In situ antibody phage display yields optimal inhibitors of integrin α11/β1

Eugenio Gallo1, Abdellali Kelil1, Peter E Bayliss2

  • 1Department of Molecular Genetics, University of Toronto, Donnelly Centre, Toronto, Ontario, Canada.

Mabs
|January 26, 2020
PubMed

Insights

Selecting antibodies using live cells (in situ) effectively targets cell-surface integrin-α11/β1 for cancer therapy. This method generates functional antibodies that inhibit cancer cell adhesion, unlike traditional methods using purified proteins.

Area of Science:

  • Molecular Biology
  • Immunology
  • Cancer Research

Background:

  • Integrins are key transmembrane receptors mediating cell-matrix interactions.
  • Integrin-α11/β1 is implicated in aggressive cancers and tumor-stroma crosstalk.
  • Targeting integrin-α11/β1 with antibodies offers potential anti-cancer therapeutics.

Purpose of the Study:

  • To generate functional antibodies against cell-surface integrin-α11/β1.
  • To compare the efficacy of in situ vs. purified antigen selection methods.
  • To establish methods for developing anti-membrane protein antibodies.

Main Methods:

  • Phage display selection using synthetic antibody libraries.
  • Selection against purified integrin-α11/β1.
  • Selection against native integrin-α11/β1 on live cells (in situ).
  • Characterization of antibody binding affinity, specificity, and functional inhibition.

Main Results:

  • In situ selection yielded diverse antibodies recognizing native integrin-α11/β1.
  • Purified antigen selection failed to produce antibodies recognizing cell-surface integrin-α11/β1.
  • In situ-derived antibodies inhibited collagen-I binding and cell adhesion with nanomolar affinity.
  • Antibodies demonstrated high specificity for integrin-α11/β1.

Conclusions:

  • In situ selection is superior for generating functional antibodies against cell-surface proteins like integrin-α11/β1.
  • This approach yields high-affinity, specific antibodies capable of inhibiting protein function.
  • The methods developed are broadly applicable for targeting other membrane proteins.