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Titlebook: Bioreactors in Stem Cell Biology; Methods and Protocol Kursad Turksen Book 2016 Springer Science+Business Media New York 2016 Biomaterials.

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楼主: CRUST
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Perfusion Stirred-Tank Bioreactors for 3D Differentiation of Human Neural Stem Cells,in 3D cultures have great potential as complementary tools in preclinical research, bridging the gap between human clinical studies and animal models. The development of robust and scalable processes for the 3D differentiation of hNSC can improve the accuracy of early stage development in preclinica
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https://doi.org/10.1007/978-3-031-28967-5based on the presentation of pertinent markers are also presented. Spinner flask culture with its relatively low capital and operating costs is appealing to laboratories interested in scaling up their production of stem/progenitor cells.
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People in Business: Context and Charactermmonly used in large scale expansion of adherent cells. This chapter describes a detailed culture protocol for hMSC expansion in a 125 mL spinner flask using microcarriers, Cytodex I, and a procedure for cell seeding, expansion, metabolic sampling, and quantification and visualization using microculture tetrazolium (MTT) reagent.
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Corporate Culture and Organisational Ethicsd differentiation of MSCs, including the procedures to monitor the proliferation, metabolic status and phenotype of MSCs during suspension culture. Moreover, this work proposes suitable materials for cGMP compliant culture conditions enabling the clinical grade production of MSCs.
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Monica Moran,Carole Steketee,Kirsty Marlesicroenvironment. The bioreactor platform used in these experiments also allows the implementation of physiologically relevant mechanical signals. Here, we describe a method to build an in vitro model of Ewing’s sarcoma that mimics the key properties of the native tumor and provides the tissue context and physical regulatory signals.
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Dawn Forman,Marion Jones,Jill Thistlethwaiteerentiation. We also showed that bundles of axons formed and extended into the microchannels..Taken together, these results demonstrated that microfluidics technology can provide useful tools to study neurite outgrowth and axon guidance of neural cells, which are derived from human embryonic stem cells.
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