Design and characterization of a biodegradable double-layer scaffold aimed at periodontal tissue-engineering applications

被引:22
|
作者
Requicha, Joao F. [1 ,2 ,3 ]
Viegas, Carlos A. [1 ,2 ,3 ]
Hede, Shantesh [1 ,2 ]
Leonor, Isabel B. [1 ,2 ]
Reis, Rui L. [1 ,2 ]
Gomes, Manuela E. [1 ,2 ]
机构
[1] Univ Minho, Headquarters European Inst Excellence Tissue Engn, Res Grp 3Bs, Guimaraes, Portugal
[2] ICVS 3Bs, PT Govt Associated Lab, Braga, Portugal
[3] Univ Tras Os Montes & Alto Douro, Dept Vet Sci, Vila Real, Portugal
关键词
scaffold; biodegradable; guided tissue regeneration; osteoconductive groups; periodontium; tissue engineering; STARCH-BASED BIOMATERIALS; GUIDED BONE REGENERATION; MARROW STROMAL CELLS; STEM-CELLS; IN-VITRO; OSTEOGENIC DIFFERENTIATION; CALCIUM SILICATE; FIBER MESHES; MEMBRANES; DOGS;
D O I
10.1002/term.1816
中图分类号
Q813 [细胞工程];
学科分类号
摘要
The inefficacy of the currently used therapies in achieving the regeneration ad integrum of the periodontium stimulates the search for alternative approaches, such as tissue-engineering strategies. Therefore, the core objective of this study was to develop a biodegradable double-layer scaffold for periodontal tissue engineering. The design philosophy was based on a double-layered construct obtained from a blend of starch and poly-epsilon-caprolactone (30:70wt%; SPCL). A SPCL fibre mesh functionalized with silanol groups to promote osteogenesis was combined with a SPCL solvent casting membrane aiming at acting as a barrier against the migration of gingival epithelium into the periodontal defect. Each layer of the double-layer scaffolds was characterized in terms of morphology, surface chemical composition, degradation behaviour and mechanical properties. Moreover, the behaviour of seeded/cultured canine adipose-derived stem cells (cASCs) was assessed. In general, the developed double-layered scaffolds demonstrated adequate degradation and mechanical behaviour for the target application. Furthermore, the biological assays revealed that both layers of the scaffold allow adhesion and proliferation of the seeded undifferentiated cASCs, and the incorporation of silanol groups into the fibre-mesh layer enhance the expression of a typical osteogenic marker. This study allowed an innovative construct to be developed, combining a three-dimensional (3D) scaffold with osteoconductive properties and with potential to assist periodontal regeneration, carrying new possible solutions to current clinical needs. Copyright (c) 2013 John Wiley & Sons, Ltd.
引用
收藏
页码:392 / 403
页数:12
相关论文
共 50 条
  • [41] Characterization of decellularized scaffold derived from porcine meniscus for tissue engineering applications
    Shuang Gao
    Zhiguo Yuan
    Tingfei Xi
    Xiaojuan Wei
    Quanyi Guo
    Frontiers of Materials Science, 2016, 10 : 101 - 112
  • [42] Characterization of decellularized scaffold derived from porcine meniscus for tissue engineering applications
    Shuang GAO
    Zhiguo YUAN
    Tingfei XI
    Xiaojuan WEI
    Quanyi GUO
    Frontiers of Materials Science, 2016, 10 (02) : 101 - 112+99
  • [43] Synthesis and characterization of bioactive glass coated forsterite scaffold for tissue engineering applications
    Saidi, Roya
    Fathi, Mohammadhossein
    Salimijazi, Hamidreza
    JOURNAL OF ALLOYS AND COMPOUNDS, 2017, 727 : 956 - 962
  • [44] Open Source Software for the Automatic Design of Scaffold Structures for Tissue Engineering Applications
    Dinis, J. C.
    Morais, T. F.
    Amorim, P. H. J.
    Ruben, R. B.
    Almeida, H. A.
    Inforcati, P. N.
    Bartolo, P. J.
    Silva, J. V. L.
    CENTERIS 2014 - CONFERENCE ON ENTERPRISE INFORMATION SYSTEMS / PROJMAN 2014 - INTERNATIONAL CONFERENCE ON PROJECT MANAGEMENT / HCIST 2014 - INTERNATIONAL CONFERENCE ON HEALTH AND SOCIAL CARE INFORMATION SYSTEMS AND TECHNOLOGIES, 2014, 16 : 1542 - 1547
  • [45] Cartilage tissue engineering - Innovative scaffold design and new structural characterization methods
    Brochhausen, C.
    Zehbe, R.
    Grad, S.
    Schubert, H.
    Alini, M.
    Haibel, A.
    Kirkpatrick, C. J.
    TISSUE ENGINEERING PART A, 2008, 14 (05) : 709 - 709
  • [46] Electrospinning of novel biodegradable poly(ester urethane)s and poly(ester urethane urea)s for soft tissue-engineering applications
    Pablo C. Caracciolo
    Vinoy Thomas
    Yogesh K. Vohra
    Fabián Buffa
    Gustavo A. Abraham
    Journal of Materials Science: Materials in Medicine, 2009, 20 : 2129 - 2137
  • [47] Electrospinning of novel biodegradable poly(ester urethane)s and poly(ester urethane urea)s for soft tissue-engineering applications
    Caracciolo, Pablo C.
    Thomas, Vinoy
    Vohra, Yogesh K.
    Buffa, Fabian
    Abraham, Gustavo A.
    JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2009, 20 (10) : 2129 - 2137
  • [48] Antibacterial double-layer calcium phosphate/chitosan composite coating on metal implants for tissue engineering
    Kozelskaya, Anna I.
    Frueh, Andreas
    Rutkowski, Sven
    Goreninskii, Semen I.
    Verzunova, Ksenia N.
    Soldatova, Elena A.
    V. Dorozhko, Elena
    Frueh, Johannes
    V. Bakina, Olga
    Buldakov, Michael A.
    Choinzonov, Evgeny L.
    Brizhan, Leonid K.
    Kerimov, Artur A.
    Khominets, Igor, V
    Davydov, Denis, V
    Tverdokhlebov, Sergei I.
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2025, 705
  • [49] Poly(<sc>l</sc>-lactic acid)-based double-layer composite scaffold for bone tissue repair
    Ren, Yixing
    Ma, Chunyang
    Yu, Yao
    Yang, Dandan
    Zhang, Lingling
    Wang, Huitao
    Sun, Lei
    REGENERATIVE BIOMATERIALS, 2024, 11
  • [50] Fabrication and characterization of scaffold from cadaver goat-lung tissue for skin tissue engineering applications
    Gupta, Sweta K.
    Dinda, Amit K.
    Potdar, Pravin D.
    Mishra, Narayan C.
    MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2013, 33 (07): : 4032 - 4038