Scalable expansion of iPSC and their derivatives across multiple lineages
Tài liệu tham khảo
Takahashi, 2007, Induction of pluripotent stem cells from adult human fibroblasts by defined factors, Cell, 131, 861, 10.1016/j.cell.2007.11.019
Yu, 2007, Induced pluripotent stem cell lines derived from human somatic cells, Science, 318, 1917, 10.1126/science.1151526
Shi, 2016, Induced pluripotent stem cell technology: a decade of progress, Nat. Rev. Drug Discov., 16, 115, 10.1038/nrd.2016.245
Turner, 2013, Toward the development of a global induced pluripotent stem cell library, Cell Stem Cell, 13, 382, 10.1016/j.stem.2013.08.003
Stacey, 2021, The International Stem Cell Banking Initiative (ISCBI), Stem Cell Res., 53, 10.1016/j.scr.2021.102265
Sullivan, 2020, The Global Alliance for iPSC Therapies (GAiT), Stem Cell Res., 49, 10.1016/j.scr.2020.102036
Kurtz, 2014, Regulatory insight into the European human pluripotent stem cell registry, Stem Cells Dev., 23, 51, 10.1089/scd.2014.0319
Mah, 2020, Access to stem cell data and registration of pluripotent cell lines: the human pluripotent stem cell registry (hPSCreg), Stem Cell Res., 47, 10.1016/j.scr.2020.101887
Steeg, 2020, The EBiSC iPSC bank for disease studies, Stem Cell Res., 49, 10.1016/j.scr.2020.102034
Hanatani, 2021, CiRA iPSC seed stocks (CiRA’s iPSC Stock Project), Stem Cell Res., 50, 10.1016/j.scr.2020.102033
Grimm, 2015, High-content assay multiplexing for toxicity screening in induced pluripotent stem cell-derived cardiomyocytes and hepatocytes, ASSAY Drug Dev. Technol., 13, 529, 10.1089/adt.2015.659
Witt, 2020, An automated and high-throughput-screening compatible pluripotent stem cell-based test platform for developmental and reproductive toxicity assessment of small molecule compounds, Cell Biol. Toxicol., 2, 229
del Álamo, 2016, High throughput physiological screening of iPSC-derived cardiomyocytes for drug development, Biochim. Et Biophys. Acta (BBA) - Mol. Cell Res., 1863, 1717, 10.1016/j.bbamcr.2016.03.003
Villa-Diaz, 2013, Concise review: The evolution of human pluripotent stem cell culture: from feeder cells to synthetic coatings, Stem Cells, 31, 1, 10.1002/stem.1260
Tohyama, 2017, Efficient large-scale 2D culture system for human induced pluripotent stem cells and differentiated cardiomyocytes, Stem Cell Rep., 9, 1406, 10.1016/j.stemcr.2017.08.025
Thomas, 2008, Automated, scalable culture of human embryonic stem cells in feeder-free conditions, Biotechnol. Bioeng., 102, 1636, 10.1002/bit.22187
Gerlach, 2016, Multicompartmental hollow-fiber-based bioreactors for dynamic three-dimensional perfusion culture, Methods Mol. Biol.
Paccola Mesquita, 2019, Laminin as a potent substrate for large-scale expansion of human induced pluripotent stem cells in a closed cell expansion system, Stem Cells Int., 10.1155/2019/9704945
Ikeda, 2017, Cell fiber-based three-dimensional culture system for highly efficient expansion of human induced pluripotent stem cells, Sci. Rep., 7, 1, 10.1038/s41598-017-03246-2
A.K. Chen, X. Chen, A.B.H. Choo, S. Reuveny, S.K.W. Oh, Expansion of Human Embryonic Stem Cells on Cellulose Microcarriers, in: Current Protocols in Stem Cell Biology, John Wiley & Sons, Ltd, 2010: pp. 1C.11.1–1C.11.14. https://doi.org/10.1002/9780470151808.sc01c11s14.
Phillips, 2008, Attachment and growth of human embryonic stem cells on microcarriers, J. Biotechnol., 138, 24, 10.1016/j.jbiotec.2008.07.1997
Oh, 2009, Long-term microcarrier suspension cultures of human embryonic stem cells, Stem Cell Res., 2, 219, 10.1016/j.scr.2009.02.005
Lock, 2009, Expansion and differentiation of human embryonic stem cells to endoderm progeny in a microcarrier stirred-suspension culture, Tissue Eng. Part A, 15, 2051, 10.1089/ten.tea.2008.0455
Gepp, 2017, Bioactive surfaces from seaweed-derived alginates for the cultivation of human stem cells, J. Appl. Phycol, 5, 2451, 10.1007/s10811-017-1130-6
Chen, 2013, Application of human mesenchymal and pluripotent stem cell microcarrier cultures in cellular therapy, Biotechnol. Adv., 31, 1032, 10.1016/j.biotechadv.2013.03.006
Kehoe, 2010, Scalable stirred-suspension bioreactor culture of human pluripotent stem cells, Tissue Eng. Part A, 16, 405, 10.1089/ten.tea.2009.0454
Rodrigues, 2018, Dissolvable microcarriers allow scalable expansion and harvesting of human induced pluripotent stem cells under xeno-free conditions, Biotechnol. J., 1800461
Watanabe, 2007, A ROCK inhibitor permits survival of dissociated human embryonic stem cells, Nat. Biotechnol., 25, 681, 10.1038/nbt1310
R. Zweigerdt, Large Scale Production of Stem Cells and Their Derivatives, in: U. Martin (Ed.), Engineering of Stem Cells, Springer, Berlin, Heidelberg, Germany, 2009: pp. 201–235. https://doi.org/10.1007/10_2008_27.
Zweigerdt, 2011, Scalable expansion of human pluripotent stem cells in suspension culture, Nat. Protoc., 6, 689, 10.1038/nprot.2011.318
Singh, 2010, Up-scaling single cell-inoculated suspension culture of human embryonic stem cells, Stem Cell Res., 4, 165, 10.1016/j.scr.2010.03.001
Olmer, 2012, Suspension culture of human pluripotent stem cells in controlled, stirred bioreactors, Tissue Eng. Part C: Methods, 18, 772, 10.1089/ten.tec.2011.0717
Kropp, 2016, Impact of feeding strategies on the scalable expansion of human pluripotent stem cells in single-use stirred tank bioreactors, Stem Cells Transl. Med., 5, 1289, 10.5966/sctm.2015-0253
Elanzew, 2015, A reproducible and versatile system for the dynamic expansion of human pluripotent stem cells in suspension, Biotechnol. J., 10, 1589, 10.1002/biot.201400757
Kwok, 2018, Scalable stirred suspension culture for the generation of billions of human induced pluripotent stem cells using single-use bioreactors, J. Tissue Eng. Regen. Med., 12, e1076, 10.1002/term.2435
Manstein, 2021, High density bioprocessing of human pluripotent stem cells by metabolic control and in silico modeling, Stem Cells Transl. Med., 1063, 10.1002/sctm.20-0453
Borys, 2021, Overcoming bioprocess bottlenecks in the large-scale expansion of high-quality hiPSC aggregates in vertical-wheel stirred suspension bioreactors, Stem Cell Res. Ther. 2021 12, 1, 1
Rodrigues, 2018, Scalable culture of human induced pluripotent cells on microcarriers under xeno-free conditions using single-use vertical-wheelTM bioreactors, J. Chem. Technol. Biotechnol., 93, 3597, 10.1002/jctb.5738
Davis, 2018, Automated closed-system expansion of pluripotent stem cell aggregates in a rocking-motion bioreactor, Slas Technol.: Transl. Life Sci. Innov., 23, 364, 10.1177/2472630318760745
Li, 2015, Rho kinase inhibitor Y-27632 promotes the differentiation of human bone marrow mesenchymal stem cells into keratinocyte-like cells in xeno-free conditioned medium, Stem Cell Res. Ther., 6, 1, 10.1186/s13287-015-0008-2
Maldonado, 2016, ROCK inhibitor primes human induced pluripotent stem cells to selectively differentiate towards mesendodermal lineage via epithelial-mesenchymal transition-like modulation, Stem Cell Res., 17, 222, 10.1016/j.scr.2016.07.009
Rasmussen, 2014, Transient p53 suppression increases reprogramming of human fibroblasts without affecting apoptosis and DNA damage, Stem Cell Rep., 3, 404, 10.1016/j.stemcr.2014.07.006
Schmid, 2021, Generation of two gene edited iPSC-lines carrying a DOX-inducible NGN2 expression cassette with and without GFP in the AAVS1 locus, Stem Cell Res., 52, 10.1016/j.scr.2021.102240
Altmaier, 2022, Human iPSC-derived hepatocytes in 2D and 3D suspension culture for cryopreservation and in vitro toxicity studies, Reproductive Toxicology, 10.1016/j.reprotox.2022.05.005
Shih, 2021, Development of a fully human assay combining NGN2-inducible neurons co-cultured with iPSC-derived astrocytes amenable for electrophysiological studies, Stem Cell Res., 54, 10.1016/j.scr.2021.102386
Zhang, 2015, Universal cardiac induction of human pluripotent stem cells in two and three-dimensional formats: Implications for in vitro maturation, Stem Cells, 33, 1456, 10.1002/stem.1964
Fischer, 2018, A complete workflow for the differentiation and the dissociation of hiPSC-derived cardiospheres, Stem Cell Res., 32, 65, 10.1016/j.scr.2018.08.015
Rezania, 2014, Reversal of diabetes with insulin-producing cells derived in vitro from human pluripotent stem cells, Nat. Biotechnol., 32, 1121, 10.1038/nbt.3033
Carpentier, 2016, Hepatic differentiation of human pluripotent stem cells in miniaturized format suitable for high-throughput screen, Stem Cell Res., 16, 640, 10.1016/j.scr.2016.03.009
Pettinato, 2019, Generation of fully functional hepatocyte-like organoids from human induced pluripotent stem cells mixed with Endothelial Cells, Sci. Rep., 9, 1, 10.1038/s41598-019-45514-3
Shi, 2012, Directed differentiation of human pluripotent stem cells to cerebral cortex neurons and neural networks, Nat. Protoc., 7, 1836, 10.1038/nprot.2012.116
Reinhardt, 2013, Derivation and expansion using only small molecules of human neural progenitors for neurodegenerative disease modeling, PLoS One, 8, 10.1371/annotation/6a917a2e-df4a-4ad9-99bb-6aa7218b833e
Chambers, 2009, Highly efficient neural conversion of human ES and iPS cells by dual inhibition of SMAD signaling, Nat. Biotechnol., 27, 275, 10.1038/nbt.1529
Blinova, 2017, Comprehensive translational assessment of human-induced pluripotent stem cell derived cardiomyocytes for evaluating drug-induced arrhythmias, Toxicol. Sci., 155, 234, 10.1093/toxsci/kfw200
Harrison, 2021, Liver organoids: recent developments, limitations and potential, Front. Med., 8, 534, 10.3389/fmed.2021.574047