Embryonic stem cells have two unique properties. They are capable of indefinite self-renewal and, being pluripotent, they can differentiate into all possible cell types, including germ cells. A new study by Cowan et al. (2005) published in Science shows that human embryonic stem cells are able to reprogram the nuclei of fully differentiated human somatic cells, apparently conferring on them a pluripotent state
Introduction of four transcription factors, Oct3/4, Sox2, Klf4, and c-Myc, can successfully reprogra...
AbstractPluripotent human stem cells isolated from early embryos represent a potentially unlimited s...
Fertilized mouse zygotes can reprogram somatic cells to a pluripotent state. Human zygotes might the...
Embryonic stem cells have two unique properties. They are capable of indefinite self-renewal and, be...
Reprogramming of somatic cells to a pluripotent embryonic stem cell-like state has been achieved by ...
SummaryReprogramming somatic cells into pluripotent embryonic stem cells (ESCs) by somatic cell nucl...
Somatic cell nuclear transfer offers an alternative approach to the use of exogenous transcription f...
There is currently particular interest in the field of nuclear reprogramming, a process by which the...
Direct reprogramming of somatic cells to induced pluripotent stem cells by ectopic expression of def...
Human embryonic stem cells (ESCs) have the capability to differentiate into all somatic cell types, ...
It has long been discovered that human pluripotent cells could be isolated from the blastocyst state...
Human pluripotent stem cells hold potential for regenerative medicine, but available cell types have...
Differentiating somatic cells are progressively restricted to specialized functions during ontogeny,...
SummaryThe recent finding that reprogrammed human pluripotent stem cells can be derived by nuclear t...
In the last half a century, researchers and scientists discovered the application of somatic cell nu...
Introduction of four transcription factors, Oct3/4, Sox2, Klf4, and c-Myc, can successfully reprogra...
AbstractPluripotent human stem cells isolated from early embryos represent a potentially unlimited s...
Fertilized mouse zygotes can reprogram somatic cells to a pluripotent state. Human zygotes might the...
Embryonic stem cells have two unique properties. They are capable of indefinite self-renewal and, be...
Reprogramming of somatic cells to a pluripotent embryonic stem cell-like state has been achieved by ...
SummaryReprogramming somatic cells into pluripotent embryonic stem cells (ESCs) by somatic cell nucl...
Somatic cell nuclear transfer offers an alternative approach to the use of exogenous transcription f...
There is currently particular interest in the field of nuclear reprogramming, a process by which the...
Direct reprogramming of somatic cells to induced pluripotent stem cells by ectopic expression of def...
Human embryonic stem cells (ESCs) have the capability to differentiate into all somatic cell types, ...
It has long been discovered that human pluripotent cells could be isolated from the blastocyst state...
Human pluripotent stem cells hold potential for regenerative medicine, but available cell types have...
Differentiating somatic cells are progressively restricted to specialized functions during ontogeny,...
SummaryThe recent finding that reprogrammed human pluripotent stem cells can be derived by nuclear t...
In the last half a century, researchers and scientists discovered the application of somatic cell nu...
Introduction of four transcription factors, Oct3/4, Sox2, Klf4, and c-Myc, can successfully reprogra...
AbstractPluripotent human stem cells isolated from early embryos represent a potentially unlimited s...
Fertilized mouse zygotes can reprogram somatic cells to a pluripotent state. Human zygotes might the...