School of Health & Sport Sciences, Hope Park, Liverpool Hope University, Liverpool, L16 9JD, UK.
Liverpool Shared Research Facilities, GeneMill, University of Liverpool, Liverpool, L69 7ZB, UK.
Biosystems. 2024 Jan;235:105088. doi: 10.1016/j.biosystems.2023.105088. Epub 2023 Nov 23.
Folate (vitamin B9) plays a central role in one-carbon metabolism in prokaryotes and eukaryotes. This pathway mediates the transfer of one-carbon units, playing a crucial role in nucleotide synthesis, methylation, and amino acid homeostasis. The folinic acid futile cycle adds a layer of intrigue to this pathway, due to its associations with metabolism, cell growth, and dormancy. It also introduces additional complexity to folate metabolism. A logical way to deal with such complexity is to examine it by using mathematical modelling. This work describes the construction and analysis of a model of folate metabolism, which includes the folinic acid futile cycle. This model was tested under three in silico growth conditions. Model simulations revealed: 1) the folate cycle behaved as a stable biochemical system in three growth states (slow, standard, and rapid); 2) the initial concentration of serine had the greatest impact on metabolite concentrations; 3) 5-formyltetrahydrofolate cyclo-ligase (5-FCL) activity had a significant impact on the levels of the 7 products that carry the one-carbon donated from folates, and the redox couple NADP/NADPH; this was particularly evident in the rapid growth state; 4) 5-FCL may be vital to the survival of the cells by maintaining low levels of homocysteine, as high levels can induce toxicity; and 5) the antifolate therapeutic trimethoprim had a greater impact on folate metabolism with higher nutrient availability. These results highlight the important role of 5-FCL in intracellular folate homeostasis and mass generation under different metabolic scenarios.
叶酸(维生素 B9)在原核生物和真核生物的一碳代谢中起着核心作用。该途径介导一碳单位的转移,在核苷酸合成、甲基化和氨基酸动态平衡中起着至关重要的作用。由于其与代谢、细胞生长和休眠的关联,叶酸补救循环为该途径增添了一层复杂性。处理这种复杂性的一种合理方法是使用数学建模来检查它。这项工作描述了叶酸代谢模型的构建和分析,其中包括叶酸补救循环。该模型在三种计算机模拟的生长条件下进行了测试。模型模拟结果表明:1)在三种生长状态(缓慢、标准和快速)下,叶酸循环表现为一个稳定的生化系统;2)丝氨酸的初始浓度对代谢物浓度的影响最大;3)5-甲酰四氢叶酸环化酶(5-FCL)的活性对 7 种携带叶酸提供的一碳的产物以及 NADP/NADPH 氧化还原对的水平有显著影响,在快速生长状态下尤为明显;4)5-FCL 可能通过维持低水平的同型半胱氨酸对细胞的存活至关重要,因为高水平的同型半胱氨酸会诱导毒性;5)抗叶酸治疗药物甲氧苄啶在营养物质供应较高的情况下,对叶酸代谢的影响更大。这些结果强调了 5-FCL 在不同代谢情况下维持细胞内叶酸动态平衡和大量生成中的重要作用。