bioRxiv Science⌕ Search

Biology subjects

Planells, J.

Publications and source records attributed to Planells, J..

2 recordsLinked to original sources

Genetic inactivation of essential HSF1 reveals an isolated transcriptional stress response selectively induced by protein misfolding

Heat Shock Factor 1 (Hsf1) in yeast drives the basal transcription of key proteostasis factors and its activity is induced as part of the core heat shock response. Exploring Hsf1 specific functions has been challenging due to the essential nature of the HSF1 gene and the extensive overlap of target promoters with environmental stress response (ESR) transcription factors Msn2 and Msn4 (Msn2/4). In this study, we constructed a viable hsf1{Delta} strain by replacing the HSF1 open reading frame with genes that constitutively express Hsp40, Hsp70 and Hsp90 from Hsf1-independent promoters. Phenotypic analysis showed that the hsf1{Delta} strain grow slowly, is sensitive to heat as well as protein misfolding and accumulates protein aggregates. Transcriptome analysis revealed that the transcriptional response to protein misfolding induced by azetidine-2-carboxylic acid is fully dependent of Hsf1. In contrast, the hsf1{Delta} strain responded to heat shock through the ESR. Following HS, Hsf1 and Msn2/4 showed functional compensatory induction with stronger activation of the remaining stress pathway when the other branch was inactivated. Thus, we provide a long overdue genetic test of the function of Hsf1 in yeast using the novel hsf1{Delta} construct. Our data highlight that the accumulation of misfolded proteins is uniquely sensed by Hsf1-Hsp70 chaperone titration inducing a highly selective transcriptional stress response.

molecular biology↗

The exosome degrades chromatin-associated RNAs genome-wide and maintains chromatin homeostasis

Chromatin-associated RNAs (caRNAs) modulate chromatin organization and function. The RNA exosome degrades different types of nuclear transcripts, but its role in chromatin has not been addressed. Here we have used Drosophila melanogaster S2 cells as a model system to identify the repertoire of caRNAs and establish the role of the exosome in their regulation. We have analyzed both unique and repetitive sequences, and combining RNA-seq and ATAC-seq we show that the simultaneous depletion of the exosome catalytic subunits RRP6 and DIS3 not only affects caRNA levels but also changes the local chromatin accessibility at specific loci. We have identified a group of exosome-sensitive genes that are involved in developmental regulation and are characterized by a balanced chromatin state in which Polycomb and Trithorax factors coexist. Our results reveal that RNA degradation by the exosome is an important mechanism for the homeostasis of such balanced chromatin states. Given that eukaryotic genomes are repetitive to a large extent, we have also analyzed repetitive caRNAs (rep-caRNAs) and we show that the exosome is needed to control repcaRNA levels and to maintain the degree of chromatin packaging in repetitive genomic regions. This role is particularly relevant in the pericentromeric regions where the exosome is required to silence LTR elements and maintain centromere organization.

genomics↗