Institute of Biology, College of Natural Sciences, University of Rzeszow, Rzeszow, Poland.
Institute of Biology, College of Natural Sciences, University of Rzeszow, Rzeszow, Poland.
Arch Biochem Biophys. 2024 Jun;756:110021. doi: 10.1016/j.abb.2024.110021. Epub 2024 Apr 30.
The physiological efficiency of cells largely depends on the possibility of metabolic adaptations to changing conditions, especially on the availability of nutrients. Central carbon metabolism has an essential role in cellular function. In most cells is based on glucose, which is the primary energy source, provides the carbon skeleton for the biosynthesis of important cell macromolecules, and acts as a signaling molecule. The metabolic flux between pathways of carbon metabolism such as glycolysis, pentose phosphate pathway, and mitochondrial oxidative phosphorylation is dynamically adjusted by specific cellular economics responding to extracellular conditions and intracellular demands. Using Saccharomyces cerevisiae yeast cells and potentially similar fermentable carbon sources i.e. glucose and fructose we analyzed the parameters concerning the metabolic status of the cells and connected with them alteration in cell reproductive potential. Those parameters were related to the specific metabolic network: the hexose uptake - glycolysis and activity of the cAMP/PKA pathway - pentose phosphate pathway and biosynthetic capacities - the oxidative respiration and energy generation. The results showed that yeast cells growing in a fructose medium slightly increased metabolism redirection toward respiratory activity, which decreased pentose phosphate pathway activity and cellular biosynthetic capabilities. These differences between the fermentative metabolism of glucose and fructose, lead to long-term effects, manifested by changes in the maximum reproductive potential of cells.
细胞的生理效率在很大程度上取决于代谢适应不断变化的条件的可能性,特别是营养物质的可用性。中央碳代谢在细胞功能中起着重要作用。在大多数细胞中,以葡萄糖为基础的代谢途径,葡萄糖是主要的能量来源,为重要细胞大分子的生物合成提供碳骨架,并作为信号分子发挥作用。碳代谢途径之间的代谢通量,如糖酵解、戊糖磷酸途径和线粒体氧化磷酸化,通过特定的细胞经济学来动态调整,以响应细胞外条件和细胞内需求。我们使用酿酒酵母细胞和潜在类似可发酵的碳源,即葡萄糖和果糖,分析了与细胞代谢状态相关的参数,并将其与细胞生殖潜力的变化联系起来。这些参数与特定的代谢网络有关:己糖摄取-糖酵解和 cAMP/PKA 途径的活性-戊糖磷酸途径和生物合成能力-氧化呼吸和能量产生。结果表明,在果糖培养基中生长的酵母细胞略微增加了向呼吸活性的代谢重定向,这降低了戊糖磷酸途径的活性和细胞的生物合成能力。葡萄糖和果糖的发酵代谢之间的这些差异导致了长期的影响,表现为细胞最大生殖潜力的变化。