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Published on: July 21, 2018
Small-molecule IKKβ activation modulator (IKAM) targets MAP3K1 and inhibits pancreatic tumor growth
John Victor Napoleon1, Satish Sagar1, Sydney P Kubica1
1Eppley Institute for Cancer Research, University of Nebraska Medical Center, Omaha, NE 68198.
Abstract:
Activation of inhibitor of nuclear factor NF-κB kinase subunit-β (IKKβ), characterized by phosphorylation of activation loop serine residues 177 and 181, has been implicated in the early onset of cancer. On the other hand, tissue-specific IKKβ knockout in Kras mutation-driven mouse models stalled the disease in the precancerous stage. In this study, we used cell line models, tumor growth studies, and patient samples to assess the role of IKKβ and its activation in cancer. We also conducted a hit-to-lead optimization study that led to the identification of 39-100 as a selective mitogen-activated protein kinase kinase kinase (MAP3K) 1 inhibitor. We show that IKKβ is not required for growth of Kras mutant pancreatic cancer (PC) cells but is critical for PC tumor growth in mice. We also observed elevated basal levels of activated IKKβ in PC cell lines, PC patient-derived tumors, and liver metastases, implicating it in disease onset and progression. Optimization of an ATP noncompetitive IKKβ inhibitor resulted in the identification of 39-100, an orally bioavailable inhibitor with improved potency and pharmacokinetic properties. The compound 39-100 did not inhibit IKKβ but inhibited the IKKβ kinase MAP3K1 with low-micromolar potency. MAP3K1-mediated IKKβ phosphorylation was inhibited by 39-100, thus we termed it IKKβ activation modulator (IKAM) 1. In PC models, IKAM-1 reduced activated IKKβ levels, inhibited tumor growth, and reduced metastasis. Our findings suggests that MAP3K1-mediated IKKβ activation contributes to KRAS mutation-associated PC growth and IKAM-1 is a viable pretherapeutic lead that targets this pathway.
Insights
Inhibitor of nuclear factor NF-κB kinase subunit-β (IKKβ) activation drives KRAS-mutant pancreatic cancer growth. A novel inhibitor, IKAM-1, targets MAP3K1 to reduce IKKβ activation, inhibit tumor growth, and decrease metastasis.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Activation of inhibitor of nuclear factor NF-κB kinase subunit-β (IKKβ) is linked to cancer development.
- Tissue-specific knockout of IKKβ in Kras-driven mouse models halts cancer progression.
- Elevated activated IKKβ is observed in pancreatic cancer (PC) cell lines, tumors, and metastases.
Purpose of the Study:
- To investigate the role of IKKβ activation in KRAS-mutant pancreatic cancer.
- To identify and optimize inhibitors targeting the IKKβ activation pathway.
- To evaluate the therapeutic potential of a novel inhibitor, IKAM-1.
Main Methods:
- Utilized cell line models, tumor growth studies, and patient samples.
- Conducted hit-to-lead optimization of an ATP noncompetitive IKKβ inhibitor.
- Assessed the efficacy of IKAM-1 in preclinical pancreatic cancer models.
Main Results:
- IKKβ is not essential for Kras mutant PC cell growth but is critical for tumor growth in vivo.
- Identified 39-100 (IKAM-1) as a selective MAP3K1 inhibitor, not an IKKβ inhibitor.
- IKAM-1 reduced activated IKKβ levels, inhibited PC tumor growth, and decreased metastasis in mouse models.
Conclusions:
- MAP3K1-mediated IKKβ activation is crucial for KRAS-mutant pancreatic cancer progression.
- IKAM-1 effectively targets this pathway and shows promise as a pretherapeutic lead.
- IKAM-1 represents a viable therapeutic strategy for KRAS-associated pancreatic cancer.
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