The periphery of nuclear speckles defines a spatially and temporally regulated compartment of long-lived intron-retained RNAs that resolves during mitosis

Abstract RNA localization adds a fundamental layer to gene expression by determining when and where translation-ready mRNAs become available, yet how this timing is coordinated with nuclear architecture and cell-cycle progression remains unclear. Here we identify a subnuclear RNA niche at the nuclear speckle periphery that couples intron retention to cell-cycle-timed RNA release. Using compartment-resolved transcriptional inhibition, sequence-based deep learning and single-molecule and super-resolution RNA imaging in human pluripotent stem cells, we define a class of nuclear RNAs with long-lived retained introns that persist for hours and are enriched in transcripts encoding regulators of genome maintenance and mitosis, including centromere and kinetochore assembly, DNA repair and telomere maintenance. Long-lived retained introns exhibit elevated GC content, predicted structural stability and enrichment for nuclear speckle-associated RNA-binding proteins. In interphase, these RNAs localize to a distinct nuclear speckle-peripheral RNA niche in a spatial arrangement conserved across cell types. During mitotic remodelling, they undergo coordinated, kinase-dependent splicing and are released into the cytoplasm of early G1 daughter cells. Together, these findings link cis -encoded intronic features, subnuclear organization and mitotic remodelling to temporal control of RNA fate.

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Publication Details

Journal
Nature Cell Biology
Published
2026-09-09
DOI
https://doi.org/10.1038/s41556-026-02040-5
Primary Topic
RNA Research and Splicing
Type
article
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article

The periphery of nuclear speckles defines a spatially and temporally regulated compartment of long-lived intron-retained RNAs that resolves during mitosis

Stefanie Dimmeler, Josep Biayna, Gabrijela Dumbović, Anusha Chaudhuri et al.
Nature Cell Biology
RNA Research and Splicing
article

The periphery of nuclear speckles defines a spatially and temporally regulated compartment of long-lived intron-retained RNAs that resolves during mitosis

Stefanie Dimmeler, Josep Biayna, Gabrijela Dumbović, Anusha Chaudhuri, Artem Baranovskii, Luise-Elektra Keller, Berkay Erdem, Marta Paladin, A. Rasim Barutcu, Annalisa Marsico
article en

Abstract

Abstract RNA localization adds a fundamental layer to gene expression by determining when and where translation-ready mRNAs become available, yet how this timing is coordinated with nuclear architecture and cell-cycle progression remains unclear. Here we identify a subnuclear RNA niche at the nuclear speckle periphery that couples intron retention to cell-cycle-timed RNA release. Using compartment-resolved transcriptional inhibition, sequence-based deep learning and single-molecule and super-resolution RNA imaging in human pluripotent stem cells, we define a class of nuclear RNAs with long-lived retained introns that persist for hours and are enriched in transcripts encoding regulators of genome maintenance and mitosis, including centromere and kinetochore assembly, DNA repair and telomere maintenance. Long-lived retained introns exhibit elevated GC content, predicted structural stability and enrichment for nuclear speckle-associated RNA-binding proteins. In interphase, these RNAs localize to a distinct nuclear speckle-peripheral RNA niche in a spatial arrangement conserved across cell types. During mitotic remodelling, they undergo coordinated, kinase-dependent splicing and are released into the cytoplasm of early G1 daughter cells. Together, these findings link cis -encoded intronic features, subnuclear organization and mitotic remodelling to temporal control of RNA fate.

Nature Cell Biology
Goethe University Frankfurt (DE), Frankfurt Institute for Advanced Studies (DE), Helmholtz Zentrum München (DE), German Centre for Cardiovascular Research (DE)
Openalex Percentile: Top 18%
RNA Research and Splicing
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