A new bi-layered scaffold for osteochondral tissue regeneration: In vitro and in vivo preclinical investigations

被引:55
|
作者
Sartori, M. [1 ]
Pagani, S. [2 ]
Ferrari, A. [2 ,3 ]
Costa, V [4 ]
Carina, V [4 ]
Figallo, E. [5 ]
Maltarello, M. C. [6 ]
Martini, L. [2 ]
Fini, M. [2 ]
Giavaresi, G. [4 ]
机构
[1] Rizzoli Orthoped Inst, Lab Biocompatibil Technol Innovat & Adv Therapies, Bologna, Italy
[2] Rizzoli Orthoped Inst, Lab Preclin & Surg Studies, Via Barbiano 1-10, I-40136 Bologna, Italy
[3] Univ Bologna, Dept Med & Surg Sci DIMEC, Bologna, Italy
[4] Rizzoli Orthoped Inst, Innovat Technol Platform Tissue Engn Theranost &, Palermo, Italy
[5] Fin Ceram Faenza SpA, Faenza, Ravenna, Italy
[6] Rizzoli Orthoped Inst, Lab Musculoskeletal Cell Biol, Bologna, Italy
关键词
Osteochondral lesion; Biomimetic; Bi-layered scaffold; Collagen I; Magnesium-doped hydroxyapatite; Molecular biology; Animal model; Implant Histology; MESENCHYMAL STEM-CELLS; ARTICULAR-CARTILAGE DEFECTS; MARROW STROMAL CELLS; CHONDROGENIC DIFFERENTIATION; COMPOSITE SCAFFOLD; BONE REGENERATION; BILAYERED SCAFFOLD; CROSS-LINKING; KNEE; DESIGN;
D O I
10.1016/j.msec.2016.08.027
中图分类号
TB3 [工程材料学]; R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
Current treatments for acute or degenerative chondral and osteochondral lesions are in need of improvement, as these types of injuries lead to disability and worsen the quality of life in a high percentage of patients. The aim of this study was to develop a new bi-layered scaffold for osteochondral tissue regeneration through a "biomimetic" and "bioinspired" approach. For chondral regeneration, the scaffold was realized with an organic compound (type I collagen), while for the regeneration of the subchondral layer, bioactive magnesium-doped hydroxyapatite (Mg/HA) crystals were co-precipitated with the organic component of the scaffold. The entire scaffold structure was stabilized with a cross-linking agent, highly reactive bis-epoxyde (1,4-butanediol diglycidyl ether - BDDGE 1 wt%). The developed scaffold was then characterized for its physico-chemical characteristics. Its structure and adhesion strength between the integrated layers were investigated. At the same time, in vitro cell culture studies were carried out to examine the ability of chondral and bone scaffold layers to separately support adhesion, proliferation and differentiation of human mesenchymal stem cells (hMSCs) into chondrocytes and osteoblasts, respectively. Moreover, an in vivo study with nude mice, transplanted with osteochondral scaffolds plain or engineered with undifferentiated hMSCs, was also set up with 4 and 8-week time points. The results showed that chondral and bone scaffold layers represented biocompatible scaffolds able to sustain hMSCs attachment and proliferation. Moreover, the association of scaffold stimuli and differentiation medium, induced hMSCs chondrogenic and osteogenic differentiation and deposition of extracellular matrix (ECM). The ectopic implantation of the engineered osteochondral scaffolds indicated that hMSCs were able to colonize the osteochondral scaffold in depth. The scaffold appeared permissive to tissue growth and penetration, ensuring the diffusion of nutrients and oxygen, as also suggested by the presence of a neo-angiogenesis process, especially at 4 weeks. Moreover, the in vivo results further confirmed the great potential of the scaffold in tissue engineering, as it was able to support the initial formation of new bone and chondral tissue, confirming the importance of combined and innovative strategies to improve the available therapeutic strategies for chondral and osteochondral regeneration. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:101 / 111
页数:11
相关论文
共 50 条
  • [41] Fabrication and characterization of a thick, viable bi-layered stem cell-derived surrogate for future myocardial tissue regeneration
    Pretorius, Danielle
    Kahn-Krell, Asher M.
    LaBarge, Wesley C.
    Lou, Xi
    Kannappan, Ramaswamy
    Pollard, Andrew E.
    Fast, Vladimir G.
    Berry, Joel L.
    Eberhardt, Alan W.
    Zhang, Jianyi
    [J]. BIOMEDICAL MATERIALS, 2021, 16 (03)
  • [42] In vitro and in vivo investigation of a zonal microstructured scaffold for osteochondral defect repair
    Steele, Joseph A. M.
    Moore, Axel C.
    St-Pierre, Jean-Philippe
    McCullen, Seth D.
    Gormley, Adam J.
    Horgan, Conor C.
    Black, Cameron RM.
    Meinert, Christoph
    Klein, Travis
    Saifzadeh, Siamak
    Steck, Roland
    Ren, Jiongyu
    Woodruff, Maria A.
    Stevens, Molly M.
    [J]. BIOMATERIALS, 2022, 286
  • [43] In vitro release and In vivo biocompatibility studies of biomimetic multilayered alginate-chitosan/β-TCP scaffold for osteochondral tissue
    Algul, Derya
    Gokce, Alper
    Onal, Ayberk
    Servet, Erkan
    Ekici, Asiye Isin Dogan
    Yener, Fatma Gulgun
    [J]. JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION, 2016, 27 (05) : 431 - 440
  • [44] A novel tissue engineering scaffold for the regeneration and repair of knee joint osteochondral defects
    Ramesh, A. C.
    Levingstone, T. J.
    Brady, R. T.
    Gleeson, J.
    O'Brien, F.
    [J]. IRISH JOURNAL OF MEDICAL SCIENCE, 2014, 183 : S39 - S39
  • [45] A composite bilayer scaffold functionalized for osteochondral tissue regeneration in rat animal model
    Dargoush, Shabnam Abedin
    Hanaee-Ahvaz, Hana
    Irani, Shiva
    Soleimani, Masoud
    Khatami, Seyedeh Mahsa
    Sohi, Alireza Naderi
    [J]. JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2022, 16 (06) : 559 - 574
  • [46] Bilayered PLGA/PLGA-HAp Composite Scaffold for Osteochondral Tissue Engineering and Tissue Regeneration
    Liang, Xiangyu
    Duan, Pingguo
    Gao, Jingming
    Guo, Runsheng
    Qu, Zehua
    Li, Xiaofeng
    He, Yao
    Yao, Haoqun
    Ding, Jiandong
    [J]. ACS BIOMATERIALS SCIENCE & ENGINEERING, 2018, 4 (10): : 3506 - 3521
  • [47] Bi-layer collagen/microporous electrospun nanofiber scaffold improves the osteochondral regeneration
    Zhang, Shufang
    Chen, Longkun
    Jiang, Yangzi
    Cai, Youzhi
    Xu, Guowei
    Tong, Tong
    Zhang, Wei
    Wang, Linlin
    Ji, Junfeng
    Shi, Peihua
    Ouyang, Hong Wei
    [J]. ACTA BIOMATERIALIA, 2013, 9 (07) : 7236 - 7247
  • [48] A bi-layered membrane with micro-nano bioactive glass for guided bone regeneration
    Li, Peiyi
    Li, Yanfei
    Kwok, Tszyung
    Yang, Tao
    Liu, Cong
    Li, Weichang
    Zhang, Xinchun
    [J]. COLLOIDS AND SURFACES B-BIOINTERFACES, 2021, 205
  • [49] Bi-layered α-tocopherol acetate loaded membranes for potential wound healing and skin regeneration
    Zahid, Saba
    Khalid, Hamad
    Ikram, Fakhera
    Iqbal, Haffsah
    Samie, Muhammad
    Shahzadi, Lubna
    Shah, Asma Tufail
    Yar, Muhammad
    Chaudhry, Aqif Anwar
    Awan, Sana Javaid
    Khan, Ather Farooq
    Rehman, Ihtesham Ur
    [J]. MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2019, 101 : 438 - 447
  • [50] A bi-layered asymmetric membrane loaded with demineralized dentin matrix for guided bone regeneration
    Zhou, Wan-Hang
    Li, Yan-Fei
    [J]. JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2024, 149