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硬粒小麦幼苗对高光和盐度同时胁迫的响应涉及氨基酸和碳水化合物代谢的精细重构。

Durum wheat seedling responses to simultaneous high light and salinity involve a fine reconfiguration of amino acids and carbohydrate metabolism.

作者信息

Woodrow Pasqualina, Ciarmiello Loredana F, Annunziata Maria Grazia, Pacifico Severina, Iannuzzi Federica, Mirto Antonio, D'Amelia Luisa, Dell'Aversana Emilia, Piccolella Simona, Fuggi Amodio, Carillo Petronia

机构信息

Dipartimento di Scienze e Tecnologie Ambientali, Biologiche e Farmaceutiche, Seconda Università degli Studi di Napoli, Caserta, 81100, Italy.

Department of Metabolic Networks, Max Planck Institute of Molecular Plant Physiology, Potsdam-Golm, 14476, Germany.

出版信息

Physiol Plant. 2017 Mar;159(3):290-312. doi: 10.1111/ppl.12513. Epub 2016 Oct 19.

Abstract

Durum wheat plants are extremely sensitive to drought and salinity during seedling and early development stages. Their responses to stresses have been extensively studied to provide new metabolic targets and improving the tolerance to adverse environments. Most of these studies have been performed in growth chambers under low light [300-350 µmol m s photosynthetically active radiation (PAR), LL]. However, in nature plants have to face frequent fluctuations of light intensities that often exceed their photosynthetic capacity (900-2000 µmol m s ). In this study we investigated the physiological and metabolic changes potentially involved in osmotic adjustment and antioxidant defense in durum wheat seedlings under high light (HL) and salinity. The combined application of the two stresses decreased the water potential and stomatal conductance without reducing the photosynthetic efficiency of the plants. Glycine betaine (GB) synthesis was inhibited, proline and glutamate content decreased, while γ-aminobutyric acid (GABA), amides and minor amino acids increased. The expression level and enzymatic activities of Δ1-pyrroline-5-carboxylate synthetase, asparagine synthetase and glutamate decarboxylase, as well as other enzymatic activities of nitrogen and carbon metabolism, were analyzed. Antioxidant enzymes and metabolites were also considered. The results showed that the complex interplay seen in durum wheat plants under salinity at LL was simplified: GB and antioxidants did not play a main role. On the contrary, the fine tuning of few specific primary metabolites (GABA, amides, minor amino acids and hexoses) remodeled metabolism and defense processes, playing a key role in the response to simultaneous stresses.

摘要

硬粒小麦植株在幼苗期和早期发育阶段对干旱和盐度极为敏感。人们对其应激反应进行了广泛研究,以提供新的代谢靶点并提高对不利环境的耐受性。这些研究大多是在低光照[300 - 350 μmol m⁻² s⁻¹光合有效辐射(PAR),低光照]的生长室中进行的。然而,在自然环境中,植物必须面对光强的频繁波动,这种波动常常超过其光合能力(900 - 2000 μmol m⁻² s⁻¹)。在本研究中,我们调查了高光(HL)和盐度条件下硬粒小麦幼苗中可能参与渗透调节和抗氧化防御的生理和代谢变化。两种胁迫的联合作用降低了水势和气孔导度,但并未降低植物的光合效率。甘氨酸甜菜碱(GB)的合成受到抑制,脯氨酸和谷氨酸含量降低,而γ-氨基丁酸(GABA)、酰胺和小分子氨基酸增加。分析了Δ¹-吡咯啉-5-羧酸合成酶、天冬酰胺合成酶和谷氨酸脱羧酶的表达水平和酶活性,以及氮和碳代谢的其他酶活性。还考虑了抗氧化酶和代谢物。结果表明,在低光照盐度条件下硬粒小麦植株中观察到的复杂相互作用被简化:GB和抗氧化剂不发挥主要作用。相反,少数特定初级代谢物(GABA、酰胺、小分子氨基酸和己糖)的精细调节重塑了代谢和防御过程,在对同时存在的胁迫的响应中起关键作用。

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