Plant-derived biomaterials and scaffolds

被引:0
|
作者
Melis Toker-Bayraktar
Berkay Erenay
Burak Altun
Sedat Odabaş
Bora Garipcan
机构
[1] Boğaziçi University,Biomimetics and Bioinspired Biomaterials Research Laboratory, Institute of Biomedical Engineering
[2] Ankara University,Biomaterials and Tissue Engineering Laboratory (bteLAB), Department of Chemistry, Faculty of Science
[3] Ankara University,Interdisciplinary Research Unit for Advanced Materials (INTRAM)
来源
Cellulose | 2023年 / 30卷
关键词
Plants; Decellularization; Scaffold; Tissue engineering; Lab-grown meat;
D O I
暂无
中图分类号
学科分类号
摘要
Plant extracts, polysaccharides and proteins have been used in pharmacological and biomedical applications due to their biochemical properties. Moreover, recent studies showed that structural organization and surface topographies of plants can also be advantageous for tissue engineering applications. The diversity of surface patterns, interconnected pore structure and native vasculature of plants make them promising alternatives as tissue mimicking biomaterials to repair and regenerate damaged tissues. To design biocompatible tissue scaffolds and biomaterials from plants, decellularization came into prominence, which can be described as removal of the nuclear material from plant tissues while keeping the cellulose-based cell wall as three-dimensional (3D) scaffolds. This review is focused on the decellularization procedures of plants and biotechnological and biomedical applications of decellularized plants based on their structural properties. In addition, advances in this field such as state-of-the-art applications of decellularized plants and the comparison between native and decellularized plants are discussed. Finally, the advantages and drawbacks of plant-based biomaterials especially the aspects that have still not been completely understood, such as mechanical stability, degradation profile and reproducibility are indicated as future perspective. Plants have a great potential to serve as biomaterials and scaffolds in tissue engineering but further studies are necessary to investigate the standardization of obtained plant-derived scaffolds and their in vivo biocompatibility and biodegradation.
引用
收藏
页码:2731 / 2751
页数:20
相关论文
共 50 条
  • [41] Plant-derived inhibitors of human hyaluronidases
    Orlando, Z.
    Brossette, T.
    Jose, J.
    [J]. PLANTA MEDICA, 2013, 79 (13) : 1158 - 1158
  • [42] Antibacterial activities of plant-derived xanthones
    Liu, Xiaojia
    Shen, Jianzhong
    Zhu, Kui
    [J]. RSC MEDICINAL CHEMISTRY, 2022, 13 (02): : 107 - 116
  • [43] Plant-Derived and Endogenous Cannabinoids in Epilepsy
    Alberto Verrotti
    Miriam Castagnino
    Mauro Maccarrone
    Filomena Fezza
    [J]. Clinical Drug Investigation, 2016, 36 : 331 - 340
  • [44] An overview of tuberculosis plant-derived vaccines
    Rosales-Mendoza, Sergio
    Rios-Huerta, Regina
    Angulo, Carlos
    [J]. EXPERT REVIEW OF VACCINES, 2015, 14 (06) : 877 - 889
  • [45] Plant-derived compounds in clinical trials
    Saklani, Arvind
    Kutty, Samuel K.
    [J]. DRUG DISCOVERY TODAY, 2008, 13 (3-4) : 161 - 171
  • [46] PLANT-DERIVED SWEETENERS SET TO GROW
    不详
    [J]. FOOD AUSTRALIA, 2014, 66 (01): : 8 - 8
  • [47] Lactic fermentation of plant-derived substrates
    Soldi, Sara
    Elli, Marina
    [J]. AGRO FOOD INDUSTRY HI-TECH, 2010, 21 (03): : 9 - +
  • [48] Plant-derived biomolecules in fermented cabbage
    Tolonen, M
    Taipale, M
    Viander, B
    Pihlava, JM
    Korhonen, H
    Ryhänen, EL
    [J]. JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2002, 50 (23) : 6798 - 6803
  • [49] Special Issue on Plant-derived Vaccines
    Ellis, Ronald W.
    Riedmann, Eva M.
    [J]. HUMAN VACCINES, 2011, 7 (03): : 285 - 285
  • [50] THE DEVELOPMENT OF PLANT-DERIVED DRUGS IN CHINA
    YANLIN, Z
    [J]. PHARMACY INTERNATIONAL, 1982, 3 (04): : 138 - 138