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Loss of Mitochondrial Malate Dehydrogenase Activity Alters Seed Metabolism Impairing Seed Maturation and Post-Germination Growth in Arabidopsis

机译:拟南芥中线粒体苹果酸脱氢酶活性的丧失改变了种子的代谢损害了种子的成熟和发芽后的生长。

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摘要

Mitochondrial malate dehydrogenase (mMDH; EC 1.1.1.37) has multiple roles; the most commonly described is its catalysis of the interconversion of malate and oxaloacetate in the tricarboxylic acid cycle. The roles of mMDH in Arabidopsis (Arabidopsis thaliana) seed development and germination were investigated in mMDH1 and mMDH2 double knockout plants. A significant proportion of mmdh1mmdh2 seeds were nonviable and developed only to torpedo-shaped embryos, indicative of arrested seed embryo growth during embryogenesis. The viable mmdh1mmdh2 seeds had an impaired maturation process that led to slow germination rates as well as retarded post-germination growth, shorter root length, and decreased root biomass. During seed development, mmdh1mmdh2 showed a paler green phenotype than the wild type and exhibited deficiencies in reserve accumulation and reduced final seed biomass. The respiration rate of mmdh1mmdh2 seeds was significantly elevated throughout their maturation, consistent with the previously reported higher respiration rate in mmdh1mmdh2 leaves. Mutant seeds showed a consistently higher content of free amino acids (branched-chain amino acids, alanine, serine, glycine, proline, and threonine), differences in sugar and sugar phosphate levels, and lower content of 2-oxoglutarate. Seed-aging assays showed that quiescent mmdh1mmdh2 seeds lost viability more than 3 times faster than wild-type seeds. Together, these data show the important role of mMDH in the earliest phases of the life cycle of Arabidopsis.
机译:线粒体苹果酸脱氢酶(mMDH; EC 1.1.1.37)具有多种作用;最常见的描述是它在三羧酸循环中催化苹果酸和草酰乙酸的相互转化。在mMDH1和mMDH2双敲除植物中研究了mMDH在拟南芥(Arabidopsis thaliana)种子发育和发芽中的作用。很大比例的mmdh1mmdh2种子是不可行的,仅发育为鱼雷形胚,这表明胚发生期间被阻止的种子胚生长。可行的mmdh1mmdh2种子的成熟过程受到损害,导致发芽速率降低以及发芽后生长受阻,根长缩短和根生物量减少。在种子发育过程中,mmdh1mmdh2表现出比野生型更浅的绿色表型,并显示出储备积累不足和最终种子生物量减少。 mmdh1mmdh2种子在整个成熟过程中的呼吸速率均显着提高,这与先前报道的mmdh1mmdh2叶片较高的呼吸速率一致。突变种子显示出的游离氨基酸(支链氨基酸,丙氨酸,丝氨酸,甘氨酸,脯氨酸和苏氨酸)的含量始终较高,糖和糖磷酸水平的差异以及2-氧戊二酸的含量较低。种子老化试验表明,静止的mmdh1mmdh2种子失去活力的速度比野生型种子快3倍以上。这些数据一起显示了mMDH在拟南芥生命周期的最早阶段中的重要作用。

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