Division of Biological Sciences, Interdisciplinary Plant Group, Christopher S. Bond Life Sciences Center, University of Missouri, Columbia, MO, 65311, USA.
Aging and Metabolism Program, Oklahoma Medical Research Foundation, Oklahoma City, OK, 73104, USA.
Planta. 2019 May;249(5):1535-1549. doi: 10.1007/s00425-019-03105-6. Epub 2019 Feb 6.
Depending on nitrogen availability, S. stapfianus uses different amino acid metabolism strategies to cope with desiccation stress. The different metabolic strategies support essential processes for the desiccation tolerance phenotype. To provide a comprehensive assessment of the role played by amino acids in the adaptation of Sporobolus stapfianus to a combination of desiccation and nitrogen limitation, we used an absolute quantification of free and protein-bound amino acids (FAAs and PBAAs) as well as their gamma-glutamyl (gg-AA) derivatives in four different tissues grown under high- and low-nitrogen regimes. We demonstrate that although specific FAAs and gg-AAs increased in desiccating immature leaves under both nitrogen regimes, the absolute change in the total amount of either is small or negligible, negating their proposed role in nitrogen storage. FAAs and PBAAs decrease in underground tissues during desiccation, when nitrogen is abundant. In contrast, PBAAs are drastically reduced from the mature leaves, when nitrogen is limiting. Nevertheless, the substantial reduction in PBAA and FAA fractions in both treatments is not manifested in the immature leaves, which strongly suggests that these amino acids are further metabolized to fuel central metabolism or other metabolic adjustments that are essential for the acquisition of desiccation tolerance (DT).
根据氮的供应情况,S. stapfianus 使用不同的氨基酸代谢策略来应对干旱胁迫。这些不同的代谢策略支持干旱耐性表型的基本过程。为了全面评估氨基酸在 Sporobolus stapfianus 适应干旱和氮限制相结合方面的作用,我们采用了游离氨基酸(FAAs)和蛋白质结合氨基酸(PBAAs)及其γ-谷氨酰(gg-AA)衍生物的绝对定量方法,这些氨基酸分别来自在高氮和低氮两种条件下生长的四个不同组织。我们证明,尽管在两种氮处理条件下,脱水未成熟叶片中特定的 FAAs 和 gg-AAs 会增加,但总数量的绝对变化很小或可以忽略不计,从而否定了它们在氮储存中的作用。在氮丰富时,地下组织在脱水过程中会减少 FAAs 和 PBAAs。相比之下,在氮限制时,成熟叶片中的 PBAAs 会急剧减少。然而,在两种处理中,PBAAs 和 FAA 分数的大量减少并没有在未成熟叶片中表现出来,这强烈表明这些氨基酸被进一步代谢为中心代谢或其他对获得干旱耐性(DT)至关重要的代谢调整提供燃料。