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Antibody-drug conjugates in breast cancer: redefining targeted therapy
Chenxu Guo, Leif W. Ellisen
Chenxu Guo, Leif W. Ellisen
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Antibody-drug conjugates in breast cancer: redefining targeted therapy

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Abstract

Antibody-drug conjugates (ADCs) have transformed the treatment landscape of breast cancer and redefined the conceptual distinction between targeted therapy and conventional chemotherapy. Originally conceived as “magic bullets” that selectively deliver cytotoxic warheads to antigen-expressing tumor cells, clinical and mechanistic evidence indicates that ADC activity depends on a broader interplay of target-dependent and target-independent mechanisms, including extracellular payload release, bystander killing, off-tumor uptake, and immune modulation. Here, we examine ADCs in breast cancer as a distinct therapeutic paradigm. We discuss how antigen biology, linker chemistry, payload features, and drug-to-antibody ratio collectively determine efficacy, toxicity, and therapeutic index. We then compare currently approved and emerging HER2- and TROP2-directed ADCs, highlighting how differences in linker stability, payload pharmacology, and bystander capacity can affect clinical outcomes in ADCs sharing the same target. We further discuss the biological basis and translational challenges of de novo and acquired resistance related to targets, payloads, and tumor microenvironmental constraints, as well as the implications of these mechanisms for biomarker development, sequencing rationales, and combination strategies with immune checkpoint inhibitors and DNA repair–targeting therapies. Finally, we outline future directions of ADC development, including expansion of the target space, novel payload modalities, and next-generation antibody and conjugation engineering.

Authors

Chenxu Guo, Leif W. Ellisen

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Figure 3

Tumor microenvironmental regulation of ADC activity and resistance.

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Tumor microenvironmental regulation of ADC activity and resistance.
The ...
The tumor microenvironment (TME) critically influences ADC distribution, payload activity, and therapeutic outcome. Physical barriers, including stromal architecture and extracellular matrix composition, restrict antibody penetration, while tight junction–mediated immune exclusion (e.g., TROP2 and claudin-7 expression) may further impede lymphocyte infiltration. Disordered tumor vasculature impairs ADC perfusion and distribution compared with normal vasculature. Extracellular payload release, driven by linker instability or extracellular cleavage, can enhance bystander killing of neighboring antigen-negative tumor cells, particularly for membrane-permeable payloads. The immune context contributes through Fc-dependent effector functions, including antibody-dependent cellular cytotoxicity (ADCC) mediated by NK cells and antibody-dependent cellular phagocytosis (ADCP) mediated by macrophages. In addition, ADC-induced immunogenic cell death promotes dendritic cell activation and CD8+ T cell–mediated antitumor immunity. These interconnected TME features collectively shape ADC sensitivity and resistance and provide a rationale for combination strategies targeting stromal and immune components.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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