Universal Peptide Hydrogel for Scalable Physiological Formation and Bioprinting of 3D Spheroids from Human Induced Pluripotent Stem Cells

被引:20
|
作者
Li, Quan [1 ]
Qi, Guangyan [2 ]
Liu, Xuming [3 ]
Bai, Jianfa [3 ]
Zhao, Jikai [1 ]
Tang, Guosheng [4 ]
Zhang, Yu Shrike [4 ,5 ]
Chen-Tsai, Ruby [6 ]
Zhang, Meng [7 ]
Wang, Donghai [1 ]
Zhang, Yuanyuan [8 ]
Atala, Anthony [8 ]
He, Jia-Qiang [9 ]
Sun, Xiuzhi Susan [1 ,2 ,8 ]
机构
[1] Kansas State Univ, Dept Biol & Agr Engn, Manhattan, KS 66506 USA
[2] Kansas State Univ, Dept Grain Sci & Ind, Manhattan, KS 66506 USA
[3] Kansas State Univ, Coll Vet Med, Manhattan, KS 66506 USA
[4] Harvard Med Sch, Div Engn Med, Dept Med, Brigham & Womens Hosp, Cambridge, MA 02139 USA
[5] Harvard Univ, Harvard Stem Cell Inst HSCI, Cambridge, MA 02138 USA
[6] Appl StemCell Inc, Milpitas, CA 95035 USA
[7] Kansas State Univ, Dept Ind Engn, Manhattan, KS 66506 USA
[8] Wake Forest Univ, Wake Forest Inst Regenerat Med, Winston Salem, NC 27151 USA
[9] Virginia Tech, Dept Biomed Sci & Pathobiol, Blacksburg, VA 24061 USA
关键词
3D culture; bioprinting; gel degradability; hiPSC physiological spheroids; self-healing hydrogels; SELF-RENEWAL; E-CADHERIN; PI3K/AKT; DIFFERENTIATION; MAINTENANCE; METHYLATION; VIABILITY; EXPANSION; SURFACES; SURVIVAL;
D O I
10.1002/adfm.202104046
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Human induced pluripotent stem cells (hiPSCs) are used for drug discoveries, disease modeling and show great potential for human organ regeneration. 3D culture methods have been demonstrated to be an advanced approach compared to the traditional monolayer (2D) method. Here, a self-healing universal peptide hydrogel is reported for manufacturing physiologically formed hiPSC spheroids. With 100 000 hiPSCs encapsulated in 500 mu L hydrogel, approximate to 50 000 spheroids mL(-1) (diameter 20-50 mu m) are generated in 5 d. The spheroids in the universal peptide hydrogel are viable (85-96%) and show superior pluripotency and differentiation potential based on multiple biomarkers. Cell performance is influenced by the degradability of the hydrogel but not by gel strength. Without postprinting crosslinking aided by UV or visible lights or chemicals, various patterns are easily extruded from a simple star to a kidney-like organ shape using the universal peptide hydrogel bioink showing acceptable printability. A 20.0 x 20.0 x 0.75 mm(3) sheet is finally printed with the universal peptide hydrogel bioink encapsulating hiPSCs and cultured for multiple days, and the hiPSC spheroids are physiologically formed and well maintained.
引用
收藏
页数:15
相关论文
共 50 条
  • [21] Generation of 3D Midbrain Organoids from Human- Induced Pluripotent Stem Cells
    Yangzom, Tsering
    Chen, Anbin
    Liang, Kristina Xiao
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2025, (216):
  • [22] Transcriptomic profiling analysis of the effect of palmitic acid on 3D spheroids of β-like cells derived from induced pluripotent stem cells
    Morisseau, Lisa
    Tokito, Fumiya
    Lucas, Mathilde
    Poulain, Stephane
    Kim, Soo Hyeon
    Plaisance, Valerie
    Pawlowski, Valerie
    Legallais, Cecile
    Jellali, Rachid
    Sakai, Yasuyuki
    Abderrahmani, Amar
    Leclerc, Eric
    GENE, 2024, 917
  • [23] Generation of hematopoietic cells from mouse pluripotent stem cells in a 3D culture system of self-assembling peptide hydrogel
    Shan, Wei
    Wang, Binsheng
    Xu, Yulin
    Li, Xia
    Li, Xue
    Wang, Huafang
    Lin, Yu
    Tie, Ruxiu
    Zhao, Qianhao
    Wang, Jinyong
    Zheng, Weiyan
    Hu, Yongxian
    Shi, Jimin
    Yu, Xiaohong
    Huang, He
    JOURNAL OF CELLULAR PHYSIOLOGY, 2020, 235 (03) : 2080 - 2090
  • [24] "All-in-one" zwitterionic granular hydrogel bioink for stem cell spheroids production and 3D bioprinting
    Zhang, Jiahui
    Xin, Wei
    Qin, Yechi
    Hong, Yuhao
    Xiahou, Zijie
    Zhang, Kunxi
    Fu, Peiliang
    Yin, Jingbo
    CHEMICAL ENGINEERING JOURNAL, 2022, 430
  • [25] 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
  • [26] NOVEL BIOINK DESIGN FOR 3D BIOPRINTING OF HUMAN PLURIPOTENT STEM CELL DERIVED CORNEAL EPITHELIAL CELLS
    Puistola, Paula
    Kauppila, Maija
    Skottman, Heli
    Moro, Anni
    TISSUE ENGINEERING PART A, 2022, 28 : S497 - S498
  • [27] 3D Bioprinting Human-Induced Pluripotent Stem Cells and Drug-Releasing Microspheres to Produce Responsive Neural Tissues
    De la Vega, Laura
    Abelseth, Laila
    Sharma, Ruchi
    Trivino-Paredes, Juan
    Restan, Milena
    Willerth, Stephanie M.
    ADVANCED NANOBIOMED RESEARCH, 2021, 1 (08):
  • [28] Neural Differentiation of Induced Pluripotent Stem Cells for a Xenogeneic Material-Free 3D Neurological Disease Model Neurulation from Pluripotent Cells Using a Human Hydrogel
    Valerio, Luis Sebastian Alexis
    Carrick, Frederick Robert
    Bedoya, Lina
    Sreerama, Sandeep
    Sugaya, Kiminobu
    CURRENT ISSUES IN MOLECULAR BIOLOGY, 2023, 45 (06) : 4574 - 4588
  • [29] Scalable Generation of Mesenchymal Stem Cells from Human Embryonic Stem Cells in 3D
    Yan, Li
    Jiang, Bin
    Li, Enqin
    Wang, Xiaoyan
    Ling, Qinjie
    Zheng, Dejin
    Park, Jung Woo
    Chen, Xin
    Cheung, Edwin
    Du, Xin
    Li, Yingcui
    Cheng, Gregory
    He, Erxing
    Xu, Ren-He
    INTERNATIONAL JOURNAL OF BIOLOGICAL SCIENCES, 2018, 14 (10): : 1196 - 1210
  • [30] Modeling human diseases with induced pluripotent stem cells: from 2D to 3D and beyond
    Liu, Chun
    Oikonomopoulos, Angelos
    Sayed, Nazish
    Wu, Joseph C.
    DEVELOPMENT, 2018, 145 (05):