"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
  • [31] Monolithic Integration of All-in-One Supercapacitor for 3D Electronics
    Wang, Yang
    Su, Songyang
    Cai, Lejuan
    Qiu, Bocheng
    Wang, Ni
    Xiong, Jie
    Yang, Cheng
    Tao, Xiaoming
    Chai, Yang
    ADVANCED ENERGY MATERIALS, 2019, 9 (15)
  • [32] Modeling the printability of photocuring and strength adjustable hydrogel bioink during projection-based 3D bioprinting
    Sun, Yuan
    Yu, Kang
    Nie, Jing
    Sun, Miao
    Fu, Jianzhong
    Wang, Huiming
    He, Yong
    BIOFABRICATION, 2021, 13 (03)
  • [33] Protocol for 3D Bioprinting Mesenchymal Stem Cell-derived Neural Tissues Using a Fibrin-based Bioink
    Perez, Milena Restan
    Masri, Nadia Z.
    Walters-Shumka, Jonathan
    Kahale, Sarah
    Willerth, Stephanie M.
    BIO-PROTOCOL, 2023, 13 (09):
  • [34] Lotus seedpod-inspired hydrogels as an all-in-one platform for culture and delivery of stem cell spheroids
    Kim, Se-jeong
    Park, Jaesung
    Kim, Eun Mi
    Choi, Jong-Jin
    Kim, Ha-Na
    Chin, Ian L.
    Choi, Yu Suk
    Moon, Sung-Hwan
    Shin, Heungsoo
    BIOMATERIALS, 2019, 225
  • [35] Cryopreserved cell-laden alginate microgel bioink for 3D bioprinting of living tissues
    Jeon, O.
    Lee, Y. B.
    Hinton, T. J.
    Feinberg, A. W.
    Alsberg, E.
    MATERIALS TODAY CHEMISTRY, 2019, 12 : 61 - 70
  • [36] All-Cellulose Hydrogel-Based Bioinks for the Versatile 3D Bioprinting of Different Cell Lines
    Carvalho, Joao P. F.
    Lameirinhas, Nicole S.
    Teixeira, Maria C.
    Luis, Jorge L.
    Oliveira, Helena
    Oliveira, Jose M.
    Silvestre, Armando J. D.
    Vilela, Carla
    Freire, Carmen S. R.
    BIOMACROMOLECULES, 2025,
  • [37] Injectable neural stem cell-laden gelatin-based bioink for 3D bioprinting an in vitro brain tissue model
    Li, Yi-Chen
    TISSUE ENGINEERING PART A, 2022, 28 : 360 - 360
  • [38] Hyaluronic acid based next generation bioink for 3D bioprinting of human stem cell derived corneal stromal model with innervation
    Moro, Anni
    Samanta, Sumanta
    Honkamaki, Laura
    Rangasami, Vignesh K.
    Puistola, Paula
    Kauppila, Maija
    Narkilahti, Susanna
    Miettinen, Susanna
    Oommen, Oommen
    Skottman, Heli
    BIOFABRICATION, 2023, 15 (01)
  • [39] All-in-One Cellulose Nanocrystals for 3D Printing of Nanocomposite Hydrogels
    Wang, Jieping
    Chiappone, Annalisa
    Roppolo, Ignazio
    Shao, Feng
    Fantino, Erika
    Lorusso, Massimo
    Rentsch, Daniel
    Dietliker, Kurt
    Pirri, Candido Fabrizio
    Gruetzmacher, Hansjorg
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2018, 57 (09) : 2353 - 2356
  • [40] Graphene Oxide: An All-in-One Processing Additive for 3D Printing
    Garcia-Tunon, Esther
    Feilden, Ezra
    Zheng, Han
    D'Elia, Eleonora
    Leong, Alan
    Saiz, Eduardo
    ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (38) : 32977 - 32989