PLLA composite as a substitute for bone powder, using FT-IR spectroscopy. Biomaterials 2001; 22(6): 571-575.10.1016/S0142-9612(00)00215-5Search in Google Scholar

13. Najman S, Đorđević Lj, Savić V, Ignjatović N, Plavšić M, Uskoković D. Changes of HAp/PLLA biocomposites and tissue reaction after subcutaneous implantation. Facta Universitatis Series: Medicine and Biology 2003; 10(3): 131-134.Search in Google Scholar

14. Najman S, Savic V, Djordjevic Lj. Ignjatovic N, Uskokovic D. Biological evaluation of hydroxyapatite/poly-L-lactide (HAp/PLLA) composite biomaterials with poly-L-lactide of different molecular weights intraperitoneally implanted into mice. Biomed Mater Eng 2004; 14(1): 61-70.Search in Google Scholar

15. Persson M, Lorite SG, Kokkonen EH, Cho SW, Lehenkari PP, Skrifvars M, Tuukkanen J. Effect of bioactive extruded PLA/HA composite films on focal adhesion formation of preosteoblastic cells. Colloids and Surfaces B: Biointerfaces 2014; 121: 409-416.10.1016/j.colsurfb.2014.06.029Search in Google Scholar

16. Mansourizadeh F, Asadi A, Oryan S, Nematollahzadeh A, Dodel M, Asghari-Vostakolaei M. PLLA/HA Nano composite scaffolds for stem cell proliferation and differentiation in tissue engineering. Molecular Biology Research Communications 2013; 2(1-2): 1-10.Search in Google Scholar

17. Mainil-Varlet P, Curtis R, Gogolewski S. Effect of in vivo and in vitro degradation on molecular and mechanical properties of various low-molecular-weight polylactides. J Biomed Mater Res 1997; 36(3): 360-80.10.1002/(SICI)1097-4636(19970905)36:3<360::AID-JBM11>3.0.CO;2-ISearch in Google Scholar

18. Podlaha J, Schwanhaeuser K. Experimental assessment of a new type of vascular prostheses with adiponectin (adipograft Ra 1vk 7/350) on sheep. Acta Veterinaria-Beograd 2014; 64(4): 426-437. 10.2478/acve-2014-0040Search in Google Scholar

eISSN:
1820-7448
Language:
English
Publication timeframe:
4 times per year
Journal Subjects:
Medicine, Veterinary Medicine