首页> 外文期刊>Planta: An International Journal of Plant Biology >Phosphatidic acid phosphohydrolase modulates glycerolipid synthesis in Marchantia polymorpha and is crucial for growth under both nutrient-replete and -deficient conditions
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Phosphatidic acid phosphohydrolase modulates glycerolipid synthesis in Marchantia polymorpha and is crucial for growth under both nutrient-replete and -deficient conditions

机译:磷脂酸磷酸水解酶调节 Marchantia polymorpha 中的甘油脂合成,对于营养充足和缺乏条件下的生长至关重要

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Abstract Main conclusion The phosphatidic acid phosphohydrolase of Marchantia polymorpha modulates plastid glycolipid synthesis through the ER pathway and is essential for normal plant development regardless of nutrient availability.Abstract Membrane lipid remodeling is one of the strategies plant cells use to secure inorganic phosphate (Pi) for plant growth, but many aspects of the molecular mechanism and its regulation remain unclear. Here we analyzed membrane lipid remodeling using a non-vascular plant, Marchantia polymorpha. The lipid composition and fatty acid profile during Pi starvation in M. polymorpha revealed a decrease in phospholipids and an increase in both galactolipids and betaine lipids. In Arabidopsis thaliana, phosphatidic acid phosphohydrolase (PAH) is involved in phospholipid degradation and is crucial for tolerance to both Pi and nitrogen starvation. We produced two M. polymorpha PAH (MpPAH) knockout mutants (Mppah-1 and Mppah-2) and found that, unlike Arabidopsis mutants, Mppah impaired plant growth with shorter rhizoids compared with wild-type plants even under nutrient-replete conditions. Mutation of MpPAH did not significantly affect the mole percent of each glycerolipid among total membrane glycerolipids from whole plants under both Pi-replete and Pi-deficient conditions. However, the fatty acid composition of monogalactosyldiacylglycerol indicated that the amount of plastid glycolipids produced through the endoplasmic reticulum pathway was suppressed in Mppah mutants. Phospholipids accumulated in the mutants under N starvation. These results reveal that MpPAH modulates plastid glycolipid synthesis through the endoplasmic reticulum pathway more so than what has been observed for Arabidopsis PAH; moreover, unlike Arabidopsis, MpPAH is crucial for M. polymorpha growth regardless of nutrient availability.
机译:摘要 主要结论 多形马尚提亚磷脂酸磷酸水解酶通过ER途径调节质体糖脂的合成,对植物的正常发育至关重要,无论营养物质的利用程度如何。摘要 膜脂质重塑是植物细胞保护无机磷酸盐(Pi)促进植物生长的策略之一,但其分子机制及其调控的诸多方面仍不明确。在这里,我们使用非维管植物Marchantia polymorpha分析了膜脂质重塑。多形分枝杆菌 Pi 饥饿期间的脂质组成和脂肪酸谱显示磷脂减少,半乳脂和甜菜碱脂质增加。在拟南芥中,磷脂酸磷酸水解酶 (PAH) 参与磷脂降解,对于耐受 Pi 和氮饥饿至关重要。我们生产了两个多形多环芳烃 (MpPAH) 敲除突变体(Mppah-1 和 Mppah-2),发现与拟南芥突变体不同,即使在营养丰富的条件下,与野生型植物相比,Mppah 也以较短的根茎损害植物生长。在充满Pi和Pi缺乏的条件下,MpPAH突变对全株全株总膜甘油脂中每种甘油脂的摩尔百分比没有显著影响。然而,单半乳糖基二酰基甘油的脂肪酸组成表明,在Mppah突变体中,通过内质网途径产生的质体糖脂的量受到抑制。磷脂在N饥饿下在突变体中积累。这些结果表明,MpPAH通过内质网途径调节质体糖脂合成比拟南芥PAH的调节作用更大;此外,与拟南芥不同,无论营养物质供应如何,MpPAH对多形分枝杆菌的生长都至关重要。

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