Search bioRxiv⌕ Search

Biology subjects

Beckerman, I.

Publications and source records attributed to Beckerman, I..

2 recordsLinked to original sources

RNA Polymerase II Degradation Triggered by DNA Repair Occurs In Trans and Independently of how the Lesion is Recognised

In response to DNA damage, RPB1, the catalytic subunit of RNA Polymerase II (RNAPII), is degraded by the ubiquitin-proteasome system. Degradation models only consider transcriptionally engaged molecules, where a stalled RNAPII complex functions as a lesion recognition factor and its RPB1 subunit is proposed to be subsequently degraded to facilitate access of core Nucleotide Excision Repair (NER) factors. This Transcription Coupled repair is complemented by the Global Genome repair (GG-NER) system, where lesions are recognized by the XPE and XPC factors. Here we show that RPB1 degradation is controlled in trans by a pathway that depends on NER activity, irrespectively of whether the lesion is recognized by RNAPII itself or by GG-NER factors. Incomplete lesion repair due to absence of any core NER factor enhances RPB1 degradation, indicating that the signal controlling RPB1 abundance is started by lesion recognition and continues until DNA repair is completed. Consistent with an in trans mechanism, damage-induced RPB1 degradation is not restricted to active nor phosphorylated RPB1 molecules and depends on Cullin-RING ubiquitin ligases. These findings uncover a repair-dependent mechanism controlling RPB1 levels and provide a rationale for the control of gene expression under stress, where more damage implies more repair and less RPB1 levels, hence restricting RNAPII activity.

molecular biology↗

Tristetraprolin promotes survival of mammary progenitor cells by restraining TNFα levels

Tristetraprolin (TTP) is a RNA binding protein that destabilizes mRNA of factors that up-regulate proliferation, invasiveness and inflammation. Here we show that TTP expression is higher in mammary progenitor cells than in other cell populations, and that reducing its levels impairs mammary gland morphogenesis in vivo and mammosphere formation in culture. Knocking down TTP in stem-like HC11 mouse mammary cell line increased inflammatory cytokine mRNAs and signaling cascades involving NF{kappa}B, STAT3 and MAPK p38 activation, which led to apoptosis. Importantly, TNF overexpression and the consequent p38 phosphorylation would be the leading cause of progenitor cell death upon TTP expression restriction. Taken together, our results reveal the relevance of negative posttranscriptional regulation on TNF, exerted by TTP, for the maintenance of the progenitor cell compartment in the mammary gland.

developmental biology↗