Photostability of Topoisomerase I Inhibitor Conjugated IgG1 Antibody-Drug Conjugates: Characterization Study and

Ting Zhou1, Xinmei Dong1, Jiayi Yu1

  • 1BeOne Medicines (Shanghai) Research & Development Co., Ltd., Shanghai 200020, China.

Bioconjugate Chemistry
|November 22, 2025
PubMed

Insights

Antibody-drug conjugates (ADCs) using DNA topoisomerase I (TOP1) inhibitors are unstable under ambient light. Light exposure causes photodegradation via ROS or direct payload photolysis, impacting efficacy and safety.

Area of Science:

  • Oncology
  • Bioconjugation Chemistry
  • Pharmaceutical Sciences

Background:

  • DNA topoisomerase I (TOP1) inhibitor-based antibody-drug conjugates (ADCs) are promising cancer therapeutics.
  • Photosensitive camptothecin (CPT) analogs used as payloads are susceptible to photodegradation under ambient light conditions.
  • This instability poses challenges for manufacturing, storage, and clinical application.

Purpose of the Study:

  • To systematically investigate the impact of ambient light exposure on TOP1 inhibitor-conjugated ADCs (TOP1-ADCs).
  • To elucidate the critical photodegradation mechanisms affecting TOP1-ADCs.
  • To highlight the necessity of light-protective measures for TOP1-ADC development.

Main Methods:

  • Exposure of TOP1-ADCs to ambient light conditions.
  • Characterization of physicochemical and biofunctional changes (color, aggregation, drug loss, binding affinity).
  • Mechanistic studies to differentiate between ROS-mediated and direct photolysis pathways.

Main Results:

  • Ambient light exposure caused significant changes in TOP1-ADCs, including aggregation, oxidation, drug loss, and reduced FcRn binding.
  • Two photodegradation pathways were identified: ROS generation and direct payload photolysis.
  • Oxygen-rich conditions favored ROS generation, while oxygen-depleted conditions led to direct payload photolysis and aggregation.

Conclusions:

  • TOP1-ADCs exhibit critical photosensitivity, necessitating stringent light protection during all handling stages.
  • Understanding photodegradation mechanisms is crucial for optimizing the stability, efficacy, and safety of TOP1-ADCs.
  • This research provides a foundation for improving the development and clinical use of TOP1 inhibitor-based ADCs.