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Updated: Feb 19, 2026

Induction and Testing of Hypoxia in Cell Culture
Published on: August 12, 2011
Hypoxia-Inducible PIM Kinase Expression Promotes Resistance to Antiangiogenic Agents
Andrea L Casillas1, Rachel K Toth2, Alva G Sainz3
1Department of Cancer Biology, University of Arizona, Tucson, Arizona.
Abstract:
Purpose: Patients develop resistance to antiangiogenic drugs, secondary to changes in the tumor microenvironment, including hypoxia. PIM kinases are prosurvival kinases and their expression increases in hypoxia. The goal of this study was to determine whether targeting hypoxia-induced PIM kinase expression is effective in combination with VEGF-targeting agents. The rationale for this therapeutic approach is based on the fact that antiangiogenic drugs can make tumors hypoxic, and thus more sensitive to PIM inhibitors.Experimental Design: Xenograft and orthotopic models of prostate and colon cancer were used to assess the effect of PIM activation on the efficacy of VEGF-targeting agents. IHC and in vivo imaging were used to analyze angiogenesis, apoptosis, proliferation, and metastasis. Biochemical studies were performed to characterize the novel signaling pathway linking PIM and HIF1.Results: PIM was upregulated following treatment with anti-VEGF therapies, and PIM1 overexpression reduced the ability of these drugs to disrupt vasculature and block tumor growth. PIM inhibitors reduced HIF1 activity, opposing the shift to a pro-angiogenic gene signature associated with hypoxia. Combined inhibition of PIM and VEGF produced a synergistic antitumor response characterized by decreased proliferation, reduced tumor vasculature, and decreased metastasis.Conclusions: This study describes PIM kinase expression as a novel mechanism of resistance to antiangiogenic agents. Our data provide justification for combining PIM and VEGF inhibitors to treat solid tumors. The unique ability of PIM inhibitors to concomitantly target HIF1 and selectively kill hypoxic tumor cells addresses two major components of tumor progression and therapeutic resistance. Clin Cancer Res; 24(1); 169-80. ©2017 AACR.
Insights
Targeting PIM kinases alongside VEGF inhibitors overcomes resistance to antiangiogenic drugs. This combination therapy effectively reduces tumor growth, vascularization, and metastasis in preclinical models.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Antiangiogenic therapies can induce tumor hypoxia, a condition that promotes resistance.
- PIM kinases are survival kinases upregulated in hypoxic conditions.
- Understanding resistance mechanisms is crucial for improving cancer treatment.
Purpose of the Study:
- To investigate if targeting hypoxia-induced PIM kinase is effective in combination with VEGF inhibitors.
- To explore the rationale that antiangiogenic drugs may sensitize tumors to PIM inhibitors.
- To evaluate a novel therapeutic strategy for solid tumors.
Main Methods:
- Utilized xenograft and orthotopic models of prostate and colon cancer.
- Employed immunohistochemistry (IHC) and in vivo imaging to assess tumor characteristics.
- Conducted biochemical studies to elucidate the PIM and HIF1 signaling pathway.
Main Results:
- PIM kinase was upregulated after anti-VEGF treatment, contributing to drug resistance.
- PIM inhibitors decreased hypoxia-induced factor 1 (HIF1) activity and reversed pro-angiogenic gene expression.
- Combined PIM and VEGF inhibition demonstrated synergistic antitumor effects, reducing proliferation, vasculature, and metastasis.
Conclusions:
- PIM kinase expression represents a novel mechanism of resistance to antiangiogenic agents.
- Combining PIM and VEGF inhibitors offers a promising therapeutic strategy for solid tumors.
- PIM inhibitors target both HIF1 and hypoxic tumor cells, addressing key aspects of tumor progression and resistance.
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