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CerS2 Is a Druggable Target in Triple-Negative Breast Cancer
Hissah Alatawi1, Haritha H Nair1, Lingbao Ai2
1Department of Physiology and Aging, College of Medicine, University of Florida, Gainesville, Florida.
Abstract:
Triple-negative breast cancer (TNBC) poses a significant therapeutic challenge because of the lack of defined molecular targets. Although ceramide synthase 2 (CerS2) plays a complex role in oncology, enhancing its enzymatic activity to produce proapoptotic, very long-chain ceramides (VLCC) is a potential anticancer strategy. In this study, we identify and characterize DH20931, a novel biisoquinoline derivative, as a newly identified small-molecule activator of CerS2. We provide genetic and biochemical evidence that CerS2 is the direct target of DH20931, which shows an effective, receptor-independent cytotoxicity across diverse breast cancer cell lines while sparing normal cells. In vivo, DH20931 demonstrates consistent tumor growth inhibition in both orthotopic xenograft and clinically relevant patient-derived xenograft models of TNBC, supported by a favorable safety and pharmacokinetic profile. Mechanistically, DH20931 triggers an effective dual mechanism of apoptosis. First, the accumulation of VLCCs induces lipotoxic endoplasmic reticulum (ER) stress, activating the proapoptotic ATF4-CHOP pathway. Second, we uncovered a previously unknown physical interaction between CerS2 and the ER calcium channel IP3R1. DH20931 promotes this interaction, enhancing ER-mitochondria proximity and facilitating a marked flux of Ca2+ into the mitochondria, which serves as an effective, secondary apoptotic signal. These findings validate CerS2 as a bona fide druggable target and present DH20931 as a promising clinical candidate. This unique synergistic mechanism, coupling lipotoxicity with calcium dysregulation, offers a convincing new strategy for treating aggressive and therapy-resistant breast cancers.
Insights
A novel compound, DH20931, activates ceramide synthase 2 (CerS2) to combat triple-negative breast cancer (TNBC). This activator induces dual apoptotic pathways, showing promise for therapy-resistant cancers.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Triple-negative breast cancer (TNBC) lacks targeted therapies.
- Ceramide synthase 2 (CerS2) activity is a potential anti-cancer strategy via very long-chain ceramides (VLCCs).
Purpose of the Study:
- Identify and characterize novel small-molecule activators of CerS2.
- Investigate the therapeutic potential of DH20931 in breast cancer models.
Main Methods:
- Genetic and biochemical validation of DH20931 as a CerS2 activator.
- In vitro cytotoxicity assays across breast cancer cell lines.
- In vivo studies using TNBC xenograft and patient-derived xenograft (PDX) models.
- Mechanistic studies on apoptosis induction pathways.
Main Results:
- DH20931 selectively activates CerS2, inducing VLCC accumulation and lipotoxic endoplasmic reticulum (ER) stress.
- DH20931 triggers apoptosis via the ATF4-CHOP pathway.
- DH20931 enhances CerS2-IP3R1 interaction, increasing mitochondrial calcium flux and secondary apoptosis.
- DH20931 demonstrates tumor growth inhibition in vivo with a favorable safety profile.
Conclusions:
- CerS2 is a druggable target for breast cancer therapy.
- DH20931 represents a promising clinical candidate for TNBC.
- The synergistic mechanism of lipotoxicity and calcium dysregulation offers a novel strategy for aggressive breast cancers.
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