Background: The G1-to-S transition of the cell cycle in the yeast Saccharomyces cerevisiae involves an extensive transcriptional program driven by transcription factors SBF (Swi4-Swi6) and MBF (Mbp1-Swi6). Activation of these factors ultimately depends on the G1 cyclin Cln3. Results: To determine the transcriptional targets of Cln3 and their dependence on SBF or MBF, we first have used DNA microarrays to interrogate gene expression upon Cln3 overexpression in synchronized cultures of strains lacking components of SBF and/or MBF. Secondly, we have integrated this expression dataset together with other heterogeneous data sources into a single probabilistic model based on Bayesian statistics. Our analysis has produced more than 200 transcript...
AbstractGenome-wide location analysis was used to determine how the yeast cell cycle gene expression...
grantor: University of TorontoIn all eukaryotic cells the commitment to enter the cell cyc...
To build transcription regulatory networks, transcription factor binding must be analyzed in cells g...
[Background] The G1-to-S transition of the cell cycle in the yeast Saccharomyces cerevisiae involve...
AbstractG1-specific transcriptional activation by Cln3/CDK initiates the budding yeast cell cycle. T...
In Saccharomyces cerevisiae (budding yeast), commitment to cell division in late G1 is promoted by t...
The Saccharomyces cerevisiae CLN3 protein, a G1 cyclin, positively regulates the expression of CLN1 ...
AbstractG1-specific transcriptional activation by Cln3/CDK initiates the budding yeast cell cycle. T...
Eukaryotic cells commit in G1 to a new mitotic cycle or to diverse differentiation processes. Here w...
The G1-to-S cell cycle transition is promoted by the periodic expression of a large set of genes. In...
Eukaryotic cells commit in G(1) to a new mitotic cycle or to diverse differentiation processes. Here...
The G1/S transition represents the stage in the cell cycle when cells either commit to mitosis and c...
The three budding yeast CLN genes appear to be functionally redundant for cell cycle Start: any sing...
Transcription regulation in eukaryotes is known to occur through the coordinated action of multiple ...
The yeast Saccharomyces cerevisiae has three G1 cyclin (CLN) genes with overlapping functions. To an...
AbstractGenome-wide location analysis was used to determine how the yeast cell cycle gene expression...
grantor: University of TorontoIn all eukaryotic cells the commitment to enter the cell cyc...
To build transcription regulatory networks, transcription factor binding must be analyzed in cells g...
[Background] The G1-to-S transition of the cell cycle in the yeast Saccharomyces cerevisiae involve...
AbstractG1-specific transcriptional activation by Cln3/CDK initiates the budding yeast cell cycle. T...
In Saccharomyces cerevisiae (budding yeast), commitment to cell division in late G1 is promoted by t...
The Saccharomyces cerevisiae CLN3 protein, a G1 cyclin, positively regulates the expression of CLN1 ...
AbstractG1-specific transcriptional activation by Cln3/CDK initiates the budding yeast cell cycle. T...
Eukaryotic cells commit in G1 to a new mitotic cycle or to diverse differentiation processes. Here w...
The G1-to-S cell cycle transition is promoted by the periodic expression of a large set of genes. In...
Eukaryotic cells commit in G(1) to a new mitotic cycle or to diverse differentiation processes. Here...
The G1/S transition represents the stage in the cell cycle when cells either commit to mitosis and c...
The three budding yeast CLN genes appear to be functionally redundant for cell cycle Start: any sing...
Transcription regulation in eukaryotes is known to occur through the coordinated action of multiple ...
The yeast Saccharomyces cerevisiae has three G1 cyclin (CLN) genes with overlapping functions. To an...
AbstractGenome-wide location analysis was used to determine how the yeast cell cycle gene expression...
grantor: University of TorontoIn all eukaryotic cells the commitment to enter the cell cyc...
To build transcription regulatory networks, transcription factor binding must be analyzed in cells g...