Full-grown Xenopus oocytes in first meiotic prophase contain an immensely enlarged nucleus, the Germinal Vesicle (GV), that can be injected with several hundred somatic cell nuclei. When the nuclei of mammalian somatic cells or cultured cell lines are injected into a GV, a wide range of genes that are not transcribed in the donor cells, including pluripotency genes, start to be transcriptionally activated, and synthesize primary transcripts continuously for several days. Because of the large size and abundance of Xenopus laevis oocytes, this experimental system offers an opportunity to understand the mechanisms by which somatic cell nuclei can be reprogrammed to transcribe genes characteristic of oocytes and early embryos. The use of mammal...
Oocytes are unique cells with the inherent capability to reprogram nuclei. The reprogramming of the ...
Oocytes have a remarkable ability to reactivate silenced genes in somatic cells. However, it is not ...
Many of the structural and mechanistic requirements of oocyte-mediated nuclear reprogramming remain ...
Full-grown Xenopus oocytes in first meiotic prophase contain an immensely enlarged nucleus, the Germ...
Nuclear transfer to oocytes is an efficient way to transcriptionally reprogram somatic nuclei, but i...
Transplantation of Xenopus laevis cell nucleus to enucleated Xenopus egg leads to the ge...
We review experiments in which somatic cell nuclei are transplanted singly to enucleated eggs (metap...
Nuclear transfer to oocytes is an efficient way to transcriptionally reprogram somatic nuclei, but i...
Abstract In the course of normal development, cells rarely are able to revert from a differentiated ...
AbstractNuclear reprogramming by the transplantation of somatic cell nuclei to eggs (in second meiot...
This thesis describes a number of foundation studies regarding Xenopus nuclear transfer, inter-speci...
The transplantation of somatic cell nuclei to enucleated eggs has shown that genes can be reprogramm...
Summary: Oocytes have a remarkable ability to reactivate silenced genes in somatic cells. However, i...
During the natural event of fertilization highly differentiated spermatozoa may revert to the totipo...
During the natural event of fertilization highly differentiated spermatozoa may revert to the totipo...
Oocytes are unique cells with the inherent capability to reprogram nuclei. The reprogramming of the ...
Oocytes have a remarkable ability to reactivate silenced genes in somatic cells. However, it is not ...
Many of the structural and mechanistic requirements of oocyte-mediated nuclear reprogramming remain ...
Full-grown Xenopus oocytes in first meiotic prophase contain an immensely enlarged nucleus, the Germ...
Nuclear transfer to oocytes is an efficient way to transcriptionally reprogram somatic nuclei, but i...
Transplantation of Xenopus laevis cell nucleus to enucleated Xenopus egg leads to the ge...
We review experiments in which somatic cell nuclei are transplanted singly to enucleated eggs (metap...
Nuclear transfer to oocytes is an efficient way to transcriptionally reprogram somatic nuclei, but i...
Abstract In the course of normal development, cells rarely are able to revert from a differentiated ...
AbstractNuclear reprogramming by the transplantation of somatic cell nuclei to eggs (in second meiot...
This thesis describes a number of foundation studies regarding Xenopus nuclear transfer, inter-speci...
The transplantation of somatic cell nuclei to enucleated eggs has shown that genes can be reprogramm...
Summary: Oocytes have a remarkable ability to reactivate silenced genes in somatic cells. However, i...
During the natural event of fertilization highly differentiated spermatozoa may revert to the totipo...
During the natural event of fertilization highly differentiated spermatozoa may revert to the totipo...
Oocytes are unique cells with the inherent capability to reprogram nuclei. The reprogramming of the ...
Oocytes have a remarkable ability to reactivate silenced genes in somatic cells. However, it is not ...
Many of the structural and mechanistic requirements of oocyte-mediated nuclear reprogramming remain ...