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Structure-Based Design of Novel EphA2 Agonistic Agents with Nanomolar Affinity in Vitro and in Cell
Luca Gambini1, Ahmed F Salem1, Parima Udompholkul1
1Division of Biomedical Sciences, School of Medicine , University of California Riverside , 900 University Avenue , Riverside , California 92521 , United States.
Abstract:
EphA2 overexpression is invariably associated with poor prognosis and development of aggressive metastatic cancers in pancreatic, prostate, lung, ovarian, and breast cancers and melanoma. Recent efforts from our laboratories identified a number of agonistic peptides targeting the ligand-binding domain of the EphA2 receptor. The individual agents, however, were still relatively weak in affinities (micromolar range) that precluded detailed structural studies on the mode of action. Using a systematic optimization of the 12-mer peptide mimetic 123B9, we were able to first derive an agent that displayed a submicromolar affinity for the receptor. This agent enabled cocrystallization with the EphA2 ligand-binding domain providing for the first time the structural basis for their agonistic mechanism of action. In addition, the atomic coordinates of the complex enabled rapid iterations of structure-based optimizations that resulted in a novel agonistic agent, named 135H11, with a nanomolar affinity for the receptor, as demonstrated by in vitro binding assays (isothermal titration calorimetry measurements), and a biochemical displacement assay. As we have recently demonstrated, the cellular activity of these agents is further increased by synthesizing dimeric versions of the compounds. Hence, we report that a dimeric version of 135H11 is extremely effective at low nanomolar concentrations to induce cellular receptor activation, internalization, and inhibition of cell migration in a pancreatic cancer cell line. Given the pivotal role of EphA2 in tumor growth, angiogenesis, drug resistance, and metastasis, these agents, and the associated structural studies, provide significant advancements in the field for the development of novel EphA2-targeting therapeutics or diagnostics.
Insights
Researchers developed novel peptide agents targeting the EphA2 receptor, crucial in aggressive cancers. Optimized versions show nanomolar affinity and potent cellular activity, advancing EphA2-targeted cancer therapeutics.
Area of Science:
- Oncology
- Molecular Biology
- Structural Biology
Background:
- EphA2 receptor overexpression correlates with aggressive cancers and poor prognosis.
- Previous agonistic peptides had weak affinities, limiting mechanistic studies.
- Targeting EphA2 is critical for inhibiting tumor growth, angiogenesis, and metastasis.
Purpose of the Study:
- To optimize peptide mimetics for enhanced EphA2 receptor binding and activity.
- To elucidate the structural basis of EphA2 agonistic peptide mechanism of action.
- To develop novel EphA2-targeting agents for cancer therapy.
Main Methods:
- Systematic optimization of a 12-mer peptide mimetic (123B9).
- Cocrystallization of EphA2 ligand-binding domain with optimized peptide for structural analysis.
- Structure-based optimization leading to a novel agent (135H11).
- In vitro binding assays (isothermal titration calorimetry) and biochemical displacement assays.
- Synthesis of dimeric versions of the optimized peptide.
Main Results:
- Derived a peptide with submicromolar affinity, enabling cocrystallization and structural determination.
- Developed a novel agonistic agent, 135H11, with nanomolar receptor affinity.
- Demonstrated that dimeric versions of 135H11 exhibit potent cellular activity at low nanomolar concentrations.
- Observed EphA2 activation, internalization, and inhibition of cell migration in pancreatic cancer cells.
Conclusions:
- Structural insights enabled the development of high-affinity EphA2 agonistic peptides.
- Dimeric 135H11 demonstrates significant potential for EphA2-targeted cancer therapy.
- These findings represent advancements in developing novel therapeutics and diagnostics for EphA2-driven cancers.
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