RIKEN Center for Sustainable Resource Science, Yokohama, Japan.
Graduate School of Bioagricultural Sciences, Nagoya University, Nagoya, Japan.
Commun Biol. 2024 Jan 24;7(1):102. doi: 10.1038/s42003-023-05746-6.
Serine metabolism is involved in various biological processes. Here we investigate primary functions of the phosphorylated pathway of serine biosynthesis in a non-vascular plant Marchantia polymorpha by analyzing knockout mutants of MpPGDH encoding 3-phosphoglycerate dehydrogenase in this pathway. Growth phenotypes indicate that serine from the phosphorylated pathway in the dark is crucial for thallus growth. Sperm development requires serine from the phosphorylated pathway, while egg formation does not. Functional MpPGDH in the maternal genome is necessary for embryo and sporophyte development. Under high CO where the glycolate pathway of serine biosynthesis is inhibited, suppressed thallus growth of the mutants is not fully recovered by exogenously-supplemented serine, suggesting the importance of serine homeostasis involving the phosphorylated and glycolate pathways. Metabolomic phenotypes indicate that the phosphorylated pathway mainly influences the tricarboxylic acid cycle, the amino acid and nucleotide metabolism, and lipid metabolism. These results indicate the importance of the phosphorylated pathway of serine biosynthesis in the dark, in the development of sperm, embryo, and sporophyte, and metabolism in M. polymorpha.
丝氨酸代谢参与各种生物过程。在这里,我们通过分析该途径中编码 3-磷酸甘油酸脱氢酶的 MpPGDH 的敲除突变体,研究了非维管植物 Marchantia polymorpha 中丝氨酸生物合成磷酸化途径的主要功能。生长表型表明,黑暗中磷酸化途径的丝氨酸对于叶状体的生长至关重要。精子的发育需要来自磷酸化途径的丝氨酸,而卵子的形成则不需要。母本基因组中功能性的 MpPGDH 对于胚胎和孢子体的发育是必需的。在高 CO 下,丝氨酸生物合成的乙醛酸途径被抑制,突变体的叶状体生长受到抑制,不能完全通过外源补充的丝氨酸得到恢复,这表明涉及磷酸化和乙醛酸途径的丝氨酸稳态的重要性。代谢组学表型表明,磷酸化途径主要影响三羧酸循环、氨基酸和核苷酸代谢以及脂质代谢。这些结果表明,在黑暗中、在精子、胚胎和孢子体的发育以及 M. polymorpha 中的代谢中,丝氨酸生物合成的磷酸化途径非常重要。