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January 23, 2026Cancer Research0 citations

Abstract B042: Enhancing ferroptosis in supraphysiologic androgen–treated prostate cancer through GPX4 inhibition

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RKRajendra KumarSJSheila JonnatanSKShivani Kumar

Key Points

  • This research aims to explore how GPX4 inhibition can enhance ferroptosis in androgen-treated prostate cancer cells, potentially improving therapeutic outcomes.
  • Treated AR-positive CRPC cell lines with supraphysiological androgen (SPA) to assess ferroptosis sensitivity.
  • Performed transcriptomic profiling, lipid peroxidation assays, and cellular ultrastructural analyses.
  • Inhibited GPX4 with RSL3 to induce ferroptosis and assessed synergy with SPA through various assays.
  • SPA treatment decreased levels of key proteins that protect against ferroptosis, such as GPX4 and xCt.
  • Increased levels of iron and indicators of oxidative stress were observed, consistent with ferroptosis activation.
  • Combining SPA with RSL3 resulted in higher mitochondrial ROS levels and greater suppression of cell viability.

Abstract

Abstract Background: While androgen-signaling–directed strategies and other chemotherapies extend survival, at large, outcomes in metastatic castration-resistant PCa (mCRPC) remain poor. Treatment with Supraphysiological Androgen (SPA), which is clinically known as Bipolar Androgen Therapy (BAT), has been shown to inhibit the growth of certain prostate cancer types while also inducing oxidative stress. Ferroptosis, a regulated and iron-dependent form of cell death, has emerged as a promising vulnerability in androgen receptor-positive prostate cancer, especially in the context of the metabolic changes induced by SPA treatment. Methods: AR-positive CRPC cell lines (LNCaP, VCaP, LAPC4, 22Rv1) were treated with SPA to assess changes in ferroptosis sensitivity. Transcriptomic profiling, lipid peroxidation assays, and cellular ultrastructural analyses were used to evaluate ferroptosis hallmarks. Pharmacologic inhibition of GPX4 using RSL3 was employed to induce ferroptosis, and synergy with SPA was quantified through cell viability, ROS accumulation, and other related assays. Results: SPA treatment downregulated key ferroptosis defense proteins, including GPX4 and xCt, increased labile iron pools, and promoted mitochondrial ROS, lipid peroxidation, and mitochondrial changes consistent with ferroptosis. These changes sensitized CRPC cells to ferroptotic death. Combined treatment with SPA and RSL3 produced synergistic suppression of cell viability, elevated mitochondrial ROS, and growth suppression. Conclusion: SPA primes AR-positive prostate cancer cells for ferroptosis by disrupting redox homeostasis and suppressing protective antioxidant pathways. GPX4 inhibition synergizes with SPA to induce ferroptotic cell death, offering a mechanistically focused strategy to enhance therapeutic efficacy in CRPC. This combination warrants further investigation as a potential approach to overcome treatment resistance. Funding Acknowledgments: The research was supported by the PCF Young Investigator Award 21YOUN22, as well as DoD grants W81XWH2210118 and HT94252310029, which supported RK. Citation Format: Rajendra Kumar, Sheila Jonnatan, Shivani Kumar, Nihar Mehta, David E. Sanin, Laura A. Sena, Samuel R. Denmeade, Sushant K. Kachhap. Enhancing ferroptosis in supraphysiologic androgen–treated prostate cancer through GPX4 inhibition abstract. In: Proceedings of the AACR Special Conference in Cancer Research: Innovations in Prostate Cancer Research and Treatment; 2026 Jan 20-22; Philadelphia PA. Philadelphia (PA): AACR; Cancer Res 2026;86 (2Suppl): Abstract nr B042.

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Cite This Study

Kumar et al. (2026) studied this question.

synapsesocial.com/papers/69730f59c8125b09b0d1f1e7https://doi.org/10.1158/1538-7445.prostateca26-b042
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Also Consider

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

  1. 1Abstract 5934: Ferroptosis induction therapy for castration resistant prostate cancer2024
  2. 2Integrated regulation of ferroptosis in prostate cancer covering mechanisms, resistance, and translational opportunities2026 · 5 citations
  3. 3Abstract 6484: Divergent roles of SPOP and CHD1 in ACSL4 regulation reveal context-dependent vulnerabilities for targeting ferroptosis in prostate cancer2026
  4. 4Abstract A033: HMGA2 as a ferroptosis regulator: Implications for targeted therapy in prostate cancer2025
  5. 5Genetically Engineered Membrane‐Coated Nanoparticles for Enhanced Prostate‐Specific Membrane Antigen Targeting and Ferroptosis Treatment of Castration‐Resistant Prostate Cancer2024 · 23 citations