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author Sharov, Alexei A
Piao, Yulan
Matoba, Ryo
Dudekula, Dawood B
Qian, Yong
VanBuren, Vincent
Falco, Geppino
Martin, Patrick R
Stagg, Carole A
Bassey, Uwem C
Wang, Yuxia
Carter, Mark G
Hamatani, Toshio
Aiba, Kazuhiro
Akutsu, Hidenori
Sharova, Lioudmila
Tanaka, Tetsuya S
Kimber, Wendy L
Yoshikawa, Toshiyuki
Jaradat, Saied A
Pantano, Serafino
Nagaraja, Ramaiah
Boheler, Kenneth R
Taub, Dennis
Hodes, Richard J
Longo, Dan L
Schlessinger, David
Keller, Jonathan
Klotz, Emily
Kelsoe, Garnett
Umezawa, Akihiro
Vescovi, Angelo L
Rossant, Janet
Kunath, Tilo
Hogan, Brigid L. M
Curci, Anna
D'Urso, Michele
Kelso, Janet
Hide, Winston
Ko, Minoru S. H
author_facet Sharov, Alexei A
Piao, Yulan
Matoba, Ryo
Dudekula, Dawood B
Qian, Yong
VanBuren, Vincent
Falco, Geppino
Martin, Patrick R
Stagg, Carole A
Bassey, Uwem C
Wang, Yuxia
Carter, Mark G
Hamatani, Toshio
Aiba, Kazuhiro
Akutsu, Hidenori
Sharova, Lioudmila
Tanaka, Tetsuya S
Kimber, Wendy L
Yoshikawa, Toshiyuki
Jaradat, Saied A
Pantano, Serafino
Nagaraja, Ramaiah
Boheler, Kenneth R
Taub, Dennis
Hodes, Richard J
Longo, Dan L
Schlessinger, David
Keller, Jonathan
Klotz, Emily
Kelsoe, Garnett
Umezawa, Akihiro
Vescovi, Angelo L
Rossant, Janet
Kunath, Tilo
Hogan, Brigid L. M
Curci, Anna
D'Urso, Michele
Kelso, Janet
Hide, Winston
Ko, Minoru S. H
author_sort Sharov, Alexei A
collection PubMed
description Understanding and harnessing cellular potency are fundamental in biology and are also critical to the future therapeutic use of stem cells. Transcriptome analysis of these pluripotent cells is a first step towards such goals. Starting with sources that include oocytes, blastocysts, and embryonic and adult stem cells, we obtained 249,200 high-quality EST sequences and clustered them with public sequences to produce an index of approximately 30,000 total mouse genes that includes 977 previously unidentified genes. Analysis of gene expression levels by EST frequency identifies genes that characterize preimplantation embryos, embryonic stem cells, and adult stem cells, thus providing potential markers as well as clues to the functional features of these cells. Principal component analysis identified a set of 88 genes whose average expression levels decrease from oocytes to blastocysts, stem cells, postimplantation embryos, and finally to newborn tissues. This can be a first step towards a possible definition of a molecular scale of cellular potency. The sequences and cDNA clones recovered in this work provide a comprehensive resource for genes functioning in early mouse embryos and stem cells. The nonrestricted community access to the resource can accelerate a wide range of research, particularly in reproductive and regenerative medicine.
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spelling pubmed-3006842003-12-22 Transcriptome Analysis of Mouse Stem Cells and Early Embryos Sharov, Alexei A Piao, Yulan Matoba, Ryo Dudekula, Dawood B Qian, Yong VanBuren, Vincent Falco, Geppino Martin, Patrick R Stagg, Carole A Bassey, Uwem C Wang, Yuxia Carter, Mark G Hamatani, Toshio Aiba, Kazuhiro Akutsu, Hidenori Sharova, Lioudmila Tanaka, Tetsuya S Kimber, Wendy L Yoshikawa, Toshiyuki Jaradat, Saied A Pantano, Serafino Nagaraja, Ramaiah Boheler, Kenneth R Taub, Dennis Hodes, Richard J Longo, Dan L Schlessinger, David Keller, Jonathan Klotz, Emily Kelsoe, Garnett Umezawa, Akihiro Vescovi, Angelo L Rossant, Janet Kunath, Tilo Hogan, Brigid L. M Curci, Anna D'Urso, Michele Kelso, Janet Hide, Winston Ko, Minoru S. H PLoS Biol Research Article Understanding and harnessing cellular potency are fundamental in biology and are also critical to the future therapeutic use of stem cells. Transcriptome analysis of these pluripotent cells is a first step towards such goals. Starting with sources that include oocytes, blastocysts, and embryonic and adult stem cells, we obtained 249,200 high-quality EST sequences and clustered them with public sequences to produce an index of approximately 30,000 total mouse genes that includes 977 previously unidentified genes. Analysis of gene expression levels by EST frequency identifies genes that characterize preimplantation embryos, embryonic stem cells, and adult stem cells, thus providing potential markers as well as clues to the functional features of these cells. Principal component analysis identified a set of 88 genes whose average expression levels decrease from oocytes to blastocysts, stem cells, postimplantation embryos, and finally to newborn tissues. This can be a first step towards a possible definition of a molecular scale of cellular potency. The sequences and cDNA clones recovered in this work provide a comprehensive resource for genes functioning in early mouse embryos and stem cells. The nonrestricted community access to the resource can accelerate a wide range of research, particularly in reproductive and regenerative medicine. Public Library of Science 2003-12 2003-12-22 /pmc/articles/PMC300684/ /pubmed/14691545 http://dx.doi.org/10.1371/journal.pbio.0000074 Text en This is an open-access article distributed under the terms of the Creative Commons Public Domain Declaration, which stipulates that, once placed in the public domain, this work may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose
spellingShingle Research Article
Sharov, Alexei A
Piao, Yulan
Matoba, Ryo
Dudekula, Dawood B
Qian, Yong
VanBuren, Vincent
Falco, Geppino
Martin, Patrick R
Stagg, Carole A
Bassey, Uwem C
Wang, Yuxia
Carter, Mark G
Hamatani, Toshio
Aiba, Kazuhiro
Akutsu, Hidenori
Sharova, Lioudmila
Tanaka, Tetsuya S
Kimber, Wendy L
Yoshikawa, Toshiyuki
Jaradat, Saied A
Pantano, Serafino
Nagaraja, Ramaiah
Boheler, Kenneth R
Taub, Dennis
Hodes, Richard J
Longo, Dan L
Schlessinger, David
Keller, Jonathan
Klotz, Emily
Kelsoe, Garnett
Umezawa, Akihiro
Vescovi, Angelo L
Rossant, Janet
Kunath, Tilo
Hogan, Brigid L. M
Curci, Anna
D'Urso, Michele
Kelso, Janet
Hide, Winston
Ko, Minoru S. H
Transcriptome Analysis of Mouse Stem Cells and Early Embryos
title Transcriptome Analysis of Mouse Stem Cells and Early Embryos
title_full Transcriptome Analysis of Mouse Stem Cells and Early Embryos
title_fullStr Transcriptome Analysis of Mouse Stem Cells and Early Embryos
title_full_unstemmed Transcriptome Analysis of Mouse Stem Cells and Early Embryos
title_short Transcriptome Analysis of Mouse Stem Cells and Early Embryos
title_sort transcriptome analysis of mouse stem cells and early embryos
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC300684/
https://www.ncbi.nlm.nih.gov/pubmed/14691545
http://dx.doi.org/10.1371/journal.pbio.0000074
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