4.8 Article

A fully defined and scalable 3D culture system for human pluripotent stem cell expansion and differentiation

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NATL ACAD SCIENCES
DOI: 10.1073/pnas.1309408110

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  1. California Institute of Regenerative Medicine [RT2-02022, T1-00007]

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Human pluripotent stem cells (hPSCs), including human embryonic stem cells and induced pluripotent stem cells, are promising for numerous biomedical applications, such as cell replacement therapies, tissue and whole-organ engineering, and high-throughput pharmacology and toxicology screening. Each of these applications requires large numbers of cells of high quality; however, the scalable expansion and differentiation of hPSCs, especially for clinical utilization, remains a challenge. We report a simple, defined, efficient, scalable, and good manufacturing practice-compatible 3D culture system for hPSC expansion and differentiation. It employs a thermoresponsive hydrogel that combines easy manipulation and completely defined conditions, free of any human-or animal-derived factors, and entailing only recombinant protein factors. Under an optimized protocol, the 3D system enables long-term, serial expansion of multiple hPSCs lines with a high expansion rate (similar to 20-fold per 5-d passage, for a 10(72)-fold expansion over 280 d), yield (similar to 2.0 x 10(7) cells per mL of hydrogel), and purity (similar to 95% Oct4+), even with single-cell inoculation, all of which offer considerable advantages relative to current approaches. Moreover, the system enabled 3D directed differentiation of hPSCs into multiple lineages, including dopaminergic neuron progenitors with a yield of similar to 8 x 10(7) dopaminergic progenitors per mL of hydrogel and similar to 80-fold expansion by the end of a 15-d derivation. This versatile system may be useful at numerous scales, from basic biological investigation to clinical development.

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