Evicting hitchhiker antigens from purified antibodies

Keith A Luhrs1, Debra A Harris, Scott Summers

  • 1Research & Development, Peregrine Pharmaceuticals Inc, Tustin, CA, USA.

Insights

This study addresses "hitchhiker antigens" that contaminate antibody therapies. We developed methods using guard columns and adjusted chromatography to remove these contaminants, improving antibody purity and potency for clinical use.

Area of Science:

  • Biopharmaceutical Manufacturing
  • Immunology
  • Analytical Chemistry

Background:

  • Monoclonal antibody (mAb) production can lead to contamination by cellular antigens, particularly those from dying cells.
  • Hitchhiker antigens, co-eluting with mAbs, pose a risk to product purity and efficacy.
  • Anti-histone antibodies are susceptible to binding histone-DNA complexes, a common hitchhiker antigen.

Purpose of the Study:

  • To identify and eliminate hitchhiker antigens, specifically histone-DNA complexes, from anti-histone antibody preparations.
  • To develop and validate methods for removing these contaminants in both research and manufacturing settings.
  • To improve the apparent potency and purity of therapeutic antibodies.

Main Methods:

  • Addition of a quaternary amine guard column during Protein A chromatography.
  • Optimization of ionic strength of cell culture supernatant (e.g., 400 mM NaCl).
  • Implementation of a mobile phase gradient (400 mM to 2M NaCl) during Protein A chromatography.

Main Results:

  • Successfully removed histone-DNA complex stowaways from anti-histone antibody products.
  • Demonstrated the applicability of developed methods in R&D and manufacturing environments.
  • Observed improved apparent potency of antibodies purified using these methods.
  • Detected hitchhiker antigens in some commercially available antibodies, impacting chromatin immunoprecipitation (ChIP) assay results.

Conclusions:

  • The developed methods effectively mitigate hitchhiker antigen contamination in antibody production.
  • Addressing hitchhiker antigens is crucial for ensuring antibody product quality, yield, and therapeutic efficacy.
  • These findings have significant implications for antibody-based diagnostics and therapeutics, especially anti-histone antibodies used in ChIP assays.

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