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Melton, Douglas

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Melton

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Douglas

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Melton, Douglas

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Now showing 1 - 4 of 4
  • Publication

    Impracticality of Egg Donor Recruitment in the Absence of Compensation

    (Elsevier BV, 2011) Egli, Dieter; Chen, Alice E.; Saphier, Genevieve; Powers, Douglas; Alper, Michael; Katz, Karin; Berger, Brian; Goland, Robin; Leibel, Rudolph L.; Melton, Douglas; Eggan, Kevin

    Unfertilized oocytes of many mammalian species can reprogram somatic cells to a pluripotent state. Human oocytes might therefore be useful for producing patient-derived pluripotent stem cells. Because they would carry the patient's genotype, these stem cells may be useful for the production of autologous transplants. Such cells could also be used to determine whether the epigenetic (Lister et al., 2011) and genetic (Gore et al., 2011) changes detected in induced pluripotent stem cells (iPSCs) are universally found in reprogrammed cell lines or instead are unique to iPSCs.

  • Publication

    Sox17 promotes differentiation in mouse embryonic stem cells by directly regulating extraembryonic gene expression and indirectly antagonizing self-renewal

    (Cold Spring Harbor Laboratory Press, 2010) Niakan, K. K.; Ji, H.; Maehr, R.; Vokes, S. A.; Rodolfa, K. T.; Sherwood, Richard; Yamaki, M.; Dimos, J. T.; Chen, A. E.; Melton, Douglas; McMahon, Andrew P.; Eggan, Kevin

    In embryonic stem (ES) cells, a well-characterized transcriptional network promotes pluripotency and represses gene expression required for differentiation. In comparison, the transcriptional networks that promote differentiation of ES cells and the blastocyst inner cell mass are poorly understood. Here, we show that Sox17 is a transcriptional regulator of differentiation in these pluripotent cells. ES cells deficient in Sox17 fail to differentiate into extraembryonic cell types and maintain expression of pluripotency-associated transcription factors, including Oct4, Nanog, and Sox2. In contrast, forced expression of Sox17 down-regulates ES cell-associated gene expression and directly activates genes functioning in differentiation toward an extraembryonic endoderm cell fate. We show these effects of Sox17 on ES cell gene expression are mediated at least in part through a competition between Sox17 and Nanog for common DNA-binding sites. By elaborating the function of Sox17, our results provide insight into how the transcriptional network promoting ES cell self-renewal is interrupted, allowing cellular differentiation.

  • Publication

    Reprogramming within Hours Following Nuclear Transfer into Mouse but not Human Zygotes

    (Nature Publishing Group, 2011) Egli, Dieter; Chen, Alice E.; Saphier Belfer, Genevieve; Ichida, Justin; Fitzgerald, Claire; Go, Kathryn J.; Acevedo, Nicole; Patel, Jay; Baetscher, Manfred; Kearns, William G.; Goland, Robin; Leibel, Rudolph L.; Melton, Douglas; Eggan, Kevin

    Fertilized mouse zygotes can reprogram somatic cells to a pluripotent state. Human zygotes might therefore be useful for producing patient-derived pluripotent stem cells. However, logistical, legal and social considerations have limited the availability of human eggs for research. Here we show that a significant number of normal fertilized eggs (zygotes) can be obtained for reprogramming studies. Using these zygotes, we found that when the zygotic genome was replaced with that of a somatic cell, development progressed normally throughout the cleavage stages, but then arrested before the morula stage. This arrest was associated with a failure to activate transcription in the transferred somatic genome. In contrast to human zygotes, mouse zygotes reprogrammed the somatic cell genome to a pluripotent state within hours after transfer. Our results suggest that there may be a previously unappreciated barrier to successful human nuclear transfer, and that future studies could focus on the requirements for genome activation.

  • Publication

    Optimal Timing of Inner Cell Mass Isolation Increases the Efficiency of Human Embryonic Stem Cell Derivation and Allows Generation of Sibling Cell Lines

    (Elsevier, 2009) Chen, Alice E.; Egli, Dieter; Niakan, Kathy; Deng, Jie; Akutsu, Hidenori; Yamaki, Mariko; Cowan, Chad; Fitz-Gerald, Claire; Zhang, Kun; Melton, Douglas A.; Eggan, Kevin; Cowan, Chad; Melton, Douglas; Eggan, Kevin