Doctorado en Ciencias Biológicas y de la Salud, Universidad Autonoma Metropolitana, Mexico City, Mexico.
Centro de Ciencias Genómicas, Universidad Nacional Autonoma de México, Cuernavaca, Morelos, Mexico.
Physiol Plant. 2021 Mar;171(3):447-452. doi: 10.1111/ppl.13218. Epub 2020 Oct 26.
Folates are multifunctional metabolites in plants that are essential for cell division, nucleic acids and amino acid synthesis. During symbiotic nitrogen fixation in legumes, these cofactors are needed for de novo purine biosynthesis, meaning that changes in the folate pools could directly affect the flow of fixed nitrogen to the plant. Its role related to symbiotic nitrogen fixation has not been yet explored, but recent data suggest a relevant role during the first steps. Transcriptomic, metabolomic and proteomic analyses indicate that folates are accumulated in symbiotic plant tissue, as they are involved, not only in de novo purines biosynthesis, but in nitrogen translocation, endoreduplication and phytohormones biosynthesis. Understanding the possible implication of folate pools during the nitrogen fixation and assimilation, might aid for new engineering targets, in relation to the two transformylations or the production of glycine by serine hydroxymethyltransferase during the de novo purine biosynthetic pathway. In this review, we intend to deliver and discuss the available evidence that support a relevant role of folates during the symbiotic nitrogen fixation.
叶酸是植物中具有多种功能的代谢物,对细胞分裂、核酸和氨基酸合成至关重要。在豆科植物的共生固氮过程中,这些辅助因子是从头嘌呤生物合成所必需的,这意味着叶酸池的变化可能直接影响固定氮向植物的流动。它与共生固氮的关系尚未得到探索,但最近的数据表明它在最初的几个步骤中发挥着相关作用。转录组学、代谢组学和蛋白质组学分析表明,叶酸在共生植物组织中积累,因为它们不仅参与从头嘌呤生物合成,还参与氮的转运、内复制和植物激素的生物合成。了解叶酸池在固氮和同化过程中的可能作用,可能有助于针对两个转甲酰基化或丝氨酸羟甲基转移酶在从头嘌呤生物合成途径中生成甘氨酸的过程,找到新的工程目标。在这篇综述中,我们旨在提供并讨论现有的证据,这些证据支持叶酸在共生固氮过程中发挥重要作用。