In vitro and in vivo examination of the osteogenic ability of 3d scaffold chitosan-hydroxyapatite : a systematic review
Abstract
Background: Alveolar bone resorption in dentistry cases can be caused by several factors. Some of which are periodontal disease, post-tooth extraction trauma, post enucleation cyst, and post-tumor surgery. The idea of bone tissue engineering, especially biomaterials will be focused on precise scaffold design in terms of physicochemical in cell adhesion, proliferation, differentiation, and specific organ tissue formation. Chitosan can be combined with Hydroxyapatite in form of scaffold 3D design for bone remodeling procedure. Purpose: discover Osteogenic ability with scaffold 3D chitosan-Hydroxyapatite in vitro and in vivo. Method: utilizing literature review by collecting, compiling similarities, and concluding references related to Osteogenic ability with scaffold 3D chitosan-Hydroxyapatite in vitro and in vivo on bone remodelling process. Results: based on journal research with keywords of 3D Scaffold, Chitosan, Hydroxyapatite, Bone Engineering, in vitro and in vivo, a total of 15 journal articles were used as references. Conclusion: Scaffold integrates bone tissue and provide effective room for new bone formation. Scaffold 3D ( combination of chitosan and collagen) plays significant part in bone regeneration and becomes natural polymer containing ion complex as to maximalize characteristics of osteoconductivity contained. Scaffold chitosan/hydroaxipatite possesses osteogenic ability integral to repair bone fracture.References
Rahmitasari F. Chitosan and Collagen 3D Scaffold as Graft in Cases of Bone Damage (Study Pustaka). Journal of Dental Materials. 2016;5(2):1-7.
Indrani DJ, Adi WA. Preparation of Nanocrystalline Hydroxyapatite For Bone Tissue Engineering Scaffold. Indonesian Journal of Material Science. 2018;13(4):36-39.
Herda E, Puspitasari D. Overview of the Role and Properties of Materials Used as Scaffolds in Tissue Engineering. Journal of Dental Materials. 2018;5(1):56-63.
Sakamoto M, Matsumoto T, Tal H. Bone regeneration. Rijeka, Croatia: InTech Europe. 2012:301-320.
Sularsih, Soeprijanto. Comparison of Osteoblast Cell Number in Wound Healing Between the Use of Chitosan Gel 1% and 2%. Journal of Dental Materials. 2012;1(2):145-152.
Ariani, MD. New Development of Carbonate Apatite-Chitosan Scaffold Based on Lyophilization Technique For Bone Tissue Engineering. Dental Materials Journal. 2013;32(2):317-325.
Prasadh, Somasundaram, Wong, Raymond CW. Unraveling the Mechanical Strength of Biomaterials Used as A Bone Scaffold in Oral and Maxillofacial Defects. Oral Science International. 2018;15(2):48-55.
Mozartha, M. Hydroxyapatite and its Applications in Dentistry. Cakradonya Dental Journal.. Cakradonya Dental Journal. 2015;7(2):835-841.
Jahan, Kaushar. In Vitro And In Vivo Investigation of Osteogenic Properties of Self-Contained Phosphate-Releasing Injectable Purine-Crosslinked Chitosan-Hydroxyapatite Constructs. Scientific Reports. 2020;10(1):1-17.
Rujitanapanich S, Kumpapan P, Wanjanoi P. Synthesis of Hydroxyapatite from Oyster Shell Via Precipitation. Energy Procedia. 2014;56:112-117.
Henggu KU; Ibrahim B, Suptijah P. Hydroxyapatite from Cuttlefish Shells as a Bone Scaffold Biomaterial Preparation. 2019;1-13
De OP, Rosemary C. Chitosan and Hydroxyapatite Scaffolds with Amoxicillin for Bone Repair. Research, Society and Development. 2021;10(5): e13410514790-e13410514790.
Nga N.K, Tam LTT, Ha NT, Viet PH, Huy TQ. Enhanced Biomineralization and Protein Adsorption Capacity of 3D Chitosan/Hydroxyapatite Biomimetic Scaffolds Applied For Bone-Tissue Engineering. Rsc Advances. 2020;10(70):43045-43057.
Paretsis NF, Junior VG, Hazarbassanov NGTdQ, Marcondes GM, Plepis AMdG, Martins VdCA, Chavez VEA, Fülber J, Zoppa ALdVD. In Vitro Evaluation of Hydroxyapatite, Chitosan, and Carbon Nanotube Composite Biomaterial To Support Bone Healing. Braz. J. Vet. Res. Anim. Sci.2021, 58.
Niu X, Fan Y, Liu X, Li X, Li P, Wang J, Sha Z, Feng Q. Repair of Bone Defect In Femoral Condyle Using Microencapsulated Chitosan, Nanohydroxyapatite/Collagen and Poly (L‐Lactide)‐Based Microsphere‐Scaffold Delivery System. Artificial Organs. 2011;35(7):E119-E128.
Zhao H, Ma L, Gao C, and Shen J. Fabrication and Properties of Mineralized Collagen‐Chitosan/Hydroxyapatite Scaffolds. Polymers For Advanced Technologie. 2008;19(11):1590-1596.
Yoo JH, Lee MC, Lee JE, Jeon KC, Kim YM, Jung MY, Lee JH. Evaluation of Chondrogenesis In Collagen/Chitosan/Glycosaminoglycan Scaffolds For Cartilage Tissue Engineering. Journal of Korean Orthopaedic Research Society. 2005;8(1):28-40.
KimS, Venkatesan J. Chitin and Chitosan Derivatives: Advances In Drug Discovery and Developments. CRC Press. 2013.
Jiang T, Deng M, Fattah WIA, Laurencin CT. Chitosan-based Biopharmaceutical Scaffolds In Tissue Engineering and Regenerative Medicine. Chitosan-Based Systems For Biopharmaceuticals. 2012:393-427.
Gorgieva S, Kokol V. Gelatine-based Biomaterials and Their Bocompatibility: Review and Perspectives. Biomaterials Applications For Nanomedicine, 2rd edn. InTech, London, 2011.
Sonia TA, Sharma CP. Chitosan and Its Derivatives For Drug Delivery Perspective
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