Chitosan 3D cell culture system promotes naive-like features of human induced pluripotent stem cells: A novel tool to sustain pluripotency and facilitate differentiation

被引:56
作者
Chang, Po-Hsiang [1 ]
Chao, Hsiao-Mei [1 ,2 ]
Chern, Edward [1 ,3 ]
Hsu, Shan-hui [4 ]
机构
[1] Natl Taiwan Univ, Dept Biochem Sci & Technol, niChe Lab Stem Cell & Regenerat Med, Taipei 10617, Taiwan
[2] Taipei Med Univ, Wan Fang Hosp, Dept Pathol, Taipei 11696, Taiwan
[3] Natl Taiwan Univ, Res Ctr Dev Biol & Regenerat Med, Taipei 10617, Taiwan
[4] Natl Taiwan Univ, Inst Polymer Sci & Engn, Taipei 10617, Taiwan
关键词
Chitosan; Human induced pluripotent stem cell; Naive pluripotency; 3D feeder-free culture system; SELF-RENEWAL; SPHEROID CULTURE; GENERATION; INDUCTION; STATE; MAINTENANCE; ADHESION; IDENTIFICATION; BIOMATERIALS; METABOLOME;
D O I
10.1016/j.biomaterials.2020.120575
中图分类号
R318 [生物医学工程];
学科分类号
100103 [病原生物学];
摘要
A simplified and cost-effective culture system for maintaining the pluripotency of human induced pluripotent stem cells (hiPSCs) is crucial for stem cell applications. Although recombinant protein-based feeder-free hiPSC culture systems have been developed, their manufacturing processes are expensive and complicated, which hinders hiPSC technology progress. Chitosan, a versatile biocompatible polysaccharide, has been reported as a biomaterial for three-dimensional (3D) cell culture system that promotes the physiological activities of mesenchymal stem cells and cancer cells. In the current study, we demonstrated that chitosan membranes sustained proliferation and pluripotency of hiPSCs in long-term culture (up to 365 days). Moreover, using vitronectin as the comparison group, the pluripotency of hiPSCs grown on the membranes was altered into a naive-like state, which, for pluripotent stem cells, is an earlier developmental stage with higher stemness. On the chitosan membranes, hiPSCs self-assembled into 3D spheroids with an average diameter of similar to 100 mu m. These hiPSC spheroids could be directly differentiated into lineage-specific cells from the three germ layers with 3D structures. Collectively, chitosan membranes not only promoted the naive pluripotent features of hiPSCs but also provided a novel 3D differentiation platform. This convenient biomaterial-based culture system may enable the effective expansion and accessibility of hiPSCs for regenerative medicine, disease modeling, and drug screening.
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页数:15
相关论文
共 89 条
[1]
Polymeric nanofibrous substrates stimulate pluripotent stem cells to form three-dimensional multilayered patty-like spheroids in feeder-free culture and maintain their pluripotency [J].
Alamein, Mohammad A. ;
Wolvetang, Ernst J. ;
Ovchinnikov, Dmitry A. ;
Stephens, Sebastien ;
Sanders, Katherine ;
Warnke, Patrick H. .
JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2015, 9 (09) :1078-1083
[2]
Glycolysis Regulates Human Embryonic Stem Cell Self-Renewal under Hypoxia through HIF-2α and the Glycolytic Sensors CTBPs [J].
Arthur, Sophie A. ;
Blaydes, Jeremy P. ;
Houghton, Franchesca D. .
STEM CELL REPORTS, 2019, 12 (04) :728-742
[3]
Transcriptomic analysis of 3D Cardiac Differentiation of Human Induced Pluripotent Stem Cells Reveals Faster Cardiomyocyte Maturation Compared to 2D Culture [J].
Branco, Mariana A. ;
Cotovio, Joao P. ;
Rodrigues, Carlos A. V. ;
Vaz, Sandra H. ;
Fernandes, Tiago G. ;
Moreira, Leonilde M. ;
Cabral, Joaquim M. S. ;
Diogo, Maria Margarida .
SCIENTIFIC REPORTS, 2019, 9 (1)
[4]
A Murine ESC-like State Facilitates Transgenesis and Homologous Recombination in Human Pluripotent Stem Cells [J].
Buecker, Christa ;
Chen, Hsu-Hsin ;
Polo, Jose Maria ;
Daheron, Laurence ;
Bu, Lei ;
Barakat, Tahsin Stefan ;
Okwieka, Patricia ;
Porter, Andrew ;
Gribnau, Joost ;
Hochedlinger, Konrad ;
Geijsen, Niels .
CELL STEM CELL, 2010, 6 (06) :535-546
[5]
Celiz AD, 2014, NAT MATER, V13, P570, DOI [10.1038/nmat3972, 10.1038/NMAT3972]
[6]
Induction of a Human Pluripotent State with Distinct Regulatory Circuitry that Resembles Preimplantation Epiblast [J].
Chan, Yun-Shen ;
Goeke, Jonathan ;
Ng, Jia-Hui ;
Lu, Xinyi ;
Gonzales, Kevin Andrew Uy ;
Tan, Cheng-Peow ;
Tng, Wei-Quan ;
Hong, Zhong-Zhi ;
Lim, Yee-Siang ;
Ng, Huck-Hui .
CELL STEM CELL, 2013, 13 (06) :663-675
[7]
Comparison of 2D and 3D neural induction methods for the generation of neural progenitor cells from human induced pluripotent stem cells [J].
Chandrasekaran, Abinaya ;
Avci, Hasan X. ;
Ochalek, Anna ;
Rosingh, Lone N. ;
Molnar, Kinga ;
Laszlo, Lajos ;
Bellak, Tamas ;
Teglasi, Annamaria ;
Pesti, Krisztina ;
Mike, Arpad ;
Phanthong, Phetcharat ;
Biro, Orsolya ;
Hall, Vanessa ;
Kitiyanant, Narisorn ;
Krause, Karl-Heinz ;
Kobolak, Julianna ;
Dinnyes, Andras .
STEM CELL RESEARCH, 2017, 25 :139-151
[8]
Comprehensive Mapping of Pluripotent Stem Cell Metabolism Using Dynamic Genome-Scale Network Modeling [J].
Chandrasekaran, Sriram ;
Zhang, Jin ;
Sun, Zhen ;
Zhang, Li ;
Ross, Christian A. ;
Huang, Yu-Chung ;
Asara, John M. ;
Li, Hu ;
Daley, George Q. ;
Collins, James J. .
CELL REPORTS, 2017, 21 (10) :2965-2977
[9]
Chitosan promotes cancer progression and stem cell properties in association with Wnt signaling in colon and hepatocellular carcinoma cells [J].
Chang, Po-Hsiang ;
Sekine, Keisuke ;
Chao, Hsiao-Mei ;
Hsu, Shan-hui ;
Chern, Edward .
SCIENTIFIC REPORTS, 2017, 7
[10]
Patient-derived induced pluripotent stem cells for models of cancer and cancer stem cell research [J].
Chao, Hsiao-Mei ;
Chern, Edward .
JOURNAL OF THE FORMOSAN MEDICAL ASSOCIATION, 2018, 117 (12) :1046-1057