4.7 Article

Continuous human iPSC-macrophage mass production by suspension culture in stirred tank bioreactors

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NATURE PROTOCOLS
卷 17, 期 2, 页码 513-539

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NATURE PORTFOLIO
DOI: 10.1038/s41596-021-00654-7

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资金

  1. German Research Foundation (Deutsche Forschungsgemeinschaft, DFG) [REBIRTH EXC 62/3, ZW64/4-1, ZW 64/42, KFO311/ZW64/7-1]
  2. German Ministry for Education and Science (Bundesministerium fur Bildung und Forschung, BMBF) [01EK1602A, 13N14086, 01EK1601A, 655 13XP5092B, 031L0249]
  3. Forderung aus Mitteln des Niedersachsischen Vorab [ZN3340]
  4. Else Kroner-Fresenius-Stiftung (EKFS) [2016_A146]
  5. Hannover Medical School Transplantation Center (Tx Center)
  6. European Society of Clinical Microbiology and Infectious Diseases (ESCMID)
  7. European Research Council (ERC) under the European Union's Horizon 2020 research and innovation program [852178]
  8. European Research Council (ERC) [852178] Funding Source: European Research Council (ERC)

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This study presents a detailed protocol for mass production of iPSC-derived macrophages in scalable suspension culture or in STBRs, allowing for stable generation of functional and highly pure macrophages. The technology enables real-time monitoring of crucial process parameters, promoting systematic process development, optimization, and linear upscaling.
Macrophages derived from human induced pluripotent stem cells (iPSCs) have the potential to enable the development of cell-based therapies for numerous disease conditions. We here provide a detailed protocol for the mass production of iPSC-derived macrophages (iPSC-Mac) in scalable suspension culture on an orbital shaker or in stirred-tank bioreactors (STBRs). This strategy is straightforward, robust and characterized by the differentiation of primed iPSC aggregates into 'myeloid-cell-forming-complex' intermediates by means of a minimal cytokine cocktail. In contrast to the 'batch-like differentiation approaches' established for other iPSC-derived lineages, myeloid-cell-forming-complex-intermediates are stably maintained in suspension culture and continuously generate functional and highly pure iPSC-Mac. Employing a culture volume of 120 ml in the STBR platform, similar to 1-4 x 10(7) iPSC-Mac can be harvested at weekly intervals for several months. The STBR technology allows for real-time monitoring of crucial process parameters such as biomass, pH, dissolved oxygen, and nutrition levels; the system also promotes systematic process development, optimization and linear upscaling. The process duration, from the expansion of iPSC until the first iPSC-Mac harvest, is 28 d. Successful application of the protocol requires expertise in pluripotent stem cell culture, differentiation and analytical methods, such as flow cytometry. Fundamental know-how in biotechnology is also advantageous to run the process in the STBR platform. The continuous, scalable production of well-defined iPSC-Mac populations is highly relevant to various fields, ranging from developmental biology, immunology and cell therapies to industrial applications for drug safety and discovery.

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