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Vincenzo Quagliariello1, Massimiliano Berretta2, Matteo Barbato1
1Division of Cardiology, Istituto Nazionale Tumori-IRCCS-Fondazione G. Pascale, 80131 Napoli, Italy.
Abstract:
Activating PIK3CA mutations occur in approximately 40% of hormone receptor-positive (HR+)/HER2-negative breast cancers and represent a major driver of endocrine resistance. The PI3Kα-selective inhibitor alpelisib, in combination with fulvestrant, significantly improves progression-free survival in patients with PIK3CA-mutant disease, as demonstrated in the SOLAR-1 trial. However, this therapeutic strategy is frequently complicated by treatment-induced hyperglycemia, a metabolic disturbance that promotes oxidative stress, mitochondrial dysfunction, and inflammatory signaling, thereby increasing cardiovascular vulnerability. Sodium-glucose cotransporter-2 (SGLT2) inhibitors have emerged as cardiometabolic modulators with benefits extending beyond glucose lowering. In this study, we used a human cardiomyocyte in vitro model designed to recapitulate the hyperglycemic metabolic milieu observed in breast cancer patients receiving PI3Kα-targeted therapy, to investigate whether the SGLT2 inhibitor dapagliflozin directly protects cardiomyocytes from alpelisib- and fulvestrant-induced injury. Human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) were cultured under hyperglycemic conditions (25 mM glucose) to mimic the metabolic environment associated with PI3Kα inhibitor-induced dysglycemia. Cells were exposed to alpelisib (100 nM) and fulvestrant (100 nM), alone or in combination, in the absence or presence of dapagliflozin (1 μM). Cardiomyocyte viability was assessed using the MTS assay, mitochondrial function by TMRM-based mitochondrial membrane potential (ΔΨm) measurements, and apoptosis by caspase-3 quantification. Cardiomyocyte injury was evaluated by release of cardiac troponin I and heart-type fatty acid binding protein (H-FABP). Lipid peroxidation markers (MDA and 4-HNE) were measured to assess oxidative membrane damage. Intracellular inflammasome-related signaling (NLRP3 and MyD88) and secreted inflammatory mediators (IL-1β, IL-18, IL-6, TNF-α, and CCL2) were quantified by ELISA. Exposure to alpelisib, particularly in combination with fulvestrant, significantly reduced cardiomyocyte viability, induced mitochondrial depolarization, and increased caspase-3-mediated apoptotic signaling. These alterations were accompanied by elevated lipid peroxidation (MDA and 4-HNE) and increased release of cardiac injury biomarkers (troponin I and H-FABP). Alpelisib-based treatments also activated inflammasome-related signaling, as indicated by increased intracellular NLRP3 and MyD88 levels and enhanced secretion of pro-inflammatory mediators (IL-1β, IL-18, IL-6, TNF-α, and CCL2). Co-treatment with dapagliflozin significantly attenuated these alterations, preserving mitochondrial membrane potential, reducing apoptotic signaling, limiting oxidative membrane damage, and suppressing inflammatory cytokine release. This study provides evidence that alpelisib-based therapy under hyperglycemic conditions is associated with oxidative, mitochondrial, and inflammatory stress responses in human cardiomyocytes, recapitulating key features of cardiometabolic stress relevant to PI3Kα-targeted therapy. Importantly, dapagliflozin markedly attenuated these alterations, supporting a potential cardioprotective role that may extend beyond glycemic control. These findings provide a mechanistic rationale for further investigation of SGLT2 inhibition as a cardiometabolic protective strategy in patients receiving PI3Kα inhibitor-based cancer therapy.
Insights
Sodium-glucose cotransporter-2 (SGLT2) inhibitor dapagliflozin may protect heart cells from damage caused by PI3Kα inhibitor alpelisib and fulvestrant therapy in breast cancer patients. This study shows dapagliflozin reduces oxidative stress and inflammation, supporting its potential cardioprotective role.
Area of Science:
- Cardiology
- Oncology
- Endocrinology
Background:
- Activating PIK3CA mutations drive endocrine resistance in HR+/HER2- breast cancer.
- Alpelisib plus fulvestrant improves outcomes but causes hyperglycemia, increasing cardiovascular risk.
- Hyperglycemia induces oxidative stress, mitochondrial dysfunction, and inflammation in cardiomyocytes.
Purpose of the Study:
- Investigate if SGLT2 inhibitor dapagliflozin protects human cardiomyocytes from alpelisib/fulvestrant-induced injury in a hyperglycemic model.
- Evaluate dapagliflozin's effects on cardiomyocyte viability, mitochondrial function, apoptosis, oxidative stress, and inflammation.
Main Methods:
- Used human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) cultured in high glucose (25 mM).
- Exposed hiPSC-CMs to alpelisib (100 nM) and fulvestrant (100 nM) +/- dapagliflozin (1 μM).
- Assessed viability (MTS), mitochondrial membrane potential (TMRM), apoptosis (caspase-3), injury markers (troponin I, H-FABP), oxidative stress (MDA, 4-HNE), and inflammation (ELISA).
Main Results:
- Alpelisib +/- fulvestrant reduced viability, depolarized mitochondria, increased apoptosis, and elevated oxidative/inflammatory markers.
- Cardiac injury biomarkers were significantly increased following alpelisib-based treatment.
- Dapagliflozin co-treatment attenuated these detrimental effects, preserving mitochondrial function and reducing stress responses.
Conclusions:
- Alpelisib-based therapy induces cardiomyocyte oxidative, mitochondrial, and inflammatory stress under hyperglycemic conditions.
- Dapagliflozin demonstrates significant cardioprotective effects, mitigating alpelisib/fulvestrant-induced injury.
- SGLT2 inhibition warrants further investigation for cardioprotection in patients receiving PI3Kα inhibitor therapy.
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