Abstract
The study of induced pluripotency is complicated by the need for infection with high-titer retroviral vectors, which results in genetically heterogeneous cell populations. We generated genetically homogeneous 'secondary' somatic cells that carry the reprogramming factors as defined doxycycline (dox)-inducible transgenes. These cells were produced by infecting fibroblasts with dox-inducible lentiviruses, reprogramming by dox addition, selecting induced pluripotent stem cells and producing chimeric mice. Cells derived from these chimeras reprogram upon dox exposure without the need for viral infection with efficiencies 25- to 50-fold greater than those observed using direct infection and drug selection for pluripotency marker reactivation. We demonstrate that (i) various induction levels of the reprogramming factors can induce pluripotency, (ii) the duration of transgene activity directly correlates with reprogramming efficiency, (iii) cells from many somatic tissues can be reprogrammed and (iv) different cell types require different induction levels. This system facilitates the characterization of reprogramming and provides a tool for genetic or chemical screens to enhance reprogramming.
MeSH Terms
Animals
Animals, Genetically Modified
Cell Dedifferentiation
Cellular Reprogramming/drug effects
Chimera/genetics
Doxycycline/pharmacology
Epigenesis, Genetic
Fibroblasts/cytology
Genetic Vectors
Hybrid Cells
Lentivirus/genetics
Mice
Mice, Transgenic/genetics
Pluripotent Stem Cells/cytology,drug effects
Transgenes
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Wernig Marius
Whitehead Institute for Biomedical Research, 9 Cambridge Center, Cambridge, Massachusetts 02142, USA.
Lengner Christopher J
Hanna Jacob
Lodato Michael A
Steine Eveline
Foreman Ruth
Staerk Judith
Markoulaki Styliani
Jaenisch Rudolf
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