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Published on: July 21, 2018
Insulin-like growth factor-I receptor signaling blockade combined with radiation
Gregory W Allen1, Corey Saba, Eric A Armstrong
1Department of Human Oncology, School of Medicine and Comprehensive Cancer Center, University of Wisconsin Hospital and Clinics, 600 Highland Avenue, Madison, WI 53792, USA.
Abstract:
Signaling through the insulin-like growth factor-I receptor (IGF-IR) is implicated in cellular proliferation, apoptosis, carcinogenesis, metastasis, and resistance to cytotoxic cancer therapies. Targeted disruption of IGF-IR signaling combined with cytotoxic therapy may therefore yield improved anticancer efficacy over conventional treatments alone. In this study, a fully human anti-IGF-IR monoclonal antibody A12 (ImClone Systems, Inc., New York, NY) is examined as an adjunct to radiation therapy. IGF-IR expression is shown for a diverse cohort of cell lines, whereas targeted IGF-IR blockade by A12 inhibits IGF-IR phosphorylation and activation of the downstream effectors Akt and mitogen-activated protein kinase. Anchorage-dependent proliferation and xenograft growth is inhibited by A12 in a dose-dependent manner, particularly for non-small cell lung cancer lines. Clonogenic radiation survival of H226 and H460 cells grown under anchorage-dependent conditions is impaired by A12, demonstrating a radiation dose-enhancing effect for IGF-IR blockade. Postradiation anchorage-independent colony formation is inhibited by A12 in A549 and H460 cells. In the H460 xenograft model, combining A12 and radiation significantly enhances antitumor efficacy compared with either modality alone. These effects may be mediated by promotion of radiation-induced, double-stranded DNA damage and apoptosis as observed in cell culture. In summary, these results validate IGF-IR signal transduction blockade as a promising strategy to improve radiation therapy efficacy in human tumors, forming a basis for future clinical trials.
Insights
Targeting the insulin-like growth factor-I receptor (IGF-IR) with antibody A12 enhances radiation therapy efficacy. This approach inhibits cancer cell growth and improves antitumor outcomes, offering a promising strategy for improving cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Insulin-like growth factor-I receptor (IGF-IR) signaling is crucial for cancer cell proliferation, survival, and resistance to therapy.
- Targeting IGF-IR signaling alongside conventional treatments may improve anticancer efficacy.
Purpose of the Study:
- To evaluate the anti-IGF-IR monoclonal antibody A12 as an adjunct to radiation therapy for cancer treatment.
- To investigate the mechanisms by which IGF-IR blockade affects cancer cell response to radiation.
Main Methods:
- Assessed IGF-IR expression in various cancer cell lines.
- Investigated the effect of A12 on IGF-IR phosphorylation and downstream signaling (Akt, MAPK).
- Evaluated A12's impact on anchorage-dependent and -independent cell proliferation, clonogenic survival, and xenograft tumor growth in combination with radiation.
Main Results:
- A12 effectively blocked IGF-IR phosphorylation and downstream signaling.
- A12 inhibited cancer cell proliferation and xenograft growth in a dose-dependent manner, particularly in non-small cell lung cancer.
- Combining A12 with radiation impaired cancer cell survival, enhanced antitumor efficacy in xenografts, and potentially promoted radiation-induced DNA damage and apoptosis.
Conclusions:
- IGF-IR signal transduction blockade using antibody A12 is a promising strategy to enhance radiation therapy efficacy.
- These findings support the clinical investigation of A12 in combination with radiation for human tumor treatment.
- Targeted IGF-IR blockade offers a potential method to overcome resistance to cytotoxic cancer therapies.
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