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July 19, 2026Clinical Cancer Research1 citations

Targetable S100-RAGE signaling mediates intrinsic trastuzumab deruxtecan resistance in metastatic breast cancer

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WDWenjuan DongSWShiruo WangBCBill Chan

Key Points

  • This research aims to identify the molecular mechanisms behind intrinsic resistance to trastuzumab deruxtecan in metastatic breast cancer.
  • Conducted spatial transcriptomic and proteomic profiling on metastatic lesions from 109 patients treated with T-DXd.
  • Analyzed tumor and immune compartments to correlate signaling states with treatment response.
  • Evaluated RAGE inhibition on T-DXd efficacy in cell lines and in vivo metastatic models.
  • S100 family alarmins were upregulated in resistant tumor regions, linked to active RAGE signaling with ERK, AKT, and STAT3 phosphorylation.
  • RAGE inhibition enhanced T-DXd-induced apoptosis and restored sensitivity in vitro.
  • In vivo, RAGE blocker significantly decreased metastatic burden in lung and brain models.

Abstract

PURPOSE: Trastuzumab deruxtecan (T-DXd) has improved outcomes in metastatic breast cancer; however, a substantial subset of patients experience early lack of clinical benefit that is not reliably predicted by routine clinicopathologic variables. In an institutional cohort of 109 T-DXd-treated metastatic lesions, HER2 expression level, ER/PR status, Ki-67 index, and metastatic site were not significantly associated with response, highlighting the need to define mechanistic determinants of intrinsic resistance. EXPERIMENTAL DESIGN: We performed spatial transcriptomic and proteomic profiling using NanoString GeoMx Digital Spatial Profiling on pretreatment bone, brain, and soft-tissue metastases from patients with clinical benefit (response) versus early progression (resistance) on T-DXd. Tumor (PanCK⁺) and immune (CD45⁺) compartments were analyzed to link tumor architecture and region-resolved signaling states with therapeutic response. Candidate resistance pathways were functionally evaluated in HER2-positive breast cancer cell lines and in vivo metastasis models treated with T-DXd alone or combined with the RAGE inhibitor TTP488. RESULTS: Spatial proteogenomics revealed recurrent upregulation of S100 family alarmins in resistant tumor regions, associated with activation of a RAGE-centered pro-survival signaling program characterized by ERK, AKT, and STAT3 phosphorylation. Pharmacologic RAGE inhibition enhanced T-DXd-induced apoptosis, restored drug sensitivity in vitro, and significantly reduced metastatic burden in lung and brain metastasis models. CONCLUSIONS: Spatial proteogenomics identifies a conserved S100-RAGE-driven survival state coupled to immune-excluded tumor architecture as a mechanism of intrinsic T-DXd resistance across metastatic niches. Targeting this pathway with an orally available RAGE antagonist restores T-DXd responsiveness and offers an immediately translatable strategy to overcome resistance in metastatic breast cancer.

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Cite This Study

Dong et al. (2026) studied this question.

synapsesocial.com/papers/6a5c68de118b92953e3ed646https://doi.org/10.1158/1078-0432.ccr-25-4894
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Abstract PS3-04-16: Decoding resistance to trastuzumab deruxtecan in metastatic breast cancer: S100P signaling and immune-niche barriers2026
  2. 2Use of spatial multiomics to identify endosomal trafficking and S100A8/A9, and fibronectin-driven immune remodeling programs with T-DXd resistance in breast cancer brain metastases.2026
  3. 3Abstract 1222: Spatial transcriptomics of trastuzumab deruxtecan-treated metastatic breast cancer identifies candidate response and resistance factors.2026
  4. 4Abstract 1211: Spatial transcriptomics uncovers pharmacokinetic barriers and tumor-intrinsic determinants of resistance to trastuzumab deruxtecan in breast cancer.2026
  5. 5Biology-informed predictive modeling and resistance monitoring in trastuzumab deruxtecan–treated metastatic breast cancer.2026