SPELL - S. cerevisiae - Dataset Listing
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SPELL Version 2.0.3

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Brief Description PubMed ID
Abbott DA et al., 2008 12 Physiological and transcriptional responses to high concentrations of lactic acid in anaerobic chemostat cultures of Saccharomyces cerevisiae. (details) 18676708
Abbott DA et al., 2007 12 Generic and specific transcriptional responses to different weak organic acids in anaerobic chemostat cultures of Saccharomyces cerevisiae. (details) 17484738
Abe F et al., 2007 3 Induction of DAN/TIR yeast cell wall mannoprotein genes in response to high hydrostatic pressure and low temperature. (details) 17910955
Adomas AB et al., 2010 4 Multi-targeted priming for genome-wide gene expression assays. (details) 20716356
Adomas AB et al., 2010 4 Multi-targeted priming for genome-wide gene expression assays. (details) 20716356
Agarwal AK et al., 2008 6 Role of heme in the antifungal activity of the azaoxoaporphine alkaloid sampangine. (details) 18156292
Aghajan M et al., 2010 13 Chemical genetics screen for enhancers of rapamycin identifies a specific inhibitor of an SCF family E3 ubiquitin ligase. (details) 20581845
Aguilera J et al., 2005 18 Physiological and genome-wide transcriptional responses of Saccharomyces cerevisiae to high carbon dioxide concentrations. (details) 15780657
Albulescu LO et al., 2012 12 A quantitative, high-throughput reverse genetic screen reveals novel connections between Pre-mRNA splicing and 5' and 3' end transcript determinants. (details) 22479188
Alejandro-Osorio AL et al., 2009 109 The histone deacetylase Rpd3p is required for transient changes in genomic expression in response to stress. (details) 19470158
Alff-Tuomala S et al., 2016 30 Xylose induced dynamic effects on metabolism and gene expression in engineered Saccharomyces cerevisiae in anaerobic glucose-xylose cultures (details) 26454869
Alkim C et al., 2013 9 Mechanisms other than activation of the iron regulon account for the hyper-resistance to cobalt of a Saccharomyces cerevisiae strain obtained by evolutionary engineering. (details) 23864114
Almario MP et al., 2013 24 Evolutionary engineering of Saccharomyces cerevisiae for enhanced tolerance to hydrolysates of lignocellulosic biomass. (details) 23613173
Alper H et al., 2006 12 Engineering yeast transcription machinery for improved ethanol tolerance and production. (details) 17158319
Ambroset C et al., 2011 40 Deciphering the molecular basis of wine yeast fermentation traits using a combined genetic and genomic approach. (details) 22384338
Amit M et al., 2010 16 Equivalent mutations in the eight subunits of the chaperonin CCT produce dramatically different cellular and gene expression phenotypes. (details) 20600117
Anderson JB et al., 2006 26 Antagonism between two mechanisms of antifungal drug resistance. (details) 16896209
Anderson JB et al., 2009 46 Gene expression and evolution of antifungal drug resistance. (details) 19273689
Angell S et al., 2006 6 Pyocyanin isolated from a marine microbial population: synergistic production between two distinct bacterial species and mode of action. (details) 17185230
Angus-Hill ML et al., 2001 8 rsc3/rsc30 knockouts (details) 11336698
Ansari SA et al., 2012 21 Distinct role of Mediator tail module in regulation of SAGA-dependent, TATA-containing genes in yeast. (details) 21971086
Aow JS et al., 2013 5 Differential binding of the related transcription factors Pho4 and Cbf1 can tune the sensitivity of promoters to different levels of an induction signal. (details) 23558744
Aparicio F et al., 2011 4 A plant virus movement protein regulates the Gcn2p kinase in budding yeast. (details) 22087310
Aparicio F et al., 2011 4 A plant virus movement protein regulates the Gcn2p kinase in budding yeast. (details) 22087310
Apweiler E et al., 2012 18 Yeast glucose pathways converge on the transcriptional regulation of trehalose biosynthesis. (details) 22697265
Apweiler E et al., 2012 257 Yeast glucose pathways converge on the transcriptional regulation of trehalose biosynthesis. (details) 22697265
Aragon AD et al., 2008 368 Expression in 101 differentiated quiescent and non-quiescent deletion mutants from stationary phase cultures; some replicates (details) 18199684
Aragon AD et al., 2008 20 Expression in differentiated quiescent and non-quiescent S288C cells from stationary-phase cultures; 10 replicates (details) 18199684
Aragon AD et al., 2008 26 Expression in differentiated quiescent and non-quiescent BY4742 cells from stationary-phase cultures; 10 replicates (details) 18199684
Aragon AD et al., 2006 78 Response of stationary phase cells to oxidative stress; 35 min time course, 1 min intervals (details) 16507144