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Sanchez-Quezada, V.

Publications and source records attributed to Sanchez-Quezada, V..

2 recordsLinked to original sources

Nutrimental determinants of chronological aging and competitiveness in the snf1Δ Warburg model

Cancer, one of the worlds leading causes of death, is characterized by a complex metabolic reprogramming that features the Warburg effect as one of its hallmarks. The Warburg effect involves increased glucose and amino acid metabolism, which promotes tumor proliferation and progression. Although cancer has historically been attributed to genetic mutations, recent studies suggest a possible metabolic origin. However, a key characteristic of cancer cells is their greater adaptability than normal cells, as evidenced by their resistance to chemotherapy, which stems from their high mutability. This underscores the need to examine the relationship between metabolic reprogramming and cancer development from both metabolic and evolutionary perspectives. In this context, Saccharomyces cerevisiae snf1{Delta} strain has emerged as an ideal cellular model for studying the Warburg effect. This study aimed to determine whether deletion of the SNF1 gene in S. cerevisiae affects its chronological aging and competitiveness in a glucose and amino acid-dependent manner. Herein, we provide evidence that the snf1{Delta} strain changes the chronological aging depending on nutrimental condition, under low-nutrient levels shortens (0.1% glucose + 0.1x amino acids), and increases under high-nutrient levels (5% glucose + 3x amino acids). Competitiveness of the snf1{Delta} strain in co-cultivation with wild-type was also improved in 5% glucose + 3x amino acids, by approximately 2 Log10. These results indicate that snf1{Delta} strain aging and competitiveness are also sensitive to nutrimental status, as was observed in cancer cells.

biochemistry↗

Enhancing the biological activity of polyphenols based on understanding their chemistry

Polyphenols are compounds synthesized by plants as part of their chemical defense system to counteract biotic and abiotic stressors. These compounds share two key chemical characteristics: their aromatic groups make them insoluble in water, while hydroxy groups provide redox properties. These characteristics may explain how polyphenols interact with mitochondrial membranes (which are lipophilic) and participate in redox (electron scavenging) reactions of the electron transport chain, ultimately affecting ATP synthesis via oxidative phosphorylation. This interaction accounts for both the beneficial and adverse effects of polyphenols. However, no research has examined how hydroxyl groups or a lipophilic environment influence the biological activity of polyphenols. Therefore, this study aimed to explore the impact of hydroxy groups and a lipophilic environment on the biological activity of polyphenols. We tested four polyphenols (quercetin, naringenin, resveratrol, and gallic acid) with varying numbers of hydroxyl and other functional groups to determine how hydroxyl groups affect their biological activity (toxicity) in Saccharomyces cerevisiae. Additionally, we evaluated different fatty acids to understand how a lipophilic environment influences polyphenol biological activity. The results of this study support the two main ideas of our hypothesis: 1) a lipid solvent increases the toxicity of polyphenols, and 2) the molecule with the most hydroxyl groups is the most toxic (as seen with quercetin, which has five hydroxyl groups). Consequently, the increased toxicity of polyphenols in lipid solvents, along with their association with oxidizable groups, opens the door to the development of new technologies based on polyphenols.

biochemistry↗