Hydrogel Scaffolds with Controlled Postgelation Modulation of Structures for 3D Cell Culture and Tissue Engineering

被引:3
|
作者
Yang, Jiaxuan [1 ,2 ]
Rong, Yan [1 ]
Chen, Xuesi [1 ,2 ]
He, Chaoliang [1 ,2 ]
机构
[1] Chinese Acad Sci, Changchun Inst Appl Chem, CAS Key Lab Polymer Ecomat, Changchun 130022, Peoples R China
[2] Univ Sci & Technol China, Dept Appl Chem, Hefei 230026, Anhui, Peoples R China
基金
中国国家自然科学基金;
关键词
3D cell culture; biological scaffold; hydrogel; structural modulation; tissue engineering; 3-DIMENSIONAL SCAFFOLDS; EXTRACELLULAR MATRICES; MECHANICAL-PROPERTIES; RESPONSIVE HYDROGELS; MEDIATED DEGRADATION; NETWORKS; ANGIOGENESIS; ECM; CONSTRUCTION; POROSITY;
D O I
10.1002/macp.202300365
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Hydrogels are hydrophilic three-dimensional networks containing a large amount of water, with physicochemical properties similar to extracellular matrix and controlled mechanical strength, making them ideal scaffolds for 3D cell culture and tissue engineering. However, the cross-linked hydrogel network often restricts the migration of cells and the exchange of nutrients, which affects cell proliferation and the development of normal tissues. In recent years, hydrogels with pore-channel structures have attracted significant attention, but these spatial structures are usually preconstructed before gelation, posing challenges in meeting the dynamic physiological conditions required during cell and tissue growth. Therefore, considerable efforts have been devoted to structurally regulate the scaffolds after gelation, so as to enhance the interactions between the scaffolds and cells for promoting the growth of cells and tissues. This review firstly outlines the preparation of hydrogel scaffolds with pore structure and the necessity of postgelation pore modulation. Two types of methods for postgelation pore modulation, including chemical degradation and physical dissolution, are then summarized. Finally, the potential application of such postgelation structural modulation in 3D cell culture and tissue engineering is discussed. Various methods of structural modulation of hydrogels after gelation are emphasized here. The figure illustrates the process of internal structural changes in a hydrogel after different stimulations. These methods enable the fabrication of pore size structures within hydrogels. This hydrogel scaffold has potential applications in 3D cell culture and tissue engineering.image
引用
收藏
页数:14
相关论文
共 50 条
  • [41] Ultrafast lasers simplify fabrication of 3D hydrogel tissue scaffolds
    不详
    LASER FOCUS WORLD, 2015, 51 (11): : 10 - 10
  • [42] Preparation of Multi-Scale Hydrogel Scaffolds for Tissue Engineering Through Biologic Hydrogel 3D Printing and Forming System
    Liu, Yuanyuan
    Lian, Hongjun
    Wang, Yu
    Zhang, Yi
    Xie, Shaorong
    Pu, Huayan
    Peng, Yan
    Xin, Liming
    Sun, Yi
    Luo, Jun
    Yang, Yang
    JOURNAL OF BIOMATERIALS AND TISSUE ENGINEERING, 2018, 8 (09) : 1244 - 1249
  • [43] Applications of 3D printed bone tissue engineering scaffolds in the stem cell field
    Su, Xin
    Wang, Ting
    Guo, Shu
    REGENERATIVE THERAPY, 2021, 16 : 63 - 72
  • [44] 3D plotted PCL scaffolds for stem cell based bone tissue engineering
    Yilgor, Pinar
    Sousa, Rui A.
    Reis, Rui L.
    Hasirci, Nesrin
    Hasirci, Vasif
    MACROMOLECULAR SYMPOSIA, 2008, 269 : 92 - 99
  • [45] 3D Printing of Cell-Container-Like Scaffolds for Multicell Tissue Engineering
    Wang, Xiaoya
    Zhang, Meng
    Ma, Jingge
    Xu, Mengchi
    Chang, Jiang
    Gelinsky, Michael
    Wu, Chengtie
    ENGINEERING, 2020, 6 (11) : 1276 - 1284
  • [46] Development of 3D PVA scaffolds for cardiac tissue engineering and cell screening applications
    Dattola, Elisabetta
    Parrotta, Elvira Immacolata
    Scalise, Stefania
    Perozziello, Gerardo
    Limongi, Tania
    Candeloro, Patrizio
    Coluccio, Maria Laura
    Maletta, Carmine
    Bruno, Luigi
    De Angelis, Maria Teresa
    Santamaria, Gianluca
    Mollace, Vincenzo
    Lamanna, Ernesto
    Di Fabrizio, Enzo
    Cuda, Giovanni
    RSC ADVANCES, 2019, 9 (08) : 4246 - 4257
  • [47] Biofabrication of glass scaffolds by 3D printing for tissue engineering
    Oliveira Pires, Liliana Sofia
    Figueira Vaz Fernandes, Maria Helena
    Marques de Oliveira, Jose Martinho
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2018, 98 (9-12): : 2665 - 2676
  • [48] 3D bioactive composite scaffolds for bone tissue engineering
    Turnbull, Gareth
    Clarke, Jon
    Picard, Frederic
    Riches, Philip
    Jia, Luanluan
    Han, Fengxuan
    Li, Bin
    Shu, Wenmiao
    BIOACTIVE MATERIALS, 2018, 3 (03) : 278 - 314
  • [49] Biofabrication of glass scaffolds by 3D printing for tissue engineering
    Liliana Sofia Oliveira Pires
    Maria Helena Figueira Vaz Fernandes
    José Martinho Marques de Oliveira
    The International Journal of Advanced Manufacturing Technology, 2018, 98 : 2665 - 2676
  • [50] 3D printing of ceramic scaffolds for engineering of bone tissue
    Barinov S.M.
    Vakhrushev I.V.
    Komlev V.S.
    Mironov A.V.
    Popov V.K.
    Teterina A.Y.
    Fedotov A.Y.
    Yarygin K.N.
    Inorganic Materials: Applied Research, 2015, 6 (04) : 316 - 322