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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.
Abstract:
DNA topoisomerase I (TOP1) inhibitor-based antibody-drug conjugates (ADCs) incorporating photosensitive camptothecin (CPT) analogs as payloads have emerged as a promising therapeutic strategy in oncology. However, their clinical potential is challenged by photoinduced instability during manufacturing, storage, and handling, which are typically conducted under ambient light conditions, using white light with wavelengths greater than 400 nm and minimal ultraviolet (UV) exposure. In this study, we systematically investigated, for the first time, the impact of ambient light exposure on TOP1 inhibitor-conjugated ADCs (TOP1-ADCs), and we revealed critical photodegradation mechanisms that compromise their physicochemical properties and therapeutic efficacy. Upon ambient light exposure, TOP1-ADCs underwent significant chemical, physical, and biofunctional changes, including visible color changes, aggregation, oxidation, drug loss, payload degradation, destabilization in CH2 domain, and reduced binding affinity to the neonatal Fc receptor (FcRn). Mechanistic studies revealed two distinct pathways driving this photodegradation: a reactive oxygen species (ROS) generation-mediated pathway and a direct payload self-photolysis-mediated pathway. In oxygen-rich environments, the ROS-generation-mediated pathway predominates, where the excited-state payload primarily transfers energy to molecule oxygen to induce ROS formation, leading to oxidation and subsequent aggregation and drug loss. Under oxygen-depleted conditions, direct payload photolysis becomes the primary degradation mechanism, resulting in payload degradation and more severe particular nonreducible aggregation formation. These findings highlighted the necessity of implementing stringent light-protective measures throughout the production, storage, and handling of TOP1-ADCs to preserve their stability, efficacy, and safety. The study provided critical insights into the photosensitivity of TOP1 inhibitor-based ADCs, offering a foundation for optimizing their development and clinical applications.
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.
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