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Biology subjects

Mauro, A. G.

Publications and source records attributed to Mauro, A. G..

3 recordsLinked to original sources

Tumor-selective Mcl1 degradation by AUTAC uncouples antitumor efficacy from cardiotoxicity

Mcl1 is a major driver of therapeutic resistance across hematologic malignancies, but direct Mcl1 inhibition has been limited by on-target cardiotoxicity. Here, building on our development of an Mcl1-targeting autophagy-targeting chimera (AUTAC), we show that AUTAC-mediated degradation creates a tumor-selective therapeutic window that spares the heart. AUTAC induced robust cytotoxicity and Mcl1 degradation in multiple myeloma models, while showing minimal toxicity in cardiac cell lines, primary cardiomyocytes, and murine heart tissue. In vivo, AUTAC reduced tumor Mcl1 without measurably affecting cardiac Mcl1. Mechanistically, this selectivity was associated with lower expression of the p62/SQSTM1, TRAF6, and UBC13 machinery required for AUTAC activity in cardiac cells, together with lower intracellular AUTAC accumulation relative to tumor cells. AUTAC also enhanced the antitumor activity of carfilzomib and venetoclax, including in resistant models, without worsening cardiotoxicity or promoting cardiac Mcl1 loss. Compared with classical Mcl1 inhibitors, AUTAC caused markedly less cardiomyocyte death, mitochondrial depolarization, and apoptotic signaling. These findings identify AUTAC-mediated Mcl1 degradation as a cardiac-sparing strategy to target an otherwise clinically constrained vulnerability and support tumor-selective lysosomal degradation as a path to safer Mcl1-directed therapy.

pharmacology and toxicology↗

INTERLEUKIN-18 AS A THERAPEUTIC TARGET FOR WESTERN DIET-INDUCED CARDIOMYOPATHY

BackgroundA diet high in saturated fats and sugars (Western diet-WD) promotes obesity and left ventricular dysfunction in the mouse, which is, at least in part, mediated by pro-inflammatory cytokine Interleukin-18 (IL-18). Therefore, we hypothesized that a blocking recombinant-murine IL-18 binding protein (IL-18BP) would rescue cardiac function in WD-fed mice. MethodsIn this 9-week study, 10-week-old adult C57BL/6J mice were assigned to standard diet (SD) or a WD. After 7 weeks of WD feeding, the mice were assigned to two groups: WD+IL-18BP (0.5 mg/kg daily, intraperitoneal injections) or WD control for the last 2 weeks of the study. Food intake, body weight, and glucose tolerance were assessed. Cardiac systolic and diastolic function were measured by Doppler echocardiography at baseline, 5 weeks, and 9 weeks. IL-18 plasma levels were quantified with ELISA. ResultsWD induced a significant increase in body weight, significantly worsened glucose tolerance, and significantly increased (worsening) in diastolic function (isovolumetric relaxation time -IRT- and myocardial performance index -MPI-) compared to SD. Rescue with IL-18BP in WD-fed mice resulted in a significant improvement in IRT and MPI, without significant changes in food intake, weight gain, or glucose tolerance. ConclusionsIL-18BP rescued cardiac function in mice with WD-induced diastolic dysfunction, independent of weight gain and glucose tolerance. These results confirm the central and independent role of IL-18 in cardiac dysfunction associated with diet-induced obesity.

physiology↗

UNCONVENTIONAL INTERLEUKIN-1 SIGNALING IN CARDIAC DYSFUNCTION

Interleukin-1{beta} (IL-1{beta}) is an apical pro-inflammatory cytokine that has also been shown to negatively modulate cardiac contractility. Whether IL-1{beta} effects on systemic inflammation and cardiac function are intertwined and associated with each other, or whether they are independent of each other, is unknown. An unconventional signaling of the IL-1 receptor type I through the phosphoinositide-3 kinase{gamma} (PI3K{gamma}), at least in part independent of the proinflammatory signaling, has been characterized in inflammation and cancer. We hypothesized that IL-1{beta} would increase the expression of PI3K p110{gamma} in cardiomyocytes, which in turn results in selective induction of p87 co-signaling and cardiac dysfunction through a scaffolding function on phosphodiesterase 3B (PDE3B). Using genetically modified mice, we show that a kinase-independent PI3K p110{gamma} mechanism mediates IL-1-induced cardiac dysfunction. This may have compelling implications for the understanding and treatment of heart failure with reduced ejection fraction.

immunology↗