Lineage-restricted cells can be reprogrammed to a pluripotent state through overexpression of defined transcription factors. Here, we summarize recent progress in the direct reprogramming field and discuss data comparing embryonic stem (ES) and induced pluripotent stem (iPS) cells. Results from many independent groups suggest that mouse and human iPS cells, once established, generally exhibit a normal karyotype, are transcriptionally and epigenetically similar to ES cells and maintain the potential to differentiate into derivatives of all germ layers. Recent developments provide optimism that safe, viral-free human iPS cells could be derived routinely in the near future. An important next step will be to identify ways of assessing which iPS...
The ability to induce pluripotency in human adult somatic cells by defined transcription factor expr...
Direct reprogramming of somatic cells into a pluripotent state has attracted enor-mous interest in b...
Abstract With their capability to undergo unlimited self-renewal and to differentiate into all cell ...
Both human and mouse somatic cells were reported to be reprogrammed to pluripotent stem cells (iPS c...
The recent discovery that it is possible to directly reprogramme somatic cells to an embryonic stem ...
Pluripotent stem cells are basic cells with an indefinite self-renewal capacity and the potential to...
Pluripotent stem cells are basic cells with an indefinite self-renewal capacity and the potential to...
Induced pluripotent stem (iPS) cells are generated by epigenetic reprogramming of somatic cells thro...
The development of induced pluripotent stem cells (iPSCs) has been met with much enthusiasm and hail...
Embryonic stem (ES) cells are derived from cells embedded in the inner cell mass of embryonic blasto...
Human pluripotent stem cells hold great promise for basic research and regenerative medicine due to ...
Possessing the ability of self-renewal with immortalization and potential for differentiation into d...
In the field of regenerative medicine, the development of induced pluripotent stem (iPS) cells may r...
After the hope and controversy brought by embryonic stem cells two decades ago for regenerative medi...
AbstractPluripotent stem cells hold enomous potential for therapuetic applications in tissue replace...
The ability to induce pluripotency in human adult somatic cells by defined transcription factor expr...
Direct reprogramming of somatic cells into a pluripotent state has attracted enor-mous interest in b...
Abstract With their capability to undergo unlimited self-renewal and to differentiate into all cell ...
Both human and mouse somatic cells were reported to be reprogrammed to pluripotent stem cells (iPS c...
The recent discovery that it is possible to directly reprogramme somatic cells to an embryonic stem ...
Pluripotent stem cells are basic cells with an indefinite self-renewal capacity and the potential to...
Pluripotent stem cells are basic cells with an indefinite self-renewal capacity and the potential to...
Induced pluripotent stem (iPS) cells are generated by epigenetic reprogramming of somatic cells thro...
The development of induced pluripotent stem cells (iPSCs) has been met with much enthusiasm and hail...
Embryonic stem (ES) cells are derived from cells embedded in the inner cell mass of embryonic blasto...
Human pluripotent stem cells hold great promise for basic research and regenerative medicine due to ...
Possessing the ability of self-renewal with immortalization and potential for differentiation into d...
In the field of regenerative medicine, the development of induced pluripotent stem (iPS) cells may r...
After the hope and controversy brought by embryonic stem cells two decades ago for regenerative medi...
AbstractPluripotent stem cells hold enomous potential for therapuetic applications in tissue replace...
The ability to induce pluripotency in human adult somatic cells by defined transcription factor expr...
Direct reprogramming of somatic cells into a pluripotent state has attracted enor-mous interest in b...
Abstract With their capability to undergo unlimited self-renewal and to differentiate into all cell ...