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Updated: Feb 2, 2026

Analysis of DNA Double-strand Break DSB Repair in Mammalian Cells
Published on: September 8, 2010
CDK12 regulates DNA repair genes by suppressing intronic polyadenylation
Sara J Dubbury1,2, Paul L Boutz1,3, Phillip A Sharp4,5
1Koch Institute for Integrative Cancer Research, Massachusetts Institute of Technology, Cambridge, MA, USA.
Abstract:
Mutations that attenuate homologous recombination (HR)-mediated repair promote tumorigenesis and sensitize cells to chemotherapeutics that cause replication fork collapse, a phenotype known as 'BRCAness'1. BRCAness tumours arise from loss-of-function mutations in 22 genes1. Of these genes, all but one (CDK12) function directly in the HR repair pathway1. CDK12 phosphorylates serine 2 of the RNA polymerase II C-terminal domain heptapeptide repeat2-7, a modification that regulates transcription elongation, splicing, and cleavage and polyadenylation8,9. Genome-wide expression studies suggest that depletion of CDK12 abrogates the expression of several HR genes relatively specifically, thereby blunting HR repair3-7,10,11. This observation suggests that the mutational status of CDK12 may predict sensitivity to targeted treatments against BRCAness, such as PARP1 inhibitors, and that CDK12 inhibitors may induce sensitization of HR-competent tumours to these treatments6,7,10,11. Despite growing clinical interest, the mechanism by which CDK12 regulates HR genes remains unknown. Here we show that CDK12 globally suppresses intronic polyadenylation events in mouse embryonic stem cells, enabling the production of full-length gene products. Many HR genes harbour more intronic polyadenylation sites than other expressed genes, and these sites are particularly sensitive to loss of CDK12. The cumulative effect of these sites accounts for the enhanced sensitivity of HR gene expression to CDK12 loss, and we find that this mechanism is conserved in human tumours that contain loss-of-function CDK12 mutations. This work clarifies the function of CDK12 and underscores its potential both as a chemotherapeutic target and as a tumour biomarker.
Insights
CDK12 loss impairs homologous recombination (HR) gene expression by increasing intronic polyadenylation, a mechanism conserved in human cancers. This finding highlights CDK12 as a potential therapeutic target and biomarker for BRCAness tumors.
Area of Science:
- Molecular Biology
- Cancer Biology
- Genetics
Background:
- Mutations in homologous recombination (HR) repair genes lead to 'BRCAness' tumors, increasing sensitivity to DNA-damaging chemotherapeutics.
- CDK12, unlike other HR-related genes, regulates transcription through RNA polymerase II phosphorylation.
- The precise mechanism by which CDK12 influences HR gene expression remains unclear.
Purpose of the Study:
- To elucidate the mechanism by which CDK12 regulates homologous recombination (HR) genes.
- To investigate the role of CDK12 in suppressing intronic polyadenylation events.
- To determine if this mechanism is conserved in human tumors with CDK12 mutations.
Main Methods:
- Utilized mouse embryonic stem cells to study the global effects of CDK12 on gene expression.
- Analyzed intronic polyadenylation sites in HR genes and other expressed genes.
- Examined the conservation of CDK12's regulatory mechanism in human tumor samples.
Main Results:
- CDK12 globally suppresses intronic polyadenylation, facilitating the production of full-length HR gene products.
- HR genes exhibit a higher prevalence of intronic polyadenylation sites sensitive to CDK12 loss.
- This regulatory mechanism is conserved in human tumors with loss-of-function CDK12 mutations.
Conclusions:
- CDK12's function in suppressing intronic polyadenylation explains its role in maintaining HR gene expression.
- Loss of CDK12 function leads to impaired HR repair, contributing to the BRCAness phenotype.
- CDK12 represents a promising therapeutic target and a potential biomarker for BRCAness-associated cancers.
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