Customized hybrid biomimetic hydroxyapatite scaffold for bone tissue regeneration

被引:24
|
作者
Ciocca, L. [1 ]
Lesci, I. G. [2 ]
Mezini, O. [2 ]
Parrilli, A. [3 ]
Ragazzini, S. [4 ]
Rinnovati, R. [5 ]
Romagnoli, N. [5 ]
Roveri, N. [6 ]
Scotti, R. [1 ]
机构
[1] Alma Mater Studiorum Univ Bologna, Sect Prosthodont, Dept Biomed & Neuromotor Sci, I-40125 Bologna, Italy
[2] LEBSC Srl, Lab Environm Biotechnol Struct Engn & Chem, Bologna, Italy
[3] Rizzoli Orthopaed Inst, Biocompatibil Technol Innovat & Adv Therapies Lab, I-40136 Bologna, Italy
[4] Alma Mater Studiorum Univ Bologna, Dept Biomed & Neuromotor Sci DIBINEM, I-40126 Bologna, Italy
[5] Alma Mater Studiorum Univ Bologna, Fac Vet Med, Ozzano Dell Emilia, Italy
[6] Univ Bologna, Dept Chem G Ciamician, Via Selmi 2, Bologna, Italy
关键词
biomimetic scaffold; bone regeneration; CAD-CAM technology; mineralized collagen; maxillofacial rehabilitation; MECHANICAL-PROPERTIES; COMPOSITE SCAFFOLDS; IN-VITRO; OSTEOGENESIS; OSTEOINTEGRATION; NANOPARTICLES; FABRICATION; PARTICLES; STRENGTH;
D O I
10.1002/jbm.b.33597
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Three-dimension (3D) scaffolds for bone tissue regeneration were produced combining three different phases: nanometric hydroxyapatite (HA) was synthesized by precipitation method and the crystals nucleation took place directly within collagen fibrils following a biologically inspired mineralization process; polycaprolactone was employed to give the material a 3D structure. The chemico-physical analysis carried out to test the material's properties and composition revealed a high similarity in composition and morphology with biologically mineralized collagen fibrils and a scaffold degradation pattern suitable for physiological processes. The micro- computerized tomography (micro-CT) showed 53.53% porosity and a 97.86% mean interconnected pores. Computer-aided design and computer-aided manufacturing (CAD-CAM) technology was used for molding the scaffold's volume (design/shape) and for guiding the surgical procedure (cutting guides). The custom made scaffolds were implanted in sheep mandible using prototyped surgical guides and customized bone plates. After three months healing, scanning electron microscopy (SEM) analysis of the explanted scaffold revealed a massive cell seeding of the scaffold, with cell infiltration within the scaffold's interconnected pores. The micro-CT of the explanted construct showed a good match between the scaffold and the adjacent host's bone, to shield the implant primary stability. Histology confirmed cell penetration and widely documented neoangiogenesis within the entire scaffold's volume. (c) 2016 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater, 105B: 723-734, 2017.
引用
收藏
页码:723 / 734
页数:12
相关论文
共 50 条
  • [1] Poly(vinyl alcohol)-hydroxyapatite biomimetic scaffold for tissue regeneration
    Sinha, Arvind
    Das, Gautam
    Sharma, Binay Kumar
    Roy, Raja Prabahan
    Pramanick, Ashit Kumar
    Nayar, Suprabha
    MATERIALS SCIENCE & ENGINEERING C-BIOMIMETIC AND SUPRAMOLECULAR SYSTEMS, 2007, 27 (01): : 70 - 74
  • [2] Biomimetic porous collagen/hydroxyapatite scaffold for bone tissue engineering
    Chen, Li
    Wu, Zhenxu
    Zhou, Yulai
    Li, Linlong
    Wang, Yu
    Wang, Zongliang
    Chen, Yue
    Zhang, Peibiao
    Journal of Applied Polymer Science, 2017, 134 (37):
  • [3] Biomimetic porous collagen/hydroxyapatite scaffold for bone tissue engineering
    Chen, Li
    Wu, Zhenxu
    Zhou, Yulai
    Li, Linlong
    Wang, Yu
    Wang, Zongliang
    Chen, Yue
    Zhang, Peibiao
    JOURNAL OF APPLIED POLYMER SCIENCE, 2017, 134 (37)
  • [4] Characterization of a prevascularized biomimetic tissue engineered scaffold for bone regeneration
    Cipriano, James
    Lakshmikanthan, Adhithi
    Buckley, Christian
    Mai, Linh
    Patel, Het
    Pellegrini, Michael
    Freeman, Joseph W.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2020, 108 (04) : 1655 - 1668
  • [5] Chitosan/hydroxyapatite hybrid scaffold for bone tissue engineering
    Brun, V.
    Guillaume, C.
    Alami, S. Mechiche
    Josse, J.
    Jing, J.
    Draux, F.
    Bouthors, S.
    Laurent-Maquin, D.
    Gangloff, S. C.
    Kerdjoudj, H.
    Velard, F.
    BIO-MEDICAL MATERIALS AND ENGINEERING, 2014, 24 : S63 - S73
  • [6] Hydroxyapatite reinforced natural polymer scaffold for bone tissue regeneration
    Ragunathan, Sreepadmini
    Govindasamy, Gopu
    Raghul, D. R.
    Karuppaswamy, M.
    VijayachandraTogo, R. K.
    MATERIALS TODAY-PROCEEDINGS, 2020, 23 : 111 - 118
  • [7] Assessment of the in vivo biofunctionality of a biomimetic hybrid scaffold for osteochondral tissue regeneration
    Tschon, Matilde
    Brogini, Silvia
    Parrilli, Annapaola
    Bertoldi, Serena
    Silini, Antonietta
    Parolini, Ornella
    Fare, Silvia
    Martini, Lucia
    Veronesi, Francesca
    Fini, Milena
    Giavaresi, Gianluca
    BIOTECHNOLOGY AND BIOENGINEERING, 2021, 118 (01) : 465 - 480
  • [8] Biomimetic Spiral-Cylindrical Scaffold Based on Hybrid Chitosan/Cellulose/Nano-Hydroxyapatite Membrane for Bone Regeneration
    Jiang, Hong
    Zuo, Yi
    Zou, Qin
    Wang, Huanan
    Du, Jingjing
    Li, Yubao
    Yang, Xiaochao
    ACS APPLIED MATERIALS & INTERFACES, 2013, 5 (22) : 12036 - 12044
  • [9] Microwave Assisted Formation of the Chitosan/Hydroxyapatite Scaffold for Bone Tissue Regeneration
    Sukhodub, L. B.
    Kumeda, M. O.
    Gapon, V., I
    Sukhodub, L. F.
    PROCEEDINGS OF THE 2018 IEEE 8TH INTERNATIONAL CONFERENCE NANOMATERIALS: APPLICATION & PROPERTIES (NAP-2018), 2018,
  • [10] Ribose mediated crosslinking of collagen-hydroxyapatite hybrid scaffolds for bone tissue regeneration using biomimetic strategies
    Krishnakumar, Gopal Shankar
    Gostynska, Natalia
    Campodoni, Elisabetta
    Dapporto, Massimiliano
    Montesi, Monica
    Panseri, Silvia
    Tampieri, Anna
    Kon, Elizaveta
    Marcacci, Maurilio
    Sprio, Simone
    Sandri, Monica
    MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2017, 77 : 594 - 605