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  • Author: Weinberger A
  • References

Author: Weinberger A


References 21 references


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  • van Dijk D, et al. (2017) Large-scale mapping of gene regulatory logic reveals context-dependent repression by transcriptional activators. Genome Res 27(1):87-94 PMID:27965290
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  • Keren L, et al. (2016) Massively Parallel Interrogation of the Effects of Gene Expression Levels on Fitness. Cell 166(5):1282-1294.e18 PMID:27545349
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  • Lubliner S, et al. (2015) Core promoter sequence in yeast is a major determinant of expression level. Genome Res 25(7):1008-17 PMID:25969468
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  • Shalem O, et al. (2013) Measurements of the impact of 3' end sequences on gene expression reveal wide range and sequence dependent effects. PLoS Comput Biol 9(3):e1002934 PMID:23505350
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  • Raveh-Sadka T, et al. (2012) Manipulating nucleosome disfavoring sequences allows fine-tune regulation of gene expression in yeast. Nat Genet 44(7):743-50 PMID:22634752
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  • Sharon E, et al. (2012) Inferring gene regulatory logic from high-throughput measurements of thousands of systematically designed promoters. Nat Biotechnol 30(6):521-30 PMID:22609971
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  • Zeevi D, et al. (2011) Compensation for differences in gene copy number among yeast ribosomal proteins is encoded within their promoters. Genome Res 21(12):2114-28 PMID:22009988
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  • Tirosh I, et al. (2008) On the relation between promoter divergence and gene expression evolution. Mol Syst Biol 4:159 PMID:18197176
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  • Levy S, et al. (2007) Strategy of transcription regulation in the budding yeast. PLoS One 2(2):e250 PMID:17327914
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  • Monselise A, et al. (2006) Anti-Saccharomyces cerevisiae antibodies in Behçet's disease--a familial study. Clin Exp Rheumatol 24(5 Suppl 42):S87-90 PMID:17067434
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  • Tirosh I, et al. (2006) A genetic signature of interspecies variations in gene expression. Nat Genet 38(7):830-4 PMID:16783381
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  • Castillo-Flores A, et al. (2005) Mso1 is a novel component of the yeast exocytic SNARE complex. J Biol Chem 280(40):34033-41 PMID:16087665
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  • Weinberger A, et al. (2005) Control of Golgi morphology and function by Sed5 t-SNARE phosphorylation. Mol Biol Cell 16(10):4918-30 PMID:16093353
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  • Friedmann E, et al. (2002) YOS9, the putative yeast homolog of a gene amplified in osteosarcomas, is involved in the endoplasmic reticulum (ER)-Golgi transport of GPI-anchored proteins. J Biol Chem 277(38):35274-81 PMID:12077121
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