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Published on: July 21, 2018
IKK is a therapeutic target in KRAS-Induced lung cancer with disrupted p53 activity
Daniela S Bassères1, Aaron Ebbs2, Patricia C Cogswell2
1Department of Biochemistry, Chemistry Institute, University of São Paulo, São Paulo, SP, Brazil;
Abstract:
Activating mutations in KRAS are prevalent in cancer, but therapies targeted to oncogenic RAS have been ineffective to date. These results argue that targeting downstream effectors of RAS will be an alternative route for blocking RAS-driven oncogenic pathways. We and others have shown that oncogenic RAS activates the NF-κB transcription factor pathway and that KRAS-induced lung tumorigenesis is suppressed by expression of a degradation-resistant form of the IκBα inhibitor or by genetic deletion of IKKβ or the RELA/p65 subunit of NF-κB. Here, genetic and pharmacological approaches were utilized to inactivate IKK in human primary lung epithelial cells transformed by KRAS, as well as KRAS mutant lung cancer cell lines. Administration of the highly specific IKKβ inhibitor Compound A (CmpdA) led to NF-κB inhibition in different KRAS mutant lung cells and siRNA-mediated knockdown of IKKα or IKKβ reduced activity of the NF-κB canonical pathway. Next, we determined that both IKKα and IKKβ contribute to oncogenic properties of KRAS mutant lung cells, particularly when p53 activity is disrupted. Based on these results, CmpdA was tested for potential therapeutic intervention in the Kras-induced lung cancer mouse model (LSL-Kras (G12D)) combined with loss of p53 (LSL-Kras (G12D)/p53 (fl/fl)). CmpdA treatment was well tolerated and mice treated with this IKKβ inhibitor presented smaller and lower grade tumors than mice treated with placebo. Additionally, IKKβ inhibition reduced inflammation and angiogenesis. These results support the concept of targeting IKK as a therapeutic approach for oncogenic RAS-driven tumors with altered p53 activity.
Insights
Targeting the IKK pathway with Compound A effectively suppressed KRAS-driven lung tumors in mice, particularly those with disrupted p53 activity. This approach offers a promising therapeutic strategy for RAS-driven cancers.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Activating KRAS mutations are common in cancer, but direct targeting has proven ineffective.
- Oncogenic RAS activates the NF-κB pathway, a key driver of tumorigenesis.
- Previous studies suggest inhibiting NF-κB signaling can suppress KRAS-driven lung cancer.
Purpose of the Study:
- To investigate the role of IKK (IκB kinase) in KRAS-mutant lung cancer.
- To evaluate the therapeutic potential of inhibiting IKK using Compound A (CmpdA) in preclinical models.
Main Methods:
- Genetic and pharmacological inactivation of IKKα and IKKβ in KRAS-transformed human lung cells.
- Assessment of NF-κB pathway activity using siRNA and a specific IKKβ inhibitor (CmpdA).
- Therapeutic efficacy testing of CmpdA in a Kras-induced lung cancer mouse model with p53 loss.
Main Results:
- CmpdA inhibited NF-κB signaling in KRAS-mutant lung cells; IKKα/β knockdown reduced pathway activity.
- Both IKKα and IKKβ contribute to oncogenic properties, especially with disrupted p53.
- CmpdA treatment reduced tumor size and grade in mice, also decreasing inflammation and angiogenesis.
Conclusions:
- Inhibition of IKK, specifically IKKβ, is a viable strategy for blocking RAS-driven oncogenic pathways.
- Targeting IKK shows therapeutic promise for KRAS-mutant lung cancers, particularly those with p53 alterations.
- Compound A demonstrates potential as a targeted therapy for specific subsets of lung cancer.
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