CDK12 regulates cellular metabolism to promote glioblastoma growth
Jeong-Yeon Mun1, Chang Shu1, Qiuqiang Gao1
1Department of Pathology and Cell Biology, and.
Abstract:
Glioblastoma IDH-wildtype is the most common and aggressive primary brain tumor in adults, with poor prognosis despite current therapies. To identify new therapeutic vulnerabilities, we investigated the role of CDK12, a transcription-associated cyclin-dependent kinase, in glioblastoma. Genetic or pharmacologic inactivation of CDK12 impaired tumor growth in patient-derived xenograft (PDX) models and enhanced the efficacy of temozolomide. Metabolic profiling using extracellular flux analysis and stable isotope tracing with U-¹³C-glucose and U-¹³C-glutamine showed that CDK12 inhibition disrupted mitochondrial respiration, resulting in energy depletion and apoptotic cell death characterized by caspase activation and Noxa induction. Mechanistically, we identified a direct interaction between CDK12 and GSK3β. CDK12 inhibition activated GSK3β, leading to downregulation of PPARD, a transcriptional regulator of oxidative metabolism. This CDK12/GSK3β/PPARD axis was required for glioblastoma cell proliferation and metabolic homeostasis. In vivo, CDK12 inhibition significantly extended survival without overt toxicity and induced complete tumor regression in a subset of animals. Strikingly, combined CDK12 inhibition and temozolomide treatment led to complete tumor eradication in all animals tested. These findings establish CDK12 as a key regulator of glioblastoma metabolism and survival, and provide strong preclinical rationale for its therapeutic targeting in combination with standard-of-care treatments.
Insights
Targeting CDK12, a key regulator of glioblastoma metabolism, shows promise. Inhibiting CDK12 impairs tumor growth and enhances temozolomide efficacy, offering new therapeutic strategies for this aggressive brain cancer.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Glioblastoma IDH-wildtype is an aggressive adult primary brain tumor with a poor prognosis.
- Current therapies for glioblastoma are limited, necessitating the identification of new therapeutic vulnerabilities.
Purpose of the Study:
- To investigate the role of CDK12 (a transcription-associated cyclin-dependent kinase) in glioblastoma.
- To explore CDK12 as a potential therapeutic target for glioblastoma.
Main Methods:
- Utilized patient-derived xenograft (PDX) models of glioblastoma.
- Performed metabolic profiling using extracellular flux analysis and stable isotope tracing (U-¹³C-glucose, U-¹³C-glutamine).
- Investigated molecular interactions using biochemical assays.
Main Results:
- CDK12 inhibition impaired glioblastoma tumor growth and enhanced temozolomide efficacy.
- CDK12 inhibition disrupted mitochondrial respiration, leading to energy depletion and apoptosis.
- Identified a CDK12/GSK3β/PPARD axis crucial for glioblastoma proliferation and metabolic homeostasis.
- In vivo CDK12 inhibition extended survival and induced tumor regression; combination therapy eradicated tumors.
Conclusions:
- CDK12 is a critical regulator of glioblastoma metabolism and survival.
- Targeting CDK12, particularly in combination with temozolomide, presents a strong preclinical rationale for glioblastoma treatment.
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