Rapid Assessment of Target-Binding Fractions in Theranostic and Imaging Agents Using Size-Exclusion HPLC

Abstract

Insights

A new size-exclusion high-performance liquid chromatography (SE-HPLC) method rapidly assesses target-binding specificity for precision oncology agents. This faster quality control accelerates drug development and patient access to novel theranostics.

Area of Science:

  • Oncology
  • Analytical Chemistry
  • Biotechnology

Background:

  • Precision oncology relies on molecularly targeted therapeutics and imaging agents, a market projected to exceed $25 billion by 2030.
  • Quality control of theranostic agents is hindered by analytical bottlenecks, particularly target-binding specificity, impacting regulatory approval and clinical translation.
  • Current methods like ELISA and bead-based assays are time-consuming and resource-intensive, delaying development and patient access.

Purpose of the Study:

  • To develop and validate a rapid, efficient method for determining target-binding fractions of labeled biologics for quality control.
  • To overcome the limitations of existing assays in clinical manufacturing settings.

Main Methods:

  • Developed and validated a size-exclusion high-performance liquid chromatography (SE-HPLC) method.
  • Assessed method performance using fluorescently labeled antibodies (panitumumab-IRDye800CW, nivolumab-IRDye800CW) and radiolabeled biologics ([18F]GEH200521, [18F]NOTA-ABY-030).
  • Evaluated linearity, specificity, and concentration independence, achieving a resolution (Rs) of 3.2 for bound and unbound species.

Main Results:

  • The SE-HPLC method demonstrated excellent separation of bound and unbound species.
  • A strong linear relationship (R² = 0.999) was observed between antigen-to-antibody ratio and binding fraction.
  • The assay showed high specificity with no binding to non-target antigens, and a total assay time of under 35 minutes.

Conclusions:

  • SE-HPLC offers a rapid, specific, and cost-effective alternative for assessing binding fractions, reducing quality control timelines significantly.
  • The method's compatibility with both fluorescent and radiolabeled biologics streamlines development workflows.
  • This advancement facilitates faster clinical translation of theranostic agents and improves patient access to precision oncology treatments.

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