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Jnied, M.

Publications and source records attributed to Jnied, M..

2 recordsLinked to original sources

The fungal RNA-binding protein Ssd1 represses Sun4 protein abundance through recognition of 5' UTR structural and sequence elements

Regulation of protein abundance allows fungi to adapt to changing environments, regulate their growth and morphology, and react to external stresses. Ssd1 is a fungal RNA binding protein that binds mRNAs encoding cell wall remodelling proteins and regulates cell wall biogenesis. Ssd1 binding sites (SBSs) have been described by computational and biochemical analyses, but how Ssd1 recognises these sites and how that relates to regulation of protein abundance was less clear. Here, a co-crystal structure of Saccharomyces cerevisiae Ssd1 with an SBS reveals core determinants of recognition, while fluorescent reporters of Sun4, an Ssd1-regulated cell wall protein, were used to characterise structure- guided mutations. We find that Ssd1 has an extensive RNA binding site that recognises two elements of the SBS: an upstream element that forms a structural motif, and an element containing tandem CNYU sequences that engages Ssd1 in base-specific recognition. Mutations to the Ssd1 RNA binding surface prevent Ssd1-dependent repression of fluorescent reporters and show strong phenotypes in assays of cell wall stress resistance and genetic interactions with the Cbk1 kinase. Loss of repression is also observed if both SUN4 SBSs are altered. However, the presence of one SBS in the SUN4 5' untranslated region is sufficient to confer Ssd1-dependent suppression of protein abundance. Our work confirms that RNA binding is a core function of Ssd1 and is likely to inform functional analyses in fungi beyond S. cerevisiae, where Ssd1 orthologs have been identified as virulence factors in several fungal pathogens.

molecular biology↗

Extended G2/M arrests lead to aberrant mitoses and cell death due to excessive securin

The stochastic nature of DNA damage dictates various scenarios of stress survival among different cells. We used time-lapse microscopy to perform single-cell level analyses of yeast populations with double-stranded DNA breaks and nonfunctional telomeres. Activation of the DNA damage signalling resulted in a broad distribution in the duration of G2/M arrests. Strikingly, the longer arrests correlated with aberrant mitoses caused by mis-coordination of nuclear division and cytokinesis, leading to cell death. Chk1-dependent phosphorylation of securin, an inhibitor of sister chromatid separation in mitosis, was responsible for this phenomenon. Securin progressively accumulated during G2/M arrests, leading to grossly delayed or missed nuclear divisions. This phenotype could be suppressed by slowing down the progression of mitotic exit via LTE1 deletion. Lowering securin levels also partially supressed the DNA damage-induced aberrant mitoses but resulted in an increase in aneuploidy during normal growth. Our results demonstrate that in cells taking too long to complete DNA repair, the DNA damage checkpoint promotes aberrant mitoses and cell death, thereby eliminating cells with a higher chance of genomic instability. This mechanism in microbial populations might parallel the senescence program in mammals where long cell cycle arrests become irreversible and also lead to cell death. IMPORTANTO_LIManuscripts submitted to Review Commons are peer reviewed in a journal-agnostic way. C_LIO_LIUpon transfer of the peer reviewed preprint to a journal, the referee reports will be available in full to the handling editor. C_LIO_LIThe identity of the referees will NOT be communicated to the authors unless the reviewers choose to sign their report. C_LIO_LIThe identity of the referee will be confidentially disclosed to any a filiate journals to which the manuscript is transferred. C_LI GUIDELINESO_LIFor reviewers: https://www.reviewcommons.org/reviewers C_LIO_LIFor authors: https://www.reviewcommons.org/authors C_LI CONTACTThe Review Commons office can be contacted directly at: office@reviewcommons.org

cell biology↗