Anti-c-Met monoclonal antibody ABT-700 breaks oncogene addiction in tumors with MET amplification
Jieyi Wang1,2, Liliane Goetsch3, Lora Tucker4
1AbbVie, North Chicago, IL, USA. jieyi.wang@abbvie.com.
Background:
c-Met is the receptor tyrosine kinase for hepatocyte growth factor (HGF) encoded by the MET proto-oncogene. Aberrant activation of c-Met resulting from MET amplification and c-Met overexpression is associated with poor clinical outcome in multiple malignancies underscoring the importance of c-Met signaling in cancer progression. Several c-Met inhibitors have advanced to the clinic; however, the development of inhibitory c-Met-directed therapeutic antibodies has been hampered by inherent agonistic activity.
Method:
We generated and tested a bivalent anti-c-Met monoclonal antibody ABT-700 in vitro for binding potency and antagonistic activity and in vivo for antitumor efficacy in human tumor xenografts. Human cancer cell lines and gastric cancer tissue microarrays were examined for MET amplification by fluorescence in situ hybridization (FISH).
Results:
ABT-700 exhibits a distinctive ability to block both HGF-independent constitutive c-Met signaling and HGF-dependent activation of c-Met. Cancer cells addicted to the constitutively activated c-Met signaling driven by MET amplification undergo apoptosis upon exposure to ABT-700. ABT-700 induces tumor regression and tumor growth delay in preclinical tumor models of gastric and lung cancers harboring amplified MET. ABT-700 in combination with chemotherapeutics also shows additive antitumor effect. Amplification of MET in human cancer tissues can be identified by FISH.
Conclusions:
The preclinical attributes of ABT-700 in blocking c-Met signaling, inducing apoptosis and suppressing tumor growth in cancers with amplified MET provide rationale for examining its potential clinical utility for the treatment of cancers harboring MET amplification.
Insights
A new antibody, ABT-700, effectively blocks c-Met signaling in cancers with MET amplification. This antibody induces cancer cell death and tumor regression, showing promise for clinical development.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- c-Met receptor tyrosine kinase signaling is crucial for cancer progression.
- MET amplification and overexpression correlate with poor clinical outcomes in various cancers.
- Existing c-Met inhibitors face challenges, particularly therapeutic antibodies with agonistic activity.
Purpose of the Study:
- To evaluate the preclinical efficacy of a novel bivalent anti-c-Met monoclonal antibody, ABT-700.
- To assess ABT-700's ability to inhibit both HGF-dependent and independent c-Met signaling.
- To determine the therapeutic potential of ABT-700 in cancers with MET amplification.
Main Methods:
- Generation and in vitro testing of ABT-700 for binding and antagonistic activity.
- In vivo evaluation of ABT-700's antitumor efficacy in human tumor xenografts.
- Fluorescence in situ hybridization (FISH) to detect MET amplification in cancer cell lines and tissues.
Main Results:
- ABT-700 effectively blocks constitutive and HGF-dependent c-Met signaling.
- Cancer cells dependent on MET amplification undergo apoptosis when treated with ABT-700.
- ABT-700 demonstrated tumor regression and growth delay in preclinical models of gastric and lung cancers with MET amplification.
- Combination therapy with ABT-700 and chemotherapeutics showed additive antitumor effects.
- FISH is a reliable method for identifying MET amplification in human cancers.
Conclusions:
- ABT-700's preclinical profile supports its potential clinical utility.
- Blocking c-Met signaling with ABT-700 induces apoptosis and suppresses tumor growth.
- ABT-700 is a promising therapeutic candidate for cancers harboring MET amplification.
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