Englander Institute for Precision Medicine

Selective inhibition of CDK7 reveals high-confidence targets and new models for TFIIH function in transcription.

TitleSelective inhibition of CDK7 reveals high-confidence targets and new models for TFIIH function in transcription.
Publication TypeJournal Article
Year of Publication2020
AuthorsRimel JK, Poss ZC, Erickson B, Maas ZL, Ebmeier CC, Johnson JL, Decker T-M, Yaron TM, Bradley MJ, Hamman KB, Hu S, Malojcic G, Marineau JJ, White PW, Brault M, Tao L, DeRoy P, Clavette C, Nayak S, Damon LJ, Kaltheuner IH, Bunch H, Cantley LC, Geyer M, Iwasa J, Dowell RD, Bentley DL, Old WM, Taatjes DJ
JournalGenes Dev
Volume34
Issue21-22
Pagination1452-1473
Date Published2020 Nov 01
ISSN1549-5477
KeywordsAlternative Splicing, Cell Survival, Cyclin-Dependent Kinase-Activating Kinase, Cyclin-Dependent Kinases, Enzyme Activation, HL-60 Cells, Humans, Models, Biological, Transcription Factor TFIIH, Transcription, Genetic
Abstract

CDK7 associates with the 10-subunit TFIIH complex and regulates transcription by phosphorylating the C-terminal domain (CTD) of RNA polymerase II (RNAPII). Few additional CDK7 substrates are known. Here, using the covalent inhibitor SY-351 and quantitative phosphoproteomics, we identified CDK7 kinase substrates in human cells. Among hundreds of high-confidence targets, the vast majority are unique to CDK7 (i.e., distinct from other transcription-associated kinases), with a subset that suggest novel cellular functions. Transcription-associated factors were predominant CDK7 substrates, including SF3B1, U2AF2, and other splicing components. Accordingly, widespread and diverse splicing defects, such as alternative exon inclusion and intron retention, were characterized in CDK7-inhibited cells. Combined with biochemical assays, we establish that CDK7 directly activates other transcription-associated kinases CDK9, CDK12, and CDK13, invoking a "master regulator" role in transcription. We further demonstrate that TFIIH restricts CDK7 kinase function to the RNAPII CTD, whereas other substrates (e.g., SPT5 and SF3B1) are phosphorylated by the three-subunit CDK-activating kinase (CAK; CCNH, MAT1, and CDK7). These results suggest new models for CDK7 function in transcription and implicate CAK dissociation from TFIIH as essential for kinase activation. This straightforward regulatory strategy ensures CDK7 activation is spatially and temporally linked to transcription, and may apply toward other transcription-associated kinases.

DOI10.1101/gad.341545.120
Alternate JournalGenes Dev
PubMed ID33060135
PubMed Central IDPMC7608751
Grant ListF31 CA250432 / CA / NCI NIH HHS / United States
S10 OD012300 / OD / NIH HHS / United States
R01 GM110064 / GM / NIGMS NIH HHS / United States
R21 CA205912 / CA / NCI NIH HHS / United States
R35 GM118051 / GM / NIGMS NIH HHS / United States
T32 GM065103 / GM / NIGMS NIH HHS / United States

Weill Cornell Medicine Englander Institute for Precision Medicine 413 E 69th Street
Belfer Research Building
New York, NY 10021