The Rtf1/Prf1-dependent histone modification axis counteracts multi-drug resistance in fission yeast

Author:

Chen Jennifer J1,Moy Calvin1,Pagé Viviane1,Monnin Cian2,El-Hajj Ziad W3,Avizonis Daina Z2,Reyes-Lamothe Rodrigo3,Tanny Jason C1ORCID

Affiliation:

1. Department of Pharmacology and Therapeutics, McGill University

2. Metabolomics Innovation Resource, Goodman Cancer Institute, McGill University

3. Department of Biology, McGill University

Abstract

RNA polymerase II transcription elongation directs an intricate pattern of histone modifications. This pattern includes a regulatory cascade initiated by the elongation factor Rtf1, leading to monoubiquitylation of histone H2B, and subsequent methylation of histone H3 on lysine 4. Previous studies have defined the molecular basis for these regulatory relationships, but it remains unclear how they regulate gene expression. To address this question, we investigated a drug resistance phenotype that characterizes defects in this axis in the model eukaryoteSchizosaccharomyces pombe(fission yeast). The mutations caused resistance to the ribonucleotide reductase inhibitor hydroxyurea (HU) that correlated with a reduced effect of HU on dNTP pools, reduced requirement for the S-phase checkpoint, and blunting of the transcriptional response to HU treatment. Mutations in the C-terminal repeat domain of the RNA polymerase II large subunit Rpb1 led to similar phenotypes. Moreover, all the HU-resistant mutants also exhibited resistance to several azole-class antifungal agents. Our results suggest a novel, shared gene regulatory function of the Rtf1-H2Bub1-H3K4me axis and the Rpb1 C-terminal repeat domain in controlling fungal drug tolerance.

Funder

Canadian Government | Canadian Institutes of Health Research

Canadian Government | Natural Sciences and Engineering Research Council of Canada

Publisher

Life Science Alliance, LLC

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