Back to Search
Start Over
Post-natal cardiomyocytes can generate iPS cells with an enhanced capacity toward cardiomyogenic re-differentation
- Source :
- Cell Death and Differentiation, Cell death and differentiation 19 (2012): 1162–1174. doi:10.1038/cdd.2011.205, info:cnr-pdr/source/autori:R. Rizzi 1,2; E. Di Pasquale 2,3; P. Portararo 2; R. Papait 2,3; P. Cattaneo 2,3; M.V.G. Latronico 2; C. Altomare 4; L. Sala 4; A. Zaza 4; E. Hirsch 5; L. Naldini 6; G. Condorelli 7,8; C. Bearzi 1,2/titolo:Post-natal cardiomyocytes can generate iPS cells with an enhanced capacity toward cardiomyogenic re-differentation/doi:10.1038%2Fcdd.2011.205/rivista:Cell death and differentiation/anno:2012/pagina_da:1162/pagina_a:1174/intervallo_pagine:1162–1174/volume:19
- Publication Year :
- 2012
- Publisher :
- Springer Nature, 2012.
-
Abstract
- Adult mammalian cells can be reprogrammed to a pluripotent state by forcing the expression of a few embryonic transcription factors. The resulting induced pluripotent stem (iPS) cells can differentiate into cells of all three germ layers. It is well known that post-natal cardiomyocytes (CMs) lack the capacity to proliferate. Here, we report that neonatal CMs can be reprogrammed to generate iPS cells that express embryonic-specific markers and feature gene-expression profiles similar to those of mouse embryonic stem (mES) cell and cardiac fibroblast (CF)-derived iPS cell populations. CM-derived iPS cells are able to generate chimeric mice and, moreover, re-differentiate toward CMs more efficiently then either CF-derived iPS cells or mES cells. The increased differentiation capacity is possibly related to CM-derived iPS cells retaining an epigenetic memory of the phenotype of their founder cell. CM-derived iPS cells may thus lead to new information on differentiation processes underlying cardiac differentiation and proliferation.
- Subjects :
- Octamer Transcription Factor-3
Cellular differentiation
Cell
cardiac fibroblasts
cardiac repair
cardiomyocytes
iPS cells
Animals
Bone Morphogenetic Protein 2
Calcium
Cell Differentiation
Cells, Cultured
Cellular Reprogramming
Embryonic Stem Cells
Gene Expression Regulation
Induced Pluripotent Stem Cells
Karyotyping
Kruppel-Like Factor 4
Kruppel-Like Transcription Factors
Mice
Myocytes, Cardiac
SOXB1 Transcription Factors
Induced Pluripotent Stem Cell
0302 clinical medicine
Nuclear Reprogramming
Induced pluripotent stem cell
Kruppel-Like Transcription Factor
0303 health sciences
Cultured
Cell biology
medicine.anatomical_structure
Cardiac
KOSR
Cells
Germ layer
SOXB1 Transcription Factor
Biology
03 medical and health sciences
Embryonic Stem Cell
medicine
Epigenetics
Molecular Biology
030304 developmental biology
Myocytes
Original Paper
Animal
Cell Biology
Embryonic stem cell
Molecular biology
030217 neurology & neurosurgery
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- Cell Death and Differentiation, Cell death and differentiation 19 (2012): 1162–1174. doi:10.1038/cdd.2011.205, info:cnr-pdr/source/autori:R. Rizzi 1,2; E. Di Pasquale 2,3; P. Portararo 2; R. Papait 2,3; P. Cattaneo 2,3; M.V.G. Latronico 2; C. Altomare 4; L. Sala 4; A. Zaza 4; E. Hirsch 5; L. Naldini 6; G. Condorelli 7,8; C. Bearzi 1,2/titolo:Post-natal cardiomyocytes can generate iPS cells with an enhanced capacity toward cardiomyogenic re-differentation/doi:10.1038%2Fcdd.2011.205/rivista:Cell death and differentiation/anno:2012/pagina_da:1162/pagina_a:1174/intervallo_pagine:1162–1174/volume:19
- Accession number :
- edsair.doi.dedup.....43caa04a41328c37d1acfdcae0ac78ba
- Full Text :
- https://doi.org/10.1038/cdd.2011.205