Decellularized and biological scaffolds in dental and craniofacial tissue engineering: a comprehensive overview

被引:26
|
作者
Yazdanian, Mohsen [1 ,2 ]
Arefi, Arian Hesam [3 ]
Alam, Mostafa [4 ]
Abbasi, Kamyar [5 ]
Tebyaniyan, Hamid [6 ]
Tahmasebi, Elahe [1 ,2 ]
Ranjbar, Reza [1 ,2 ]
Seifalian, Alexander [7 ]
Rahbar, Mahdi [8 ]
机构
[1] Baqiyatallah Univ Med Sci, Res Ctr Prevent Oral & Dent Dis, Tehran, Iran
[2] Baqiyatallah Univ Med Sci, Sch Dent, Tehran, Iran
[3] Zahedan Univ Med Sci, Dent Res Ctr, Zahedan, Iran
[4] Shahid Beheshti Univ Med Sci, Sch Dent, Dept Oral & Maxillofacial Surg, Tehran, Iran
[5] Shahid Beheshti Univ Med Sci, Sch Dent, Dept Prosthodont, Tehran, Iran
[6] Islamic Azad Univ, Sci & Res Branch, Tehran, Iran
[7] NanoRegMed Ltd, Nanotechnol & Regenerat Med Commercializat Ctr, London Biosci Innovat Ctr, London, England
[8] Ardabil Univ Med Sci, Sch Dent, Dept Esthet & Restorat Dent, Ardebil, Iran
关键词
Iran; Biological scaffold; Decellularized scaffold; Dental tissue engineering; MESENCHYMAL STEM-CELLS; PLATELET-RICH FIBRIN; CALCIUM-PHOSPHATE CEMENT; FIBROBLAST GROWTH FACTOR-2; HUMAN UMBILICAL-CORD; EXFOLIATED DECIDUOUS TEETH; CRITICAL-SIZED DEFECTS; MARROW STROMAL CELLS; PERIODONTAL-LIGAMENT; BONE REGENERATION;
D O I
10.1016/j.jmrt.2021.08.083
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Dental problems including cavities, periodontitis, apical periodontitis, and pulpitis are among the most cost-consuming burden for both patients and the health care system all over the world. The pathological consequences of these complications importantly lead to tooth loss causing functional and psychological conflictions for patients. The traditional treatment includes removing the impaired tooth or its restoration using hard restorative materials that are supposed to mimic the tissue of enamel or dentine whereas these materials cannot simulate the chemical, biological, or physical characteristics of a natural tooth. Therefore, different daily-progressing methods of tissue engineering (TE) are being propounded as new and promising approaches for managing dentistry conflicts. TE is now considered almost a practical, reproducible, and clinically safe therapy for regenerating different oral and dental tissues including either the whole dental organ or its various anatomical parts. TE necessarily constitutes three angles of stem cell (SC), scaffold, and essential growth factors (GFs). Generally, scaffolds can be made of decellularized scaffolds (usually containing the extra-cellular matrix (ECM) of target organs and tissues) or biologic scaffolds (containing natural polymer). The current study aims to review the studies conducted in the recent decade on decellularized and biological scaffolds and their po-tential applications in modern regenerative dentistry. (c) 2021 The Author(s). Published by Elsevier B.V. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
引用
收藏
页码:1217 / 1251
页数:35
相关论文
共 50 条
  • [31] Using decellularized grafted leaves as tissue engineering scaffolds for mammalian cells
    Wang, Yueqing
    Dominko, Tanja
    Weathers, Pamela J.
    IN VITRO CELLULAR & DEVELOPMENTAL BIOLOGY-PLANT, 2020, 56 (06) : 765 - 774
  • [32] Preparation of Decellularized Meniscal Scaffolds using Sonication Treatment for Tissue Engineering
    Azhim, A.
    Ono, T.
    Fukui, Y.
    Morimoto, Y.
    Furukawa, K.
    Ushida, T.
    2013 35TH ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY (EMBC), 2013, : 6953 - 6956
  • [33] Using decellularized grafted leaves as tissue engineering scaffolds for mammalian cells
    Yueqing Wang
    Tanja Dominko
    Pamela J. Weathers
    In Vitro Cellular & Developmental Biology - Plant, 2020, 56 : 765 - 774
  • [34] Crossing kingdoms: Using decellularized plants as perfusable tissue engineering scaffolds
    Gershlak, Joshua R.
    Hernandez, Sarah
    Fontana, Gianluca
    Perreault, Luke R.
    Hansen, Katrina J.
    Larson, Sara A.
    Binder, Bernard Y. K.
    Dolivo, David M.
    Yang, Tianhong
    Dominko, Tanja
    Rolle, Marsha W.
    Weathers, Pamela J.
    Medina-Bolivar, Fabricio
    Cramer, Carole L.
    Murphy, William L.
    Gaudette, Glenn R.
    BIOMATERIALS, 2017, 125 : 13 - 22
  • [35] Decellularized tissue and cell-derived extracellular matrices as scaffolds for orthopaedic tissue engineering
    Cheng, Christina W.
    Solorio, Loran D.
    Alsberg, Eben
    BIOTECHNOLOGY ADVANCES, 2014, 32 (02) : 462 - 484
  • [36] Microrobotically fabricated biological scaffolds for tissue engineering
    Nain, Amrinder S.
    Chung, Franklin
    Rule, Michael
    Jadlowiec, Julie A.
    Campbell, Phil G.
    Amon, Cristina
    Sitti, Metin
    PROCEEDINGS OF THE 2007 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND AUTOMATION, VOLS 1-10, 2007, : 1918 - +
  • [37] Polymeric scaffolds for dental pulp tissue engineering: A review
    Jazayeri, Hossein E.
    Lee, Su-Min
    Kuhn, Lauren
    Fahimipour, Farahnaz
    Tahriri, Mohammadreza
    Tayebi, Lobat
    DENTAL MATERIALS, 2020, 36 (02) : E47 - E58
  • [38] Dental Biomaterial Scaffolds in Tooth Tissue Engineering: a Review
    Hamdy T.M.
    Current Oral Health Reports, 2023, 10 (1) : 14 - 21
  • [39] Decellularized Extracellular Matrix Scaffolds for Cardiovascular Tissue Engineering: Current Techniques and Challenges
    Barbulescu, Greta Ionela
    Bojin, Florina Maria
    Ordodi, Valentin Laurentiu
    Goje, Iacob Daniel
    Barbulescu, Andreea Severina
    Paunescu, Virgil
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2022, 23 (21)
  • [40] MRI method for labeling and imaging decellularized extracellular matrix scaffolds for tissue engineering
    Szulc, Daniel Andrzej
    Ahmadipour, Mohammadali
    Aoki, Fabio Gava
    Waddell, Thomas K.
    Karoubi, Golnaz
    Cheng, Hai-Ling Margaret
    MAGNETIC RESONANCE IN MEDICINE, 2020, 83 (06) : 2138 - 2149