In Saccharomyces cerevisiae, three G1 cyclins (Clns) are important for Start, the event committing cells to division. Sic1, an inhibitor of C1b-Cdc28 kinases, became phosphorylated at Start, and this phosphorylation depended on the activity of Clns. Sic1 was subsequently lost, which depended on the activity of Clns and the ubiquitin-conjugating enzyme Cdc34. Inactivation of Sic1 was the only nonredundant essential function of Clns, because a sic1 deletion rescued the inviability of the cln1 cln2 cln3 triple mutant. In sic1 mutants, DNA replication became uncoupled from budding. Thus, Sic1 may be a substrate of Cln-Cdc28 complexes, and phosphorylation and proteolysis of Sic1 may regulate commitment to replication at Start
A hallmark of the G1/S transition in budding yeast cell cycle is the proteolytic degradation of the ...
In most eukaryotes, commitment to cell division occurs in late G1 phase at an event called Start in ...
In Saccharomyces cerevisiae, several of the proteins involved in the Start decision have been identi...
DNA replication in budding yeast cells depends on the activation of the Cdc28 kinase (Cdk1 of Saccha...
AbstractIn budding yeast, commitment to DNA replication during the normal cell cycle requires degrad...
Traversal from G1 to S-phase in cycling cells of budding yeast is dependent on the destruction of th...
In Saccharomyces cerevisiae, Sic1, an inhibitor of Cdk (cyclin-dependent kinase), blocks the activit...
In Saccharomyces cerevisiae, Sic1, an inhibitor of Cdk (cyclin-dependent kinase), blocks the activit...
Cellular systems biology aims to uncover design principles that describe the properties of biologica...
G(1) cell cycle regulators are often mutated in cancer, but how this causes genomic instability is u...
Sic1, cyclin-dependent kinase inhibitor of budding yeast, is synthesized in anaphase and largely deg...
Budding yeast cell cycle oscillates between states of low and high cyclin-dependent kinase activity,...
G_1 cyclin-dependent kinase (Cdk)–triggered degradation of the S-phase Cdk inhibitor Sic1p has been ...
A hallmark of the G1/S transition in budding yeast cell cycle is the proteolytic degradation of the ...
AbstractIn S. cerevisiae, the G1/S transition requires Cdc4p, Cdc34p, Cdc53p, Skp1p, and the Cln/Cdc...
A hallmark of the G1/S transition in budding yeast cell cycle is the proteolytic degradation of the ...
In most eukaryotes, commitment to cell division occurs in late G1 phase at an event called Start in ...
In Saccharomyces cerevisiae, several of the proteins involved in the Start decision have been identi...
DNA replication in budding yeast cells depends on the activation of the Cdc28 kinase (Cdk1 of Saccha...
AbstractIn budding yeast, commitment to DNA replication during the normal cell cycle requires degrad...
Traversal from G1 to S-phase in cycling cells of budding yeast is dependent on the destruction of th...
In Saccharomyces cerevisiae, Sic1, an inhibitor of Cdk (cyclin-dependent kinase), blocks the activit...
In Saccharomyces cerevisiae, Sic1, an inhibitor of Cdk (cyclin-dependent kinase), blocks the activit...
Cellular systems biology aims to uncover design principles that describe the properties of biologica...
G(1) cell cycle regulators are often mutated in cancer, but how this causes genomic instability is u...
Sic1, cyclin-dependent kinase inhibitor of budding yeast, is synthesized in anaphase and largely deg...
Budding yeast cell cycle oscillates between states of low and high cyclin-dependent kinase activity,...
G_1 cyclin-dependent kinase (Cdk)–triggered degradation of the S-phase Cdk inhibitor Sic1p has been ...
A hallmark of the G1/S transition in budding yeast cell cycle is the proteolytic degradation of the ...
AbstractIn S. cerevisiae, the G1/S transition requires Cdc4p, Cdc34p, Cdc53p, Skp1p, and the Cln/Cdc...
A hallmark of the G1/S transition in budding yeast cell cycle is the proteolytic degradation of the ...
In most eukaryotes, commitment to cell division occurs in late G1 phase at an event called Start in ...
In Saccharomyces cerevisiae, several of the proteins involved in the Start decision have been identi...