FB2024_03 , released June 25, 2024
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Citation
Alfonso-Gonzalez, C., Legnini, I., Holec, S., Arrigoni, L., Ozbulut, H.C., Mateos, F., Koppstein, D., Rybak-Wolf, A., Bönisch, U., Rajewsky, N., Hilgers, V. (2023). Sites of transcription initiation drive mRNA isoform selection.  Cell 186(11): 2438--2455.e22.
FlyBase ID
FBrf0256598
Publication Type
Research paper
Abstract
The generation of distinct messenger RNA isoforms through alternative RNA processing modulates the expression and function of genes, often in a cell-type-specific manner. Here, we assess the regulatory relationships between transcription initiation, alternative splicing, and 3' end site selection. Applying long-read sequencing to accurately represent even the longest transcripts from end to end, we quantify mRNA isoforms in Drosophila tissues, including the transcriptionally complex nervous system. We find that in Drosophila heads, as well as in human cerebral organoids, 3' end site choice is globally influenced by the site of transcription initiation (TSS). "Dominant promoters," characterized by specific epigenetic signatures including p300/CBP binding, impose a transcriptional constraint to define splice and polyadenylation variants. In vivo deletion or overexpression of dominant promoters as well as p300/CBP loss disrupted the 3' end expression landscape. Our study demonstrates the crucial impact of TSS choice on the regulation of transcript diversity and tissue identity.
PubMed ID
PubMed Central ID
PMC10228280 (PMC) (EuropePMC)
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Location data for orb[ΔDP].
Holec and Hilgers, 2023.9.5, Location data for orb[ΔDP]. [FBrf0257562]

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Secondary IDs
    Language of Publication
    English
    Additional Languages of Abstract
    Parent Publication
    Publication Type
    Journal
    Abbreviation
    Cell
    Title
    Cell
    Publication Year
    1974-
    ISBN/ISSN
    0092-8674
    Data From Reference