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Nakayama, C.

Publications and source records attributed to Nakayama, C..

2 recordsLinked to original sources

SETD2 methyltransferase activity aids gene definition by promoting correct transcription initiation and termination

SETD2 is a methyltransferase responsible for depositing histone H3 lysine 36 trimethylation (H3K36me3). Loss of its enzymatic activity occurs in some cancers, including renal cell carcinoma (RCC). In RCC, SETD2 mutations have been linked to delayed transcription termination, but not explored in depth. Here, using nascent transcriptomics in SETD2 knockout and patient-derived cells, we reveal a dichotomy in SETD2 functions depending on the affected protein-coding gene. Majority of genes, named class I, are dependent on SETD2 function for transcription initiation, yet terminate transcription in the usual locations. In contrast, for class II genes, corresponding to 15-25% of active protein-coding genes, transcription initiation is robust in absence of SETD2 activity, however widespread transcriptional readthrough occurs. Defective termination following SETD2 loss/mutation is associated with increased cryptic transcription initiation and impaired 3' pre-mRNA cleavage. Additionally, alternative polyadenylation upon SETD2 activity loss is highly cell type specific, and unrelated to transcription readthrough. In summary, we demonstrate that methyltransferase activity of SETD2 regulates transcriptional integrity by stimulating proper initiation, preventing cryptic initiation and promoting efficient 3' end processing.

molecular biology↗

NELF coordinates Pol II transcription termination and DNA replication initiation

Regulation of RNA polymerase II (Pol II) transcription is closely associated with cell proliferation. However, it remains unclear how the Pol II transcription program is altered in cancer to favour cell growth. Here, we find that gene expression of NELFCD, a known negative elongation factor, is up-regulated in colorectal tumours. To dissect the direct role of NELF-C on Pol II transcription in such cancer, we employed an auxin-dependent protein degradation system for NELF-C in combination with nascent transcript sequencing technologies. Strikingly, we demonstrated that the acute loss of NELF-C protein globally perturbs Pol II transcription termination and also increases transcription elongation rate, independently of promoter-proximal Pol II pausing. This results in Pol II transcription into DNA replication initiation zones, and may link to failure of the cell cycle transition into S phase. We anticipate that NELF will be a potential therapeutic target to restrict colorectal cancers by promoting transcription-replication conflict. HIGHLIGHTSO_LIExpression of NELFCD transcript is up-regulated in colorectal tumors C_LIO_LINELF-C protein is mandatory for the transition between G1-S phases during cell cycle C_LIO_LINELF-C loss impairs transcription termination independently of Pol II promoter-proximal pausing C_LIO_LINELF-C loss leads Pol II to invade DNA replication initiation zones C_LI

molecular biology↗