Downsizing Proto-oncogene cFos to Short Helix-Constrained Peptides That Bind Jun

Daniel Baxter1, Samuel R Perry2, Timothy A Hill2

  • 1Department of Biology & Biochemistry, University of Bath , Claverton Down, Bath BA2 7AY, U.K.

ACS Chemical Biology
|June 22, 2017
PubMed

Insights

Researchers downsized the cFos protein into a 25-residue peptide that enhances binding to Jun. This peptide inhibits breast cancer cell proliferation by entering cells and localizing to the nucleus.

Area of Science:

  • Biochemistry
  • Structural Biology
  • Molecular Oncology

Background:

  • The oncogenic transcription factor activator protein-1 (AP-1) is crucial for cell proliferation and is formed by Fos and Jun protein dimerization.
  • The proto-oncogene cFos protein's structure and function are key targets for cancer research.

Purpose of the Study:

  • To design and characterize smaller, constrained peptides derived from cFos that enhance binding to Jun.
  • To evaluate the therapeutic potential of these peptides in inhibiting cancer cell proliferation.

Main Methods:

  • X-ray crystallography to determine the structure of a Fos-derived peptide bound to Jun.
  • Circular dichroism spectroscopy to assess peptide structural integrity.
  • Isothermal titration calorimetry to measure binding thermodynamics.
  • Cell-based assays to evaluate peptide uptake, nuclear localization, and anti-proliferative effects.

Main Results:

  • A 37-residue Fos-derived peptide (FosW) structure bound to Jun was determined.
  • Iterative downsizing yielded a 25-residue constrained peptide with enhanced helical stability and Jun-binding affinity.
  • This shorter peptide retained 80% of the binding free energy compared to the larger FosW peptide.
  • The constrained peptide, when conjugated with cell-penetrating and nuclear localization signals, effectively inhibited breast cancer cell proliferation.

Conclusions:

  • Constrained peptides can mimic and enhance the function of larger proteins like cFos.
  • Downsized, helix-constrained peptides represent a promising strategy for developing targeted cancer therapeutics.
  • The developed peptide demonstrates potential for inhibiting cancer cell growth through nuclear targeting.

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