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首页> 外文期刊>The Plant Cell >Sphingolipids in the Root Play an Important Role in Regulating the Leaf Ionome in Arabidopsis thaliana
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Sphingolipids in the Root Play an Important Role in Regulating the Leaf Ionome in Arabidopsis thaliana

机译:根中的鞘脂在调节拟南芥叶离子组中起重要作用

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Sphingolipid synthesis is initiated by condensation of Ser with palmitoyl-CoA producing 3-ketodihydrosphinganine (3-KDS), which is reduced by a 3-KDS reductase to dihydrosphinganine. Ser palmitoyltransferase is essential for plant viability. Arabidopsis thaliana contains two genes (At3g06060/TSC10A and At5g19200/TSC10B) encoding proteins with significant similarity to the yeast 3-KDS reductase, Tsc10p. Heterologous expression in yeast of either Arabidopsis gene restored 3-KDS reductase activity to the yeast tsc10 Delta mutant, confirming both as bona fide 3-KDS reductase genes. Consistent with sphingolipids having essential functions in plants, double mutant progeny lacking both genes were not recovered from crosses of single tsc10A and tsc10B mutants. Although the 3-KDS reductase genes are functionally redundant and ubiquitously expressed in Arabidopsis, 3-KDS reductase activity was reduced to 10% of wild-type levels in the loss-of-function tsc10a mutant, leading to an altered sphingolipid profile. This perturbation of sphingolipid biosynthesis in the Arabidopsis tsc10a mutant leads an altered leaf ionome, including increases in Na, K, and Rb and decreases in Mg, Ca, Fe, and Mo. Reciprocal grafting revealed that these changes in the leaf ionome are driven by the root and are associated with increases in root suberin and alterations in Fe homeostasis.
机译:鞘脂的合成是通过将Ser与棕榈酰-CoA缩合而产生的,生成3-ketodihydrosphinganine(3-KDS),然后被3-KDS还原酶还原为dihydrosphinganine。棕榈酰基转移酶对植物的生存能力至关重要。拟南芥包含两个基因(At3g06060 / TSC10A和At5g19200 / TSC10B),它们编码与酵母3-KDS还原酶Tsc10p具有显着相似性的蛋白质。任一拟南芥基因在酵母中的异源表达均使酵母tsc10 Delta突变体恢复了3-KDS还原酶活性,从而证实了它们均为真正的3-KDS还原酶基因。与在植物中具有基本功能的鞘脂一致,缺少两种基因的双突变体后代不能从单个tsc10A和tsc10B突变体的杂交中回收。尽管3-KDS还原酶基因在拟南芥中功能上多余且无处不在表达,但在功能丧失的tsc10a突变体中,3-KDS还原酶活性降低到野生型水平的10%,导致鞘脂谱改变。拟南芥tsc10a突变体中鞘脂生物合成的这种扰动导致叶片离子组发生改变,包括Na,K和Rb的增加,以及Mg,Ca,Fe和Mo的减少。相互的嫁接表明,叶片离子组的这些变化是由根,并与根中suberin的增加和铁稳态的改变有关。

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