Study / S9KTGQLC52026-04-02

Exonic enhancers are a widespread class of dual-function regulatory elements

Jean-Christophe Mouren, Magali Torres, Antoinette van Ouwerkerk, Iris Manosalva, Frederic Gallardo et al.

About this study

Exonic enhancers (EEs) occupy an under-appreciated niche in gene regulation. By integrating transcription factor binding, chromatin accessibility, and high-throughput enhancer-reporter assays, we demonstrate that many protein-coding exons possess enhancer activity across species. These candidate EEs (cEEs) exhibit characteristic epigenomic signatures, form long-range interactions with gene promoters, and can be altered by both nonsynonymous and synonymous variants. CRISPR-mediated inactivation demonstrated the involvement of cEEs in the cis-regulation of host and distal gene expression. Through large-scale cancer genome analyses, we reveal that cEE mutations correlate with dysregulated target-gene expression and clinical outcomes, highlighting their potential relevance in disease. Evolutionary comparisons show that cEEs exhibit both strong sequence constraint and lineage-specific plasticity, suggesting that they serve ancient regulatory functions while also contributing to species divergence. Our findings expand the landscape of functional elements by establishing cEEs as a component of gene regulation, while revealing how coding regions can simultaneously fulfil both protein-coding and cis-regulatory roles.

Full author list & citation

Jean-Christophe Mouren, Magali Torres, Antoinette van Ouwerkerk, Iris Manosalva, Frederic Gallardo, Salvatore Spicuglia, Benoit Ballester. Exonic enhancers are a widespread class of dual-function regulatory elements. 2026-04-02. https://doi.org/10.1038/s41467-026-71220-6

Experiments 1

E0O92SB47

Exon-only STARR-seq screen in K-562 cells

A custom 11,999-construct library of 130–220 bp coding-exon fragments (candidate exonic enhancers, controls, and gnomAD-derived single- and multi-SNP variants) was cloned downstream of a constitutive promoter in a STARR-seq reporter and transfected into human K-562 cells. Five biological replicates were harvested 24 h later; reporter cDNA was quantified against input plasmid DNA.

Standard STARR-seqHumanGRCh38
Explore data

Raw source data 9 files

Original supplemental and deposited inputs retained for this study. Download files individually or together as a ZIP; nested folders are preserved. Source reuse terms apply, and sequencing reads may be omitted.

Download all 9 files (ZIP)GSE292804_exonhancers_library.fasta.gzGSE292804_exonsenhancers_STARR-seq_results_summary.tsv.gzGSE292804_RAW.tarREADME.txtSource_Data.xlsxSTARR-seq_experiment_zenodo.tar.gzSupplementary_Data_1.xlsxSupplementary_Data_3_STARR-seq.xlsxSupplementary_Information.pdf

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