"All-in-one" zwitterionic granular hydrogel bioink for stem cell spheroids production and 3D bioprinting

被引:33
|
作者
Zhang, Jiahui [1 ]
Xin, Wei [2 ]
Qin, Yechi [1 ]
Hong, Yuhao [1 ]
Xiahou, Zijie [1 ]
Zhang, Kunxi [1 ,3 ]
Fu, Peiliang [2 ]
Yin, Jingbo [1 ]
机构
[1] Shanghai Univ, Sch Mat Sci & Engn, Dept Polymer Mat, Shanghai 200444, Peoples R China
[2] Naval Med Univ, Shanghai Changzheng Hosp, Dept Orthoped, Shanghai 200003, Peoples R China
[3] Shanghai Univ Tradit Chinese Med, Putuo Hosp, Intervent Canc Inst Chinese Integrat Med, Shanghai 200060, Peoples R China
基金
中国国家自然科学基金;
关键词
3D printing; Granular hydrogel; Cell spheroids; Bioink; MULTICELLULAR SPHEROIDS; TISSUE; SCAFFOLD;
D O I
10.1016/j.cej.2021.132713
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Based on "bottom-up" strategy, cell-laden 3D bioprinting is an important process of fabricating sophisticated biomimetic structures. Stem cell spheroids possess better biological properties and are advanced as printing units. However, efficient and convenient preparation, collection and printing of cell spheroids remains a challenge. The present study developed a composite granular hydrogel acted as "all-in-one" multi-functional bioink to realize Adipose-derived stem cell (ASC) spheroids Production and reorganization. Poly(sulfobetaine methacrylate) (PSBMA) based microspheres were fabricated and self-assembled to a granular hydrogel. Then, Nisopropylacrylamide (NIPAM) and SBMA were co-polymerized in-situ inside of assembled PSBMA microspheres to further crosslink the assembled microspheres, forming a composite granular hydrogel, which possesses bulk feature and shear-thinning, self-healing properties. Caves were created by compressing composite granular hydrogels into sugar particles that removed via dissolution in water. Due to the non-fouling feature and the porous structure, numerous ASC spheroids were formed spontaneously inside the porous composite granular hydrogel, which were transferred conveniently to 3D printer. The spheroids-laden composite granular hydrogels showed well-performed extrudability and fidelity, realizing reorganization of the produced spheroids to the stable 3D constructs for further in vitro culture. ASC spheroids in granular hydrogel after 3D printing showed high level of viability and stemness, as well as efficient chondrogenic/osteogenic/adipogenic differentiation. The composite granular hydrogel thus shows potential toward stem cell researches such as organoids construction. The results of both in vitro drug toxicity and in vivo cartilage regeneration experiments showed spheroids-laden granular hydrogel is promising in drug screening and tissue regeneration.
引用
收藏
页数:14
相关论文
共 50 条
  • [41] 3D Bioprinting Pluripotent Stem Cell Derived Neural Tissues Using a Novel Fibrin Bioink Containing Drug Releasing Microspheres
    Sharma, Ruchi
    Smits, Imke P. M.
    De La Vega, Laura
    Lee, Christopher
    Willerth, Stephanie M.
    FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2020, 8
  • [42] StructureProfiler: an all-in-one tool for 3D protein structure profiling
    Meyder, Agnes
    Kampen, Stefanie
    Sieg, Jochen
    Faehrrolfes, Rainer
    Friedrich, Nils-Ole
    Flachsenberg, Florian
    Rarey, Matthias
    BIOINFORMATICS, 2019, 35 (05) : 874 - 876
  • [43] Stem Cell-Laden Hydrogel-Based 3D Bioprinting for Bone and Cartilage Tissue Engineering
    Yang, Zhimin
    Yi, Ping
    Liu, Zhongyue
    Zhang, Wenchao
    Mei, Lin
    Feng, Chengyao
    Tu, Chao
    Li, Zhihong
    FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2022, 10
  • [44] Using 3D Bioprinting Technology to Spatially Distribute Chondrocytes and Induced Pluripotent Stem Cells in Nanocellulose Bioink
    Hagg, D. A.
    Kalogeropoulos, T.
    Nguyen, D.
    Enejder, A.
    Gatenholm, P.
    Simonsson, S.
    TISSUE ENGINEERING PART A, 2015, 21 : S180 - S180
  • [45] 3D bioprinting patient-derived induced pluripotent stem cell models of Alzheimer’s disease using a smart bioink
    Benwood C.
    Walters-Shumka J.
    Scheck K.
    Willerth S.M.
    Bioelectronic Medicine, 2023, 9 (01)
  • [46] 3D bioprinting of a cell-laden antibacterial polysaccharide hydrogel composite
    Rastin, Hadi
    Ramezanpour, Mahnaz
    Hassan, Kamrul
    Mazinani, Arash
    Tung, Tran Thanh
    Vreugde, Sarah
    Losic, Dusan
    CARBOHYDRATE POLYMERS, 2021, 264
  • [47] 3D BIOPRINTING OF VASCULAR NETWORKS IN CELL-LADEN HYDROGEL CONSTRUCTS
    Bova, Lorenzo
    Falcone, Dario
    Kavanaugh, Aaron
    Micheli, Sara
    Zanella, Luca
    Benya, Paul
    Billi, Fabrizio
    Cimetta, Elisa
    TISSUE ENGINEERING PART A, 2022, 28 : S547 - S547
  • [48] Collagen-based bioink for 3D bioprinting to obtain mechanically enhanced porous 3D cell-laden structure
    Koo, YoungWon
    Lee, Hyeongjin
    Kim, WonJin
    Lee, Jiun
    Jo, SeoYul
    Kim, GeunHyung
    TISSUE ENGINEERING PART A, 2022, 28 : 691 - 691
  • [49] 3D Bioprinting of Cartilage Tissue Using Canine Mesenchymal Stem Cell Spheroids under the Optimal Growth Factor Condition
    Endo, K.
    Fujita, N.
    Kunitomi, Y.
    Takeda, T.
    Chen, J.
    Nakayama, K.
    Nishimura, R.
    TISSUE ENGINEERING PART A, 2017, 23 : S21 - S21
  • [50] 3D Bioprinting of cardiac tissue and cardiac stem cell therapy
    Alonzo, Matthew
    Anilkumar, Shweta
    Roman, Brian
    Tasnim, Nishat
    Joddar, Binata
    TRANSLATIONAL RESEARCH, 2019, 211 : 64 - 83