Search bioRxiv⌕ Search

bioRxiv · 10.1101/2022.06.06.494962

Inducible degradation of the Drosophila Mediator subunit Med19 reveals its role in regulating developmental but not constitutively-expressed genes

Abstract

The multi-subunit Mediator complex plays a critical role in gene expression by bridging enhancer-bound transcription factors and the RNA polymerase II machinery. Although experimental case studies suggest differential roles of Mediator subunits, a comprehensive view of the specific set of genes regulated by individual subunits in a developing tissue is still missing. Here we address this fundamental question by focusing on the Med19 subunit and using the Drosophila wing imaginal disc as a developmental model. By coupling auxin- inducible degradation of endogenous Med19 in vivo with RNA-seq, we got access to the early consequences of Med19 elimination on gene expression. Differential gene expression analysis reveals that Med19 is not globally required for mRNA transcription but specifically regulates positively or negatively less than a quarter of the expressed genes. By crossing our transcriptomic data with those of Drosophila gene expression profile database, we found that Med19-dependent genes are highly enriched with spatially-regulated genes while the expression of most constitutively expressed genes is not affected upon Med19 loss. Whereas globally downregulation does not exceed upregulation, we identified a functional class of genes encoding spatially-regulated transcription factors, and more generally developmental regulators, responding unidirectionally to Med19 loss with an expression collapse. Moreover, we show in vivo that the Notch-responsive wingless and the E(spl)-C genes require Med19 for their expression. Combined with experimental evidences suggesting that Med19 could function as a direct transcriptional effector of Notch signaling, our data support a model in which Med19 plays a critical role in the transcriptional activation of developmental genes in response to cell signaling pathways. Author summaryThe Mediator is a large evolutionarily conserved multisubunit complex that plays essential functions in gene expression by relaying cues emanating from enhancer-bound transcription factors to the RNA polymerase II machinery. The transcriptional landscapes regulated by each Mediator subunit, especially in vivo in the context of developmental processes, remains poorly characterized. We therefore sought to provide a comprehensive view of the genes directly regulated by Med19, an archetypal Mediator subunit, in the context of the development of the Drosophila wing. Our work has important methodological implications as to carry out our analysis in the best experimental conditions, we generated mutant flies in which we could trigger fast degradation of the Med19 subunit on demand in the tissues of the living animal. We found that only a small part of the genes expressed in the developing wing are controlled by Med19 showing that this Mediator component exercises specific functions. Another major finding is the strong involvement of Med19 in the regulation of the expression of the genes involved in developmental processes supporting the idea that Med19 is a Mediator component dedicated to highly regulated mode of gene expression. The most unanticipated discovery of our study is the fact that Med19 does not appear to play a role in the expression of the genes that are constitutively transcribed, among which the housekeeping genes. This raises the notion that in the context of simple --non-regulated-- mode of expression, part of the Mediator functionalities, among which Med19, otherwise dedicated to highly regulated type of transcription, may become dispensable.

Source connections

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Jullien, D., Guillou, E., Bernat-Fabre, S., Payet, A., Bourbon, H.-M. G., Boube, M.. 2022-06-06. Inducible degradation of the Drosophila Mediator subunit Med19 reveals its role in regulating developmental but not constitutively-expressed genes. https://doi.org/10.1101/2022.06.06.494962

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Transposable Elements Profiling Reveals DUXA-associated MLT1D Endogenous Retroviral Elements Activation During Bovine Maternal to Zygotic Transition

Transposable elements (TEs) are a major source of genomic diversity in mammals, yet their regulatory roles in the bovine genome remain poorly understood. Through characterizing bovine TE landscape, despite the substantial proportion (25.6%) of ruminant-specific TEs, we observe age- and class-dependent genomic distribution patterns similar to those observed in other mammals. Next, we profile TE and gene expression dynamics in pre-implantation embryos generated in vivo (IVV), by in vitro fertilization (IVT), and through somatic cell nuclear transfer (SCNT). The zygotic genome activation (ZGA) is shifted from the 4-cell stage to the 8-cell stage in IVT and SCNT embryos compared to IVV embryos. SCNT embryos exhibit impaired initiation of early transcription programs at the 4-cell stage and disrupted developmental trajectories, including abnormal activation of pluripotency-associated genes. A subset of retroviral LTR elements are strongly activated at ZGA in IVV and IVT embryos, whereas their activation is markedly muted in SCNT embryos, suggesting that impaired gene and TE reprogramming may contribute to the developmental defects commonly observed in SCNT embryos. By epigenomic profiling, the MLT1D elements from the ERVL-MaLR LTR family lose repressive marks and gain H3K27ac at ZGA, together with DUXA-binding motif enrichment. Knockdown of DUXA in bovine embryos significantly reduced MLT1D expression and ZGA marker genes. We propose that a subset of DUXA-enriched MLT1D functions as enhancers that promote ZGA. Overall, our study provides new insights into the regulatory roles of TEs during bovine embryogenesis and establishes a framework for comparative studies of TE-mediated gene regulation in early mammalian development.

developmental biology↗

Distinct transcriptional responses to mild cold versus warm temperatures in adult Drosophila melanogaster ovaries

Temperature influences fertility across diverse organisms, yet the mechanisms underlying how suboptimal temperatures affect gamete production and quality remain largely unknown. We previously showed that chronic exposure of adult Drosophila melanogaster females to mild cold promotes the maintenance of germline stem cells (GSCs) and high oocyte quality over time despite reducing the rates of oogenesis, while exposure to warm temperature causes death of early germline cysts and vitellogenic follicles and a severe decrease in oocyte quality. To explore potential mechanisms underlying these highly distinct responses, we compared the ovarian transcriptomes of females maintained at these temperatures (18{degrees}C or 29{degrees}C) to that of 25{degrees}C controls. We found that 18{degrees}C upregulates or downregulates ~2.5 times as many genes as 29{degrees}C, indicating that the ovary mounts active physiological responses to mild cold and warm temperatures--as opposed to simply undergoing passive changes driven by thermodynamics. Gene set enrichment analysis revealed modulation of genes involved in neuronal signaling in opposite directions at 18{degrees}C versus 29{degrees}C. Most genes, however, exhibit temperature-specific regulation: 29{degrees}C upregulates synaptic transmission genes and downregulates lipid biosynthesis genes, whereas 18{degrees}C upregulates actin cytoskeleton genes and downregulates cell adhesion and lipid organization genes. Notably, mild cold or warm temperature specifically modulated (either up or down) the expression of distinct sets of transposable elements (TEs), suggesting the existence of temperature-dependent TE regulatory mechanisms and/or downstream effects. Finally, we show that GSCs at 18{degrees}C have increased retrotransposon R2 transcript levels, larger nucleolar size, and elevated levels of the known stemness factor phosphorylated Mad, leading to a working model whereby elevated ribosome biogenesis supports increased stemness signaling to promote GSC maintenance in mild cold. These findings suggest potential mechanisms and open new questions for investigation towards a deeper understanding of how temperature modulates gene expression and impacts germline development and quality--which are essential for the perpetuation of species.

developmental biology↗

Dynamic Changes in Endometrial Folding and Secretory Activity Across the Menstrual Cycle

Embryo implantation remains a major limitation of assisted reproductive technology, with failure occurring in approximately 30% of euploid embryo transfers. Implantation requires a synchronized dialogue between the blastocyst and receptive endometrium during the window of implantation (WOI), yet minimally invasive approaches to characterize the structural and molecular features of receptivity remain limited. We analyzed paired sonohysterogram images and uterine lavage samples collected during the proliferative and mid-secretory phases from subjects with regular ovulatory cycles and proven fertility. Endometrial folds were quantified, and lavage samples were analyzed by Luminex multiplex immunoassay. Folds were present in both phases but were significantly more abundant during the mid-secretory WOI, independent of imaging view and endometrial thickness. Folding correlated strongly with circulating estradiol level during the proliferative phase but not the mid-secretory phase, and folding patterns between phases were not correlated, suggesting distinct regulatory mechanisms. Consistent with these structural patterns, uterine lavage demonstrated phase-specific differences in expression of factors associated with endometrial receptivity and implantation, with glandular epithelium, and myeloid-lineage cells emerging as major contributors. Together, these findings identify coordinated structural and secretory processes during the WOI and support further evaluation of endometrial folding and uterine lavage as complementary, minimally invasive markers of endometrial receptivity.

developmental biology↗