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CDK2 Inhibition Causes Anaphase Catastrophe in Lung Cancer through the Centrosomal Protein CP110
Shanhu Hu1, Alexey V Danilov2, Kristina Godek3
1Department of Pharmacology and Toxicology, Geisel School of Medicine at Dartmouth, Hanover, New Hampshire. Dartmouth-Hitchcock Medical Center, Lebanon, New Hampshire.
Abstract:
Aneuploidy is frequently detected in human cancers and is implicated in carcinogenesis. Pharmacologic targeting of aneuploidy is an attractive therapeutic strategy, as this would preferentially eliminate malignant over normal cells. We previously discovered that CDK2 inhibition causes lung cancer cells with more than two centrosomes to undergo multipolar cell division leading to apoptosis, defined as anaphase catastrophe. Cells with activating KRAS mutations were especially sensitive to CDK2 inhibition. Mechanisms of CDK2-mediated anaphase catastrophe and how activated KRAS enhances this effect were investigated. Live-cell imaging provided direct evidence that following CDK2 inhibition, lung cancer cells develop multipolar anaphase and undergo multipolar cell division with the resulting progeny apoptotic. The siRNA-mediated repression of the CDK2 target and centrosome protein CP110 induced anaphase catastrophe of lung cancer cells. In contrast, CP110 overexpression antagonized CDK2 inhibitor-mediated anaphase catastrophe. Furthermore, activated KRAS mutations sensitized lung cancer cells to CDK2 inhibition by deregulating CP110 expression. Thus, CP110 is a critical mediator of CDK2 inhibition-driven anaphase catastrophe. Independent examination of murine and human paired normal-malignant lung tissues revealed marked upregulation of CP110 in malignant versus normal lung. Human lung cancers with KRAS mutations had significantly lower CP110 expression as compared with KRAS wild-type cancers. Thus, a direct link was found between CP110 and CDK2 inhibitor antineoplastic response. CP110 plays a mechanistic role in response of lung cancer cells to CDK2 inhibition, especially in the presence of activated KRAS mutations.
Insights
Targeting CDK2 in lung cancer induces cell death by causing abnormal cell division. This effect is enhanced in cancers with KRAS mutations, mediated by the protein CP110, offering a potential therapeutic strategy.
Area of Science:
- Oncology
- Cell Biology
- Molecular Medicine
Background:
- Aneuploidy, an abnormal chromosome number, is common in human cancers and drives carcinogenesis.
- Targeting aneuploidy offers a promising therapeutic strategy to selectively eliminate cancer cells.
- CDK2 inhibition was previously shown to induce apoptosis in lung cancer cells with supernumerary centrosomes.
Purpose of the Study:
- To investigate the mechanisms of CDK2 inhibitor-induced anaphase catastrophe in lung cancer.
- To elucidate how activating KRAS mutations enhance sensitivity to CDK2 inhibition.
- To identify the role of the centrosome protein CP110 in this process.
Main Methods:
- Live-cell imaging to observe cell division dynamics.
- siRNA-mediated gene silencing to repress CP110 expression.
- Overexpression studies to assess CP110's role in antagonizing drug effects.
- Analysis of CP110 expression in murine and human lung cancer tissues.
Main Results:
- CDK2 inhibition triggers multipolar cell division and apoptosis (anaphase catastrophe) in lung cancer cells.
- Repressing CP110 induces anaphase catastrophe, while its overexpression confers resistance.
- Activating KRAS mutations sensitize cells to CDK2 inhibition by altering CP110 expression.
- CP110 is upregulated in malignant lung tissue compared to normal tissue.
Conclusions:
- CP110 is a key mediator of CDK2 inhibitor-induced anaphase catastrophe in lung cancer.
- KRAS mutations influence CP110 regulation, impacting response to CDK2 inhibitors.
- CP110 levels and KRAS mutational status are linked to CDK2 inhibitor efficacy, suggesting therapeutic potential.
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