Aug 2026· Nature Communications· Vol 17· 0 citations· 71 references
Medicine
TL;DR
It is found that promoter identity, rather than expression level, exerts strong and highly context-specific effects on cassette exon inclusion, exceeding the effect of pharmacological inhibitors of transcription initiation or elongation.
Abstract
Gene expression is a complex process subject to regulation at multiple functionally interconnected levels. One prominent example is the crosstalk between transcription and splicing regulation. Past work has shown that transcription can influence splicing in multiple ways, but a systematic investigation of this complex interplay is lacking. Here we employ massively parallel reporter assays of large combinatorial promoter-splice site libraries to dissect how promoter identity and transcription dynamics affect alternative splicing in human cells. We find that promoter identity, rather than expression level, exerts strong and highly context-specific effects on cassette exon inclusion, exceeding the effect of pharmacological inhibitors of transcription initiation or elongation. Groups of exons display coordinated promoter-dependent splicing behavior, and we identified predictive sequence and structural features underlying this sensitivity. Promoter and gene architecture also shape isoform diversity by modulating cryptic splice site usage. These findings present promoters as central regulators of splicing outcomes and fidelity. Using massively parallel reporter assays of mini-genes with variable promoters and cassette exon sequences, the authors show that promoter identity is a major determinant of alternative splicing, shaping exon inclusion levels and splicing fidelity.
How splicing-dependent and splicing-independent activities are integrated are discussed and a framework in which splicing factors act as regulatory hubs coordinating gene expression across multiple layers is proposed.
M. J. Iglesias, Y. Agrofoglio, Lukasz Szewc et al.· TIBS -Trends in Biochemical...· 0 citations
Abstract In contrast to canonical cis-splicing, trans-splicing combines exons from two distinct transcripts, yielding chimeric mRNAs. One striking example is the ubiquitously expressed modifier of the mdg4 (mod(mdg4)) locus in Drosophila, where all mRNAs spanning over 30 isoforms are generated exclusively by trans-spli...
I. Soldatova, O. Beginyazova, Oksana G Maksimenko et al.· Nucleic Acids Research· 0 citations
This review describes how spliceosome assembly, splicing regulatory elements, splicing factors, epigenetic modifications, and post-transcriptional processes determine splice-site selection and suggests that safe clinical translation will require greater selectivity, reduced off-target toxicity, and preservation of esse...
Huining Huang, Yao Yu, Qian Zhou et al.· Molecular Biomedicine· 0 citations
The control of gene expression is central to cellular physiology and to various biotechnological applications. In higher eukaryotes, synthesis of most messenger RNAs involves removal of introns during splicing. Intron-containing genes are often more highly expressed than intronless versions, despite generating the same...
Yuta Sakai, Michael P. McGurk, Emma J. K. Kowal et al.· bioRxiv· 0 citations
Eukaryotic transcription is a highly dynamic and adaptable process that underpins the gene expression programs regulating development, cellular identity, and responses to extracellular signals. Gene-specific regulation of transcription across different cell types and environmental conditions is therefore fundamental to...
David D. Lowe, A. Shilatifard· Molecules and Cells· 0 citations
The genomic regions regulating gene expression are often themselves transcribed into a variety of noncoding RNAs (ncRNAs). However, the regulatory roles of this noncoding transcription remain largely unknown. By using live imaging, we reveal that the sequential transcription of ncRNAs emanating from distinct regulatory...
P. Batut, M. Levine· Science· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.