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51.
Hyun Woo Choi Jong Soo Kim Hyo Jin Jang Sol Choi Jae-Hwan Kim Hans R. Sch?ler Jeong Tae Do 《Cellular and molecular life sciences : CMLS》2012,69(23):4067-4077
The restricted gene expression pattern of a differentiated cell can be reversed by fusion of the somatic cell with a more developmentally potent cell type, such as an embryonic stem (ES) cell. During this reprogramming process, somatic cells obtain most of the characteristics of pluripotent cells. Reactivation of an inactive X chromosome (Xi) is an important epigenetic marker confirming the pluripotent reprogramming of somatic cells. Female somatic cells contain one active X chromosome (Xa) and one Xi, and following the fusion of these cells with male ES cells, the Xi becomes activated, resulting in XaXaXaY fusion hybrid cells. To monitor Xi reactivation, transgenic female neural stem cells (fNSCs) carrying a green fluorescent protein (GFP) reporter gene expressed on the Xa (X-GFP), but not on the Xi, were used for reprogramming. XaXiGFP NSCs, whose GFP reporter was silenced, were fused with HM1 ES cells (XY) to induce pluripotent reprogramming. The XiGFP of NSCs were found to be activated on day 4 post-fusion, indicating reactivation of the Xi. Hybrid cells showed pluripotent cell-specific characteristics cells including inactivation of the NSC marker Nestin, DNA demethylation of Oct4, DNA methylation of Nestin, and reactivation of the Xi. Following differentiation of the (GFP-positive) hybrid cells through embryoid body formation, the proportion of GFP-negative cells was found to be approximately 26?%, indicating that there was random inactivation of one of the three Xas. Here, we showed that the Xi of somatic cells is reprogrammed to the Xa state and that cellular differentiation occurs randomly, i.e., regardless of the Xa or Xi state, indicating that the memory of the Xi of somatic cells has been erased and reset to the ground state (i.e., inner cell mass-like state), indicating that random X-chromosome inactivation occurs upon differentiation. 相似文献
52.
Hashibe M McKay JD Curado MP Oliveira JC Koifman S Koifman R Zaridze D Shangina O Wünsch-Filho V Eluf-Neto J Levi JE Matos E Lagiou P Lagiou A Benhamou S Bouchardy C Szeszenia-Dabrowska N Menezes A Dall'Agnol MM Merletti F Richiardi L Fernandez L Lence J Talamini R Barzan L Mates D Mates IN Kjaerheim K Macfarlane GJ Macfarlane TV Simonato L Canova C Holcátová I Agudo A Castellsagué X Lowry R Janout V Kollarova H Conway DI McKinney PA Znaor A Fabianova E Bencko V Lissowska J Chabrier A Hung RJ 《Nature genetics》2008,40(6):707-709
Alcohol is an important risk factor for upper aerodigestive cancers and is principally metabolized by alcohol dehydrogenase (ADH) enzymes. We have investigated six ADH genetic variants in over 3,800 aerodigestive cancer cases and 5,200 controls from three individual studies. Gene variants rs1229984 (ADH1B) and rs1573496 (ADH7) were significantly protective against aerodigestive cancer in each individual study and overall (P = 10(-10) and 10(-9), respectively). These effects became more apparent with increasing alcohol consumption (P for trend = 0.0002 and 0.065, respectively). Both gene effects were independent of each other, implying that multiple ADH genes may be involved in upper aerodigestive cancer etiology. 相似文献