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Transcriptional interference drives intronic polyadenylation at the endogenouslocus

Source: PubMed Central Open Access, NCBI / U.S. National Library of Medicine

Nucleic Acids ResearchLast synced 6/29/2026Status: syncedPMID: 42363762 pmidDOI: 10.1093/nar/gkag640

Abstract Over a tenth of mammalian genes are nested within other host genes, raising the question of how both can be co-expressed when concurrent transcription occurs in overlapping genetic space. DNA methylation at nested intragenic CpG island promoters can prevent such conflict by silencing the nested gene. Conversely, when these promoters lack DNA methylation and are active, transcriptional interference is widely assumed to occur, but this has not been mechanistically demonstrated at endogenous mammalian loci. Here, we demonstrate transcriptional interference at an endogenous mammalian host/nested locus, the imprintedpair. Active nested gene () transcription promotes host gene () intronic polyadenylation, but when the intragenicpromoter is silenced through DNA methylation, host gene elongation reaches the distal 3′UTR polyadenylation of. We establish that this intronic polyadenylation depends on the act of transcription itself, independently of DNA methylation at the intragenicpromoter. Moreover, nested gene transcription disrupts host gene elongation even when the upstream intronic polyadenylation signal is genetically ablated. Our findings provide mechanistic insight into the widely held assumption of transcriptional interference and reveal how nested gene transcription can trigger premature termination of host genes, with implications for the hundreds of similarly organised loci across mammalian genomes. Graphical Abstract Graphical Abstract For image description, pleas

Abstract

Abstract Over a tenth of mammalian genes are nested within other host genes, raising the question of how both can be co-expressed when concurrent transcription occurs in overlapping genetic space. DNA methylation at nested intragenic CpG island promoters can prevent such conflict by silencing the nested gene. Conversely, when these promoters lack DNA methylation and are active, transcriptional interference is widely assumed to occur, but this has not been mechanistically demonstrated at endogenous mammalian loci. Here, we demonstrate transcriptional interference at an endogenous mammalian host/nested locus, the imprintedpair. Active nested gene () transcription promotes host gene () intronic polyadenylation, but when the intragenicpromoter is silenced through DNA methylation, host gene elongation reaches the distal 3′UTR polyadenylation of. We establish that this intronic polyadenylation depends on the act of transcription itself, independently of DNA methylation at the intragenicpromoter. Moreover, nested gene transcription disrupts host gene elongation even when the upstream intronic polyadenylation signal is genetically ablated. Our findings provide mechanistic insight into the widely held assumption of transcriptional interference and reveal how nested gene transcription can trigger premature termination of host genes, with implications for the hundreds of similarly organised loci across mammalian genomes. Graphical Abstract Graphical Abstract For image description, please refer to the figure legend and surrounding text. http://www.w3.org/1999/xlink float portrait gkag640figgra1.jpg float ga1 portrait graphical

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