Leprince Anne-Sophie, Magalhaes Nelly, De Vos Delphine, Bordenave Marianne, Crilat Emilie, Clément Gilles, Meyer Christian, Munnik Teun, Savouré Arnould
Sorbonne Universités, Universite Pierre et Marie Curie Univ Paris 06, Adaptation de Plantes aux Contraintes Environnementales, URF5 Paris, France ; INRA-AgroParisTech, Institut Jean-Pierre Bourgin, UMR 1318, ERL CNRS 3559, Saclay Plant Sciences Versailles, France.
Sorbonne Universités, Universite Pierre et Marie Curie Univ Paris 06, Adaptation de Plantes aux Contraintes Environnementales, URF5 Paris, France.
Front Plant Sci. 2015 Jan 12;5:772. doi: 10.3389/fpls.2014.00772. eCollection 2014.
Plant adaptation to abiotic stresses such as drought and salinity involves complex regulatory processes. Deciphering the signaling components that are involved in stress signal transduction and cellular responses is of importance to understand how plants cope with salt stress. Accumulation of osmolytes such as proline is considered to participate in the osmotic adjustment of plant cells to salinity. Proline accumulation results from a tight regulation between its biosynthesis and catabolism. Lipid signal components such as phospholipases C and D have previously been shown to be involved in the regulation of proline metabolism in Arabidopsis thaliana. In this study, we demonstrate that proline metabolism is also regulated by class-III Phosphatidylinositol 3-kinase (PI3K), VPS34, which catalyses the formation of phosphatidylinositol 3-phosphate (PI3P) from phosphatidylinositol. Using pharmacological and biochemical approaches, we show that the PI3K inhibitor, LY294002, affects PI3P levels in vivo and that it triggers a decrease in proline accumulation in response to salt treatment of A. thaliana seedlings. The lower proline accumulation is correlated with a lower transcript level of Pyrroline-5-carboxylate synthetase 1 (P5CS1) biosynthetic enzyme and higher transcript and protein levels of Proline dehydrogenase 1 (ProDH1), a key-enzyme in proline catabolism. We also found that the ProDH1 expression is induced in a pi3k-hemizygous mutant, further demonstrating that PI3K is involved in the regulation of proline catabolism through transcriptional regulation of ProDH1. A broader metabolomic analysis indicates that LY294002 also reduced other metabolites, such as hydrophobic and aromatic amino acids and sugars like raffinose.
植物对干旱和盐度等非生物胁迫的适应涉及复杂的调控过程。解读参与胁迫信号转导和细胞反应的信号成分对于理解植物如何应对盐胁迫至关重要。脯氨酸等渗透调节物质的积累被认为参与了植物细胞对盐度的渗透调节。脯氨酸的积累源于其生物合成和分解代谢之间的严格调控。脂质信号成分如磷脂酶C和D先前已被证明参与拟南芥脯氨酸代谢的调控。在本研究中,我们证明脯氨酸代谢也受III类磷脂酰肌醇3激酶(PI3K)VPS34的调控,该酶催化磷脂酰肌醇形成磷脂酰肌醇3-磷酸(PI3P)。使用药理学和生化方法,我们表明PI3K抑制剂LY294002影响体内PI3P水平,并在对拟南芥幼苗进行盐处理时引发脯氨酸积累的减少。脯氨酸积累的降低与脯氨酸生物合成酶吡咯啉-5-羧酸合成酶1(P5CS1)的转录水平降低以及脯氨酸分解代谢中的关键酶脯氨酸脱氢酶1(ProDH1)的转录和蛋白水平升高相关。我们还发现ProDH1的表达在pi3k半合子突变体中被诱导,进一步证明PI3K通过对ProDH1的转录调控参与脯氨酸分解代谢的调控。更广泛的代谢组学分析表明,LY294002还减少了其他代谢物,如疏水和芳香族氨基酸以及棉子糖等糖类。