Bilateral double site (calvarial and mandibular) critical-size bone defect model in rabbits for evaluation of a craniofacial tissue engineering constructs
Tài liệu tham khảo
Zeiter, 2020, Evaluation of preclinical models for the testing of bone tissue-engineered constructs, Tissue Eng. C Methods, 26, 107, 10.1089/ten.tec.2019.0213
Piotrowski, 2019, Development and characterization of a rabbit model of compromised maxillofacial wound healing, Tissue Eng. C Methods, 25, 160, 10.1089/ten.tec.2018.0361
Wang, 2020, Calvarial versus long bone: implications for tailoring skeletal tissue engineering, Tissue Eng. B Rev., 26, 46, 10.1089/ten.teb.2018.0353
Wancket, 2015, Animal models for evaluation of bone implants and devices: comparative bone structure and common model uses, Vet. Pathol., 52, 842, 10.1177/0300985815593124
Atayde, 2014, A new sheep model with automatized analysis of biomaterial-induced bone tissue regeneration, J. Mater. Sci. Mater. Med., 25, 1885, 10.1007/s10856-014-5216-2
Kengelbach-Weigand, 2021, Personalized medicine for reconstruction of critical-size bone defects – a translational approach with customizable vascularized bone tissue, npj Regen. Med., 6, 10.1038/s41536-021-00158-8
Lee, 2015, Comparative evaluation of biphasic calcium phosphate and biphasic calcium phosphate collagen composite on osteoconductive potency in rabbit calvarial defect, Biomater. Res., 19, 1, 10.1186/s40824-014-0026-7
Pripatnanont, 2013, The primacy of platelet-rich fibrin on bone regeneration of various grafts in rabbit's calvarial defects, J. Cranio-Maxillofacial Surg., 41
Wongsupa, 2017, Assessment of bone regeneration of a tissue-engineered bone complex using human dental pulp stem cells/poly(ε-caprolactone)-biphasic calcium phosphate scaffold constructs in rabbit calvarial defects, J. Mater. Sci. Mater. Med., 28, 10.1007/s10856-017-5883-x
Leventis, 2018, Bone healing in rabbit calvaria defects using a synthetic bone substitute: a histological and micro-CT comparative study, Materials, 11, 1, 10.3390/ma11102004
Campillo, 2014, Anatomic and histological study of the rabbit mandible as an experimental model for wound healing and surgical therapies, Lab. Anim., 48, 273, 10.1177/0023677214540635
Quarto, 2010, Origin matters: differences in embryonic tissue origin and Wnt signaling determine the osteogenic potential and healing capacity of frontal and parietal calvarial bones, J. Bone Miner. Res., 25, 1680, 10.1359/jbmr.091116
Taguchi, 2016, The usefulness of mandibular and maxillary bone derived from neural crest as bone graft substitutes, Showa Univ. J. Med. Sci., 28, 241, 10.15369/sujms.28.241
Zhang, 2010, The repair of critical-size defects with porous hydroxyapatite/polyamide nanocomposite: an experimental study in rabbit mandibles, Int. J. Oral Maxillofac. Surg., 39, 469, 10.1016/j.ijom.2010.01.013
Hayden, 2012, Reconstruction of the segmental mandibular defect: current state of the art, vol. 20, 231
Schmitz, 1986, The critical size defect as an experimental model for craniomandibulofacial nonunions, Clin. Orthop. Relat. Res., 205, 299, 10.1097/00003086-198604000-00036
Li, 2015, Bone defect animal models for testing efficacy of bone substitute biomaterials, J. Orthopaedic Transl., 3, 95, 10.1016/j.jot.2015.05.002
Cheng, 2015, A novel animal model treated with tooth extraction to repair the full-thickness defects in the mandible of rabbits, J. Surg. Res., 194, 706, 10.1016/j.jss.2014.11.010
Baskin, 2021, Mandible biomechanics and continuously erupting teeth: a new defect model for studying load-bearing biomaterials, Biomedicines, 9, 1, 10.3390/biomedicines9070730
Park, 2009, Bone regeneration capacity of two different macroporous biphasic calcium materials in rabbit calvarial defect, J. Korean Acad. Periodontol., 39, 223, 10.5051/jkape.2009.39.S.223
Wang, 2017, Bone regeneration in critical-sized bone defect enhanced by introducing osteoinductivity to biphasic calcium phosphate granules, Clin. Oral Implants Res., 28, 251, 10.1111/clr.12791
Brierly, 2016, Critical sized mandibular defect regeneration in preclinical in vivo models, Curr. Mol. Biol. Rep., 2, 83, 10.1007/s40610-016-0036-4
Jianqi, 2002, Comparison of calcium alginate film with collagen membrane for guided bone regeneration in mandibular defects in rabbits, J. Oral Maxillofac. Surg., 60, 1449, 10.1053/joms.2002.36108
Cheng, 2015, A novel animal model treated with tooth extraction to repair the full-thickness defects in the mandible of rabbits, J. Surg. Res., 194, 706, 10.1016/j.jss.2014.11.010
Lee, 2018, Rabbit calvarial defect model for customized 3D-printed bone grafts, Tissue Eng. C Methods, 24, 255, 10.1089/ten.tec.2017.0474
Delgado-Ruiz, 2015, Critical size defects for bone regeneration experiments in rabbit calvariae: systematic review and quality evaluation using ARRIVE guidelines, Clin. Oral Implants Res., 26, 915, 10.1111/clr.12406
da Costa Oliveira, 2013, Fragmented adipose tissue graft for bone healing: histological and histometric study in rabbits' calvaria, Med. Oral Patol. Oral Cir. Bucal, 18
Sohn, 2010, Spontaneous healing capacity of rabbit cranial defects of various sizes, J. Periodontal Implant Sci., 40, 180, 10.5051/jpis.2010.40.4.180
Schlund, 2021, Rabbit calvarial and mandibular critical-sized bone defects as an experimental model for the evaluation of craniofacial bone tissue regeneration, J. Stomatol. Oral Maxillofac Surg., 10.1016/j.jormas.2021.12.001
Shah, 2016, A composite critical-size rabbit mandibular defect for evaluation of craniofacial tissue regeneration, Nat. Protoc., 11, 1989, 10.1038/nprot.2016.122
Ung, 2015, Comparative evaluation of biphasic calcium phosphate and biphasic calcium phosphate collagen composite on osteoconductive potency in rabbit calvarial defect, Biomater. Res., 19
Santos, 2018, Osteoinductive porous biphasic calcium phosphate ceramic as an alternative to autogenous bone grafting in the treatment of mandibular bone critical-size defects, J Biomed Mater Res - Part B Appl Biomater., 106, 1546, 10.1002/jbm.b.33963
Yuan, 2001, Bone formation induced by calcium phosphate ceramics in soft tissue of dogs: a comparative study between porous α-TCP and β-TCP, J. Mater. Sci. Mater. Med., 12, 7, 10.1023/A:1026792615665
Yuan, 2001, Bone induction by porous glass ceramic made from Bioglass® (45S5), J. Biomed. Mater. Res., 58, 270, 10.1002/1097-4636(2001)58:3<270::AID-JBM1016>3.0.CO;2-2
Habibovic, 2008, Osteoconduction and osteoinduction of low-temperature 3D printed bioceramic implants, Biomaterials, 29, 944, 10.1016/j.biomaterials.2007.10.023
Yuan, 2000, Tissue responses of calcium phosphate cement: a study in dogs, Biomaterials, 21, 1283, 10.1016/S0142-9612(00)00016-8
Zhao, 2020, Design and evaluation of a novel sub-scaffold dental implant system based on the osteoinduction of micro-nano bioactive glass, Biomater. Transl., 1, 82
Daamen, 2007, Elastin as a biomaterial for tissue engineering, Biomaterials, 28, 4378, 10.1016/j.biomaterials.2007.06.025