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Biology subjects

Longo, V.

Publications and source records attributed to Longo, V..

3 recordsLinked to original sources

In vitro efficacy of Fasting Mimicking Conditions combined with targeting of starvation escape pathways against prostate cancer cells

Prostate cancer (PCa) remains a leading cause of cancer-related death among men, particularly due to the development of treatment-resistant disease such as castration-resistant prostate cancer (CRPC)1. Emerging evidence suggests that metabolic interventions like the fasting-mimicking diet (FMD), which promotes differential fasting responses in normal and cancer cells, can enhance the efficacy of conventional therapies and overcome resistance mechanisms. We investigated the effects of FMD in vitro on androgen-sensitive and androgen-insensitive PCa cell lines, and evaluated its potential to synergize with hormone therapies and pathway-specific inhibitors. Fasting mimicking medium (FMM), a medium which substitutes the FMD in vitro, significantly reduced cell viability across multiple PCa models, and sensitized them to agents targeting PI3K-AKT-mTOR signaling and cholesterol biosynthesis, including rapamycin, simvastatin, pictilisib, and alpelisib. RNA sequencing of C4-2 cells under FMM conditions revealed upregulation of cholesterol biosynthesis genes and key escape pathways, identifying novel vulnerabilities that could be exploited therapeutically. Notably, combined inhibition of androgen signaling, PI3K pathways, and cholesterol synthesis in FMM conditions resulted in potent cytotoxicity, while also requiring lower doses of each agent. Our findings underscore the therapeutic potential of integrating FMD cycles with molecular-targeted therapies in PCa. Future studies should explore personalized, biomarker-driven approaches leveraging transcriptomic data to predict and exploit FMD-induced escape pathways.

cancer biology↗

MEK-dependent bioenergetic demand drives terminal CD8+ T cell exhaustion

Loss of mitochondrial function contributes to CD8+ T cell dysfunction during persistent antigen encounter. How chronic antigen leads to this metabolic dysfunction remains unclear. Here, we show that TCR-dependent mitochondrial NADH accumulation drives production of ROS, ultimately leading to mitochondrial dysfunction. Among TCR-dependent proximal signaling components, MEK inhibition uniquely reduced nutrient uptake and mitochondrial NADH accumulation while increasing proliferation. As a result, MEK inhibition during chronic TCR stimulation reduced terminal T cell exhaustion. Mechanistically, we found that chronic MEK activation in T cells drove ATP demand by increasing global protein synthesis rates in vitro and in vivo. MEK inhibition reversed chronic TCR stimulation-driven increases in RNA polymerase II CTD phosphorylation, reducing transcription rates at effector- and terminal-exhaustion associated genes while maintaining transcription of memory-associated genes. These findings establish MEK-dependent metabolic demand as a driver of T cell exhaustion and elucidate the role of MEK inhibition in enhancing immunotherapy efficacy.

immunology↗

Microalgae as a novel biofactory for biocompatible and bioactive extracellular vesicles

Nanoalgosomes are extracellular vesicles (EVs) released by microalgal cells that can mediate intercellular and cross-kingdom communication. In the present study, starting from the optimized nanoalgosome manufacturing from cultures of marine microalgae, we evaluated their innate biological properties in preclinical models. Our investigation of nanoalgosome biocompatibility included toxicological analyses, starting from studies on the invertebrate model organism Caenorhabditis elegans, proceeding to hematological and immunological evaluations in mice and immune-compatibility ex vivo. Nanoalgosome biodistribution was evaluated in mice with accurate space-time resolution, and in C. elegans at cellular and subcellular levels. Further examination highlighted the antioxidant and anti-inflammatory bioactivities of nanoalgosomes. This holistic approach to nanoalgosome functional characterization showcases that nanoalgosomes are innate effectors and potential drug delivery system for novel cosmetic formulations and EV-based therapies.

cell biology↗