Max-Planck-Institut für Molekulare Pflanzenphysiologie, 14476 Potsdam-Golm, Germany.
Department of Botany and Plant Biology, University of Geneva, 1211 Geneva, Switzerland.
Plant Physiol. 2019 May;180(1):185-197. doi: 10.1104/pp.18.01346. Epub 2019 Mar 5.
Thiamin pyrophosphate (TPP) is the active form of vitamin B and works as an essential cofactor for enzymes in key metabolic pathways, such as the tricarboxylic acid (TCA) cycle and the pentose phosphate pathway. Although its action as a coenzyme has been well documented, the roles of TPP in plant metabolism are still not fully understood. Here, we investigated the functions of TPP in the regulation of the metabolic networks during photoperiod transition using previously described Arabidopsis () riboswitch mutant plants, which accumulate thiamin vitamers. The results show that photosynthetic and metabolic phenotypes of TPP riboswitch mutants are photoperiod dependent. Additionally, the mutants are more distinct from control plants when plants are transferred from a short-day to a long-day photoperiod, suggesting that TPP also plays a role in metabolic acclimation to the photoperiod. Control plants showed changes in the amplitude of diurnal oscillation in the levels of metabolites, including glycine, maltose, and fumarate, following the photoperiod transition. Interestingly, many of these changes are not present in TPP riboswitch mutant plants, demonstrating their lack of metabolic flexibility. Our results also indicate a close relationship between photorespiration and the TCA cycle, as TPP riboswitch mutants accumulate less photorespiratory intermediates. This study shows the potential role of vitamin B in the diurnal regulation of central carbon metabolism in plants and the importance of maintaining appropriate cellular levels of thiamin vitamers for the plant's metabolic flexibility and ability to acclimate to an altered photoperiod.
硫胺素焦磷酸(TPP)是维生素 B 的活性形式,作为关键代谢途径中酶的必需辅酶发挥作用,如三羧酸(TCA)循环和磷酸戊糖途径。尽管其作为辅酶的作用已有充分的记录,但 TPP 在植物代谢中的作用仍不完全清楚。在这里,我们使用先前描述的拟南芥()核糖开关突变体植物研究了 TPP 在光周期过渡期间代谢网络调节中的功能,这些植物积累了硫胺素变体。结果表明,TPP 核糖开关突变体的光合和代谢表型是光周期依赖性的。此外,当植物从短日照转移到长日照时,突变体与对照植物的区别更为明显,这表明 TPP 也在代谢适应光周期中发挥作用。对照植物在光周期过渡后,包括甘氨酸、麦芽糖和延胡索酸在内的代谢物水平的昼夜振荡幅度发生变化。有趣的是,TPP 核糖开关突变体植物中没有许多这些变化,表明它们缺乏代谢灵活性。我们的结果还表明,光呼吸和 TCA 循环之间存在密切关系,因为 TPP 核糖开关突变体积累的光呼吸中间产物较少。这项研究表明了维生素 B 在植物中中央碳代谢的昼夜调节中的潜在作用,以及维持适当的细胞内硫胺素变体水平对于植物的代谢灵活性和适应改变的光周期的重要性。