Dilution of the cell cycle inhibitor Whi5 controls budding-yeast cell size.

PubWeight™: 0.95‹?› | Rank: Top 15%

🔗 View Article (PMID 26390151)

Published in Nature on September 21, 2015

Authors

Kurt M Schmoller1, J J Turner1, M Kõivomägi1, Jan M Skotheim1

Author Affiliations

1: Department of Biology, Stanford University, Stanford, California 94305, USA.

Articles citing this

A Stochastic Model of the Yeast Cell Cycle Reveals Roles for Feedback Regulation in Limiting Cellular Variability. PLoS Comput Biol (2016) 1.39

Cell-Size Control. Cold Spring Harb Perspect Biol (2016) 0.86

Nucleolin-Mediated RNA Localization Regulates Neuron Growth and Cycling Cell Size. Cell Rep (2016) 0.79

A Model of Yeast Cell-Cycle Regulation Based on a Standard Component Modeling Strategy for Protein Regulatory Networks. PLoS One (2016) 0.78

Characterization of dependencies between growth and division in budding yeast. J R Soc Interface (2017) 0.77

Whi5 phosphorylation embedded in the G1/S network dynamically controls critical cell size and cell fate. Nat Commun (2016) 0.76

A new class of cyclin dependent kinase in Chlamydomonas is required for coupling cell size to cell division. Elife (2016) 0.76

Growth Rate as a Direct Regulator of the Start Network to Set Cell Size. Front Cell Dev Biol (2017) 0.76

Switch-like Transitions Insulate Network Motifs to Modularize Biological Networks. Cell Syst (2016) 0.75

Cell size and growth regulation in the Arabidopsis thaliana apical stem cell niche. Proc Natl Acad Sci U S A (2016) 0.75

Degradation of the Mitotic Cyclin Clb3 Is not Required for Mitotic Exit but Is Necessary for G1 Cyclin Control of the Succeeding Cell Cycle. Genetics (2016) 0.75

Is cell size a spandrel? Elife (2017) 0.75

Effects of cell-cycle-dependent expression on random fluctuations in protein levels. R Soc Open Sci (2016) 0.75

Cell-size dependent progression of the cell cycle creates homeostasis and flexibility of plant cell size. Nat Commun (2017) 0.75

Stochastic timing in gene expression for simple regulatory strategies. Nucleic Acids Res (2017) 0.75

Size-Dependent Expression of the Mitotic Activator Cdc25 Suggests a Mechanism of Size Control in Fission Yeast. Curr Biol (2017) 0.75

A simple molecular mechanism explains multiple patterns of cell-size regulation. PLoS One (2017) 0.75

How do fission yeast cells grow and connect growth to the mitotic cycle? Curr Genet (2016) 0.75

Articles cited by this

Coordination of growth with cell division in the yeast Saccharomyces cerevisiae. Exp Cell Res (1977) 10.42

Comparison of the Saccharomyces cerevisiae G1 cyclins: Cln3 may be an upstream activator of Cln1, Cln2 and other cyclins. EMBO J (1993) 6.38

The WHI1+ gene of Saccharomyces cerevisiae tethers cell division to cell size and is a cyclin homolog. EMBO J (1988) 6.09

The Cln3-Cdc28 kinase complex of S. cerevisiae is regulated by proteolysis and phosphorylation. EMBO J (1992) 5.92

The effects of molecular noise and size control on variability in the budding yeast cell cycle. Nature (2007) 4.15

CDK activity antagonizes Whi5, an inhibitor of G1/S transcription in yeast. Cell (2004) 4.04

Cln3 activates G1-specific transcription via phosphorylation of the SBF bound repressor Whi5. Cell (2004) 3.60

The Forkhead transcription factor Hcm1 regulates chromosome segregation genes and fills the S-phase gap in the transcriptional circuitry of the cell cycle. Genes Dev (2006) 3.58

Coupling of cell division to cell growth by translational control of the G1 cyclin CLN3 in yeast. Genes Dev (1997) 3.31

The regulation of cell size and the control of mitosis. J Theor Biol (1975) 2.50

Cell size control in yeast. Curr Biol (2012) 1.96

Genes that can bypass the CLN requirement for Saccharomyces cerevisiae cell cycle START. Mol Cell Biol (1994) 1.95

Cyclin Cln3 is retained at the ER and released by the J chaperone Ydj1 in late G1 to trigger cell cycle entry. Mol Cell (2007) 1.92

Organelle growth control through limiting pools of cytoplasmic components. Curr Biol (2012) 1.71

Control of transcription by cell size. PLoS Biol (2010) 1.61

Daughter-specific transcription factors regulate cell size control in budding yeast. PLoS Biol (2009) 1.48

The regulation of cell size. Cell (2013) 1.45

Distinct interactions select and maintain a specific cell fate. Mol Cell (2011) 1.38

Scaling properties of cell and organelle size. Organogenesis (2010) 1.31

Growth rate and cell size modulate the synthesis of, and requirement for, G1-phase cyclins at start. Mol Cell Biol (2004) 1.30

Recruitment of Cln3 cyclin to promoters controls cell cycle entry via histone deacetylase and other targets. PLoS Biol (2009) 1.20

Acetyl-CoA induces transcription of the key G1 cyclin CLN3 to promote entry into the cell division cycle in Saccharomyces cerevisiae. Proc Natl Acad Sci U S A (2013) 1.17

Cell biology. On being the right (cell) size. Science (2015) 1.17

Aneuploid yeast strains exhibit defects in cell growth and passage through START. Mol Biol Cell (2013) 1.16

Coordinating genome expression with cell size. Trends Genet (2012) 1.14

Mechanisms controlling subcellular localization of the G(1) cyclins Cln2p and Cln3p in budding yeast. Mol Cell Biol (2001) 1.12

F-box protein specificity for g1 cyclins is dictated by subcellular localization. PLoS Genet (2012) 1.11

Cyclin-specific docking motifs promote phosphorylation of yeast signaling proteins by G1/S Cdk complexes. Curr Biol (2011) 1.00

Phosphate-activated cyclin-dependent kinase stabilizes G1 cyclin to trigger cell cycle entry. Mol Cell Biol (2013) 0.97

Inducible, tightly regulated and growth condition-independent transcription factor in Saccharomyces cerevisiae. Nucleic Acids Res (2014) 0.96

An algorithm to automate yeast segmentation and tracking. PLoS One (2013) 0.96

Bck2 is a phase-independent activator of cell cycle-regulated genes in yeast. Cell Cycle (2009) 0.94

A Whi7-anchored loop controls the G1 Cdk-cyclin complex at start. Mol Cell (2013) 0.88

Reliable cell cycle commitment in budding yeast is ensured by signal integration. Elife (2015) 0.86

Bck2 acts through the MADS box protein Mcm1 to activate cell-cycle-regulated genes in budding yeast. PLoS Genet (2013) 0.84

Identification of novel and conserved functional and structural elements of the G1 cyclin Cln3 important for interactions with the CDK Cdc28 in Saccharomyces cerevisiae. Yeast (2005) 0.83