Coordination of Cell Cycle Progression and Mitotic Spindle Assembly Involves Histone H3 Lysine 4 Methylation by Set1/COMPASS

Author:

Beilharz Traude H1,Harrison Paul F12,Miles Douglas Maya3,See Michael Ming1,Le Uyen Minh Merry1,Kalanon Ming4,Curtis Melissa Jane1,Hasan Qambar4,Saksouk Julie5,Margaritis Thanasis6,Holstege Frank6,Geli Vincent3,Dichtl Bernhard4

Affiliation:

1. Development and Stem Cells Program, Monash Biomedicine Discovery Institute and Department of Biochemistry and Molecular Biology, Monash University, Melbourne, Victoria 3800, Australia

2. Monash Bioinformatics Platform, Monash University, Melbourne, Victoria 3800, Australia

3. Marseille Cancer Research Center, U1068 Inserm, UMR7258 CNRS, Aix Marseille University, Institut Paoli-Calmettes, F-13009 Marseille, France. Equipe Labellisée Ligue

4. Centre for Cellular and Molecular Biology, School of Life and Environmental Sciences, Deakin University, Burwood, Victoria 3125, Australia

5. Institute of Human Genetics, UPR 1142, CNRS, 34396 Montpellier, France

6. Molecular Cancer Research, University Medical Center Utrecht–Princess Máxima Center for Pediatric Oncology, 3584 Utrecht, The Netherlands

Abstract

Abstract Methylation of histone H3 lysine 4 (H3K4) by Set1 complex/COMPASS is a hallmark of eukaryotic chromatin, but it remains poorly understood how this post-translational modification contributes to the regulation of biological processes like the cell cycle. Here, we report a H3K4 methylation-dependent pathway in Saccharomyces cerevisiae that governs toxicity toward benomyl, a microtubule destabilizing drug. Benomyl-sensitive growth of wild-type cells required mono- and dimethylation of H3K4 and Pho23, a PHD-containing subunit of the Rpd3L complex. Δset1 and Δpho23 deletions suppressed defects associated with ipl1-2 aurora kinase mutant, an integral component of the spindle assembly checkpoint during mitosis. Benomyl resistance of Δset1 strains was accompanied by deregulation of all four tubulin genes and the phenotype was suppressed by tub2-423 and Δtub3 mutations, establishing a genetic link between H3K4 methylation and microtubule function. Most interestingly, sine wave fitting and clustering of transcript abundance time series in synchronized cells revealed a requirement for Set1 for proper cell-cycle-dependent gene expression and Δset1 cells displayed delayed entry into S phase. Disruption of G1/S regulation in Δmbp1 and Δswi4 transcription factor mutants duplicated both benomyl resistance and suppression of ipl1-2 as was observed with Δset1. Taken together our results support a role for H3K4 methylation in the coordination of cell-cycle progression and proper assembly of the mitotic spindle during mitosis.

Publisher

Oxford University Press (OUP)

Subject

Genetics

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