| Literature DB >> 18231579 |
Hilary B Gerber1, Yana Pikman, Robert P Fisher.
Abstract
BACKGROUND: Cyclin-dependent kinases (CDKs) perform essential roles in cell division and gene expression in all eukaryotes. The requirement for an upstream CDK-activating kinase (CAK) is also universally conserved, but the fission yeast Schizosaccharomyces pombe appears to be unique in having two CAKs with both overlapping and specialized functions that can be dissected genetically. The Mcs6 complex--orthologous to metazoan Cdk7/cyclin H/Mat1--activates the cell-cycle CDK, Cdk1, but its non-redundant essential function appears to be in regulation of gene expression, as part of transcription factor TFIIH. The other CAK is Csk1, an ortholog of budding yeast Cak1, which activates all three essential CDKs in S. pombe--Cdk1, Mcs6 and Cdk9, the catalytic subunit of positive transcription elongation factor b (P-TEFb)--but is not itself essential. METHODOLOGY/PRINCIPALEntities:
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Year: 2008 PMID: 18231579 PMCID: PMC2200797 DOI: 10.1371/journal.pone.0001492
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1A csk1Δ strain is hypersensitive to DNA damaging agents.
Survival was measured after irradiation with UV (A) or IR (B) of the following strains: wild type (JS78), csk1Δ (JS155). (C) 10-fold serial dilutions of the wild-type and csk1Δ strains [as in (A)] in mid-log phase were plated on fresh media containing no drug (top), 0.005% MMS (middle) or 6 mM hydroxyurea (bottom), and incubated 3–5 days before photographing.
Figure 2Csk1 is not required for activation of the DNA damage checkpoint or for NER.
(A) WT (JS78), csk1Δ (JS155), rad3Δ (YP46) and csk1Δ rad3Δ (YP68) cells were synchronized in G2 by fractionation in lactose gradients and irradiated with 40 J/m2 UV light. Samples were taken every 30 min and the percent of cells passing through mitosis was measured by counting binucleated cells, septated cells and doublets. (B) Survival after UV irradiation of the following strains: wild type (JS78), csk1Δ (JS155), rad13Δ (YP1), csk1Δ rad13Δ (YP85).
Figure 3Epistasis analysis with homologous recombination genes.
(A) Survival after irradiation with UV or IR of the strains: (A) wild type (JS78), csk1Δ (JS155), rhp51Δ (YP6), csk1Δ rhp51Δ (HD4-6); (B) wild type (JS78), csk1Δ (JS155), rhp54Δ (YP25), csk1Δ rhp54Δ (HD2-55). (C) Cells were streaked onto YES plates and incubated for 4 days at 30°C before being photographed. Strains: wild type (JS78), csk1Δ (JS155), rhp57Δ (YP27), csk1Δ rhp57Δ (HG123). (D) Survival after UV irradiation of the strains: wild type (JS78), csk1Δ (JS155), sfr1Δ (HG24), csk1Δ sfr1Δ (HG31).
Figure 4Loss of Csk1 impairs HR.
(A) Schematic of tandem ade6 alleles used to determine spontaneous recombination frequencies. Conversion-type recombination events result in his+ ade+ colonies and deletion-type recombination events result in his- ade+ colonies. (B) Recombination frequencies (strain: conversion type±standard deviation, deletion type±standard deviation): wild type (HG11: 2.4±0.8, 3.7±1.1); csk1Δ (HG16: 0.09±0.13, 0.30±0.28); srs2Δ (HG13: 19.3±9.2, 14.4±3.9); csk1Δ srs2Δ (HG19: 0.14±0.08, 0.30±0.22). (C) Rescue of csk1Δ hypo-recombination with overexpression of csk1 (strain: total recombination frequency±standard deviation): csk1Δ [EV] (HG142: 0.60±0.52); csk1Δ [csk1 (HG144: 11.9±3.0). (D) Survival after UV irradiation of the following strains: wild type (JS78), csk1Δ (JS155), srs2Δ (HG119), csk1Δ srs2Δ (HG112).
Figure 5Multiple Csk1 targets contribute to the csk1Δ UV-sensitivity and growth phenotypes.
Survival after UV irradiation of the following strains: (A) wild type (JS78), csk1Δ (JS155), mcs6-HA (JS167), mcs6 (JS207); (B) wild type (JS78), csk1Δ (JS155), cdk9 (HD7-24), csk1Δ cdk9 (HD7-44); and (C) wild type (JS78), csk1Δ (JS155), cdk9 (HG127), csk1Δ cdk9 (HG133). (D) Spot assays on YES and EMM plates with the following strains: wild type (JS78), csk1Δ (JS155), cdk9 (HG127), csk1Δ cdk9 (HG133).
Strains used in this study
| Strain | Genotype | Source |
| JS78 |
| J Hurwitz |
| JS80 |
| J Saiz |
| JS155 |
| J Saiz |
| JS167 |
| J Saiz |
| JS207 |
| J Saiz |
| YP1 |
| G Freyer |
| YP6 |
| G Freyer |
| YP25 |
| G Freyer |
| YP27 |
| G Freyer |
| YP46 |
| G Freyer |
| YP68 |
| Y Pikman |
| YP85 |
| Y Pikman |
| HD2-55 |
| H Du |
| HD4-6 |
| H Du |
| HD7-24 |
| H Du |
| HD7-44 |
| H Du |
| HG11 |
| M Whitby |
| HG16 |
| This work |
| HG13 |
| This work |
| HG19 |
| This work |
| HG24 |
| H. Iwasaki |
| HG31 |
| This work |
| HG112 |
| This work |
| HG119 |
| This work |
| HG123 |
| This work |
| HG127 |
| This work |
| HG133 |
| This work |
| HG142 |
| This work |
| HG144 |
| This work |