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Comprehensive coverage of the entire induced pluripotent stem cell
basic work flow Pluripotent stem cells (PSC) can divide
indefinitely, self-renew, and can differentiate to functionally
reconstitute almost any cell in the normal developmental pathway,
given the right conditions. This comprehensive book, which was
developed from a training course, covers all of the PSCs
(embryonic, embryonic germ, and embryonic carcinoma) and their
functions. It demonstrates the feeder-dependent and feeder-free
culture of hESC and hiPSC, which will be referred to in all
protocols as PSCs. It also addresses the methods commonly used to
determine pluripotency, as defined by self-renewal marker
expression and differentiation potential. Human Pluripotent Stem
Cells: A Practical Guide offers in-depth chapter coverage of
introduction to stem cell, PSC culture, reprogramming,
differentiation, PSC characterization, and more. It also includes
four appendixes containing information on reagents, medias, and
solutions; common antibodies; consumable and equipment; and logs
and forms. Includes helpful tips and tricks that are normally
omitted from regular research papers Features useful images to
support the technical aspects and results visually as well as
diagrammatic illustrations Presents specific sections (ie:
reprogramming, differentiation) in a concise and easily digestible
manner Written by experts with extensive experience in stem cell
technologies Human Pluripotent Stem Cells: A Practical Guide is an
ideal text for stem cell researchers, including principal
investigators, and others in university and industry settings, and
for new graduate students in PSC labs.
This book describes basic cell engineering methods, emphasizing
stem cell applications, and use of the genetically modified stem
cells in cell therapy and drug discovery. Together, the chapters
introduce and offer insights on new techniques for engineering of
stem cells and the delivery of transgenes into stem cells via
various viral and non-viral systems. The book offers a guide to the
types of manipulations currently available to create genetically
engineered stem cells that suit any investigator's purpose, whether
it's basic science investigation, creation of disease models and
screens, or cells for therapeutic applications.
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