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51.
F Friedberg 《FEBS letters》1975,59(2):140-141
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On the primary structure of amylases 总被引:4,自引:0,他引:4
F Friedberg 《FEBS letters》1983,152(2):139-140
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A clone containing a portion of the promoter region for the human bona fide CALM II gene was isolated using a human Promoter Finder DNA Walking Kit. This promoter region contains, putatively, a GC box (common in housekeeping genes), a CRE-binding site, a TATA like box and AGGGA sequences. The latter are reported to be present in genes for Ca2+ binding genes. This human promoter region exhibits overall 85% sequence identity to the corresponding region of the rat CALM II promoter but shows no identity to the corresponding region of the human CALM I or CALM III promoters. 相似文献
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Destaye M. Moore Justin Karlin Sergio González-Barrera Armen Mardiros Michael Lisby Ana Doughty Jennifer Gilley Rodney Rothstein Errol C. Friedberg Paula L. Fischhaber 《Nucleic acids research》2009,37(19):6429-6438
In the yeast Saccharomyces cerevisiae, the Rad1–Rad10 protein complex participates in nucleotide excision repair (NER) and homologous recombination (HR). During HR, the Rad1–Rad10 endonuclease cleaves 3′ branches of DNA and aberrant 3′ DNA ends that are refractory to other 3′ processing enzymes. Here we show that yeast strains expressing fluorescently labeled Rad10 protein (Rad10-YFP) form foci in response to double-strand breaks (DSBs) induced by a site-specific restriction enzyme, I-SceI or by ionizing radiation (IR). Additionally, for endonuclease-induced DSBs, Rad10-YFP localization to DSB sites depends on both RAD51 and RAD52, but not MRE11 while IR-induced breaks do not require RAD51. Finally, Rad10-YFP colocalizes with Rad51-CFP and with Rad52-CFP at DSB sites, indicating a temporal overlap of Rad52, Rad51 and Rad10 functions at DSBs. These observations are consistent with a putative role of Rad10 protein in excising overhanging DNA ends after homology searching and refine the potential role(s) of the Rad1–Rad10 complex in DSB repair in yeast. 相似文献
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S J Friedberg S T Weintraub D Peterson N Satsangi 《Biochemical and biophysical research communications》1987,145(3):1177-1184
We have previously provided evidence for a mechanism by which acyl DHAP is converted enzymatically to O-alkyl DHAP. This mechanism involves, in part, the formation of an endiol of acyl DHAP, loss of the fatty acid by splitting of the DHAP carbon-1 to oxygen bond and the gain of a long chain fatty alcohol. It has been shown that acyl DHAP can exchange its fatty acid for one in the medium, presumably by the mediation of O-alkyl DHAP synthase. In the present investigation we have shown that the fatty acid which is gained by acyl DHAP in the exchange process retains both carboxyl oxygens, as predicted by our postulated mechanism. This reaction is exceptional because the usual action of acyl hydrolases is to cleave at the oxygen to acyl bond. 相似文献
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