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.

ACS Chemical Biology
|August 16, 2018
PubMed

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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