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June 5, 2026Molecular Cancer Research0 citationsOpen Access

Ceramide-induced endoplasmic reticulum stress reveals a targetable vulnerability in endocrine therapy-resistant breast cancer

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PPPurab PalSCShweta ChitkaraGSGodwin K. Sarpey

Key Points

  • This research aims to explore the role of ceramide-induced endoplasmic reticulum stress in endocrine therapy-resistant breast cancer cells.
  • Characterization of ceramide-induced effects on cell death and transcriptional changes in ET-resistant breast cancer models.
  • Utilization of a photoactivatable ceramide probe to identify ceramide-interacting proteins, specifically TRAM1.
  • Assessment of the relation between TRAM1 expression and clinical outcomes in luminal breast cancer patients.
  • Ceramide treatment significantly induces PERK-dependent endoplasmic reticulum stress in ET-resistant cells, leading to increased cell death.
  • Knockdown of TRAM1 mimics the effects of ceramide, supporting its role in mediating lethal responses in ET-resistant models.
  • Higher TRAM1 levels correlate with worse relapse-free survival and a more aggressive phenotype in patients.

Abstract

Despite the success of endocrine therapy (ET) in treating hormone receptor-positive breast cancer, a significant proportion of patients relapse during or after treatment, making ET resistance a major clinical challenge. Previously we have shown that ET-resistant breast cancer cells exhibit reduced ceramide levels and an increased sensitivity to ceramide-induced cell death. Here, we demonstrate that ceramides induce a distinct transcriptional reprogramming in ET-resistant cells, characterized by upregulation of endoplasmic reticulum stress (EnRS) pathways. Ceramide-induced EnRS is PERK-dependent and functionally linked to cell death in multiple models of ET resistance. Using a photoactivatable ceramide probe, we identify TRAM1 as a functionally important ceramide-interacting protein (CIP) in ET-resistant cells that correlates with worse relapse-free survival and a more aggressive breast cancer phenotype in luminal breast cancer patients. Additionally, knockdown of TRAM1 phenocopies ceramide action in ET resistance, thereby suggesting its role in mediating ceramide-induced lethal actions in ET resistance. Together, our findings reveal that ET-resistant breast cancer cells are highly sensitive to PERK-mediated EnRS relative to ET-sensitive cells. Ceramides, likely via interactions with CIPs such as TRAM1, lead to PERK activation and consequential cell death in the ET-resistant breast cancer models. This sensitivity to ceramide-induced EnRS and cell death is a vulnerability that could be taken advantage of to treat ET-resistant breast cancer. Implications: This study elucidates the functional relevance of ceramide depletion in endocrine therapy-resistant breast cancer cells.

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Cite This Study

Pal et al. (2026) studied this question.

synapsesocial.com/papers/6a22698b763171746d548249https://doi.org/10.1158/1541-7786.mcr-25-0964
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