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Dusserre, Y.

Publications and source records attributed to Dusserre, Y..

2 recordsLinked to original sources

Basal association of a transcription factor favors early gene expression

Responses to extracellular signals via Mitogen-Activated Protein Kinase (MAPK) pathways control complex transcriptional programs where hundreds of genes are induced at a desired level with a specific timing. Gene expression regulation is largely encoded in the promoter of the gene, which harbors numerous transcription factor binding sites. In the mating MAPK pathway of Saccharomyces cerevisiae, one major transcription factor, Ste12, controls the chronology of gene expression necessary for the fusion of two haploid cells. Because endogenous promoters encode a large diversity of Ste12 binding sites (PRE), we engineered synthetic promoters to decipher the rules that dictate mating gene induction. Conformations of PRE dimers that allow efficient gene expression were identified. The strength of binding of Ste12 to the PRE and the distance of the binding sites to the core promoter modulate the level of induction. The speed of activation is ensured by favoring a basal association of Ste12 by using a strong dimer of PRE located in a nucleosome depleted region. Author SummaryDuring development, cell fate decisions allow pluripotent cells to differentiate into various cell types. This process requires cells to integrate signals from their surroundings to initiate a complex transcriptional program. Budding yeasts can also undergo cell fate decisions. In presence of mating pheromones, haploid yeasts can activate a signaling pathway which can ultimately lead to the fusion of two haploid cells to form a diploid. One transcription factor, Ste12, controls this mating transcriptional program. The promoters of these 200 upregulated genes display a large diversity in the organization of Ste12 binding sites. Therefore, it is challenging to decipher how Ste12 regulates the level and the timing of gene expression. To simplify this problem, we have generated synthetic promoters, where the configuration of Ste12 binding sites on the DNA can be controlled. We have identified which conformations of binding site dimers allow a functional association of the transcription factor. In addition, we have also shown that the basal association of Ste12 to the promoter is important for the fast gene induction. An unfavorable configuration of Ste12 binding sites or the presence of nucleosomes restrict the access of the transcription factor to the DNA and results in a slower expression.

cell biology↗

Implication of polymerase recycling for nascent transcript quantification by live cell imaging

Transcription enables the production of RNA from a DNA template. Due to the highly dynamic nature of transcription, live-cell imaging methods play a crucial role in measuring the kinetics of this process. For instance, transcriptional bursts have been visualized using fluorescent phage-coat proteins that associate tightly with mRNA stem loops formed on nascent transcripts. To convert the signal emanating from a transcription site into meaningful estimates of transcription dynamics, the influence of various parameters on the measured signal must be evaluated. Here, the effect of gene length on the intensity of the transcription site focus was analyzed. Intuitively, a longer gene can support a larger number of transcribing polymerases, thus leading to an increase in the measured signal. However, measurements of transcription induced by hyper-osmotic stress responsive promoters display independence from gene length. A mathematical model of the stress-induced transcription process suggests that the formation of gene loops that favor the recycling of polymerase from the terminator to the promoter can explain the observed behavior. One experimentally validated prediction from this model is that the amount of mRNA produced from a short gene should be higher than for a long one as the density of active polymerase on the short gene will be increased by polymerase recycling. Our data suggest that this recycling contributes significantly to the expression output from a gene and that polymerase recycling is modulated by the promoter identity and the cellular state. Take away- Quantification of stress-induced promoter transcription dynamics using a live assays reporter system displays no dependence of signal intensity with gene length. - Mathematical modeling predicts that the formation of gene loops leading to the recycling of polymerases can explain the observed behavior. - More prevalent polymerase recycling on short genes results in a higher transcriptional output.

biochemistry↗