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Nitric oxide synthase-mediated early nitric oxide burst alleviates water stress-induced oxidative damage in ammonium-supplied rice roots

机译:一氧化氮合酶介导的一氧化氮早期爆发减轻了水分胁迫引起的铵根供应的水稻根系的氧化损伤

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Nutrition with ammonium (NH4+) can enhance the drought tolerance of rice seedlings in comparison to nutrition with nitrate (NO3?). However, there are still no detailed studies investigating the response of nitric oxide (NO) to the different nitrogen nutrition and water regimes. To study the intrinsic mechanism underpinning this relationship, the time-dependent production of NO and its protective role in the antioxidant defense system of NH4+- or NO3?-supplied rice seedlings were studied under water stress. An early NO burst was induced by 3?h of water stress in the roots of seedlings subjected to NH4+ treatment, but this phenomenon was not observed under NO3? treatment. Root oxidative damage induced by water stress was significantly higher for treatment with NO3? than with NH4+ due to reactive oxygen species (ROS) accumulation in the former. Inducing NO production by applying the NO donor 3?h after NO3? treatment alleviated the oxidative damage, while inhibiting the early NO burst by applying the NO scavenger 2-(4-carboxyphenyl)-4,4,5,5-tetramethylimidazoline-1-oxyl-3-oxide (c-PTIO) increased root oxidative damage in NH4+ treatment. Application of the nitric oxide synthase (NOS) inhibitor N(G)-nitro-L-arginine methyl ester(L-NAME) completely suppressed NO synthesis in roots 3?h after NH4+ treatment and aggravated water stress-induced oxidative damage. Therefore, the aggravation of oxidative damage by L-NAME might have resulted from changes in the NOS-mediated early NO burst. Water stress also increased the activity of root antioxidant enzymes (catalase, superoxide dismutase, and ascorbate peroxidase). These were further induced by the NO donor but repressed by the NO scavenger and NOS inhibitor in NH4+-treated roots. These findings demonstrate that the NOS-mediated early NO burst plays an important role in alleviating oxidative damage induced by water stress by enhancing the antioxidant defenses in roots supplemented with NH4+.
机译:与硝酸盐(NO3?)营养相比,铵盐(NH4 +)营养可以增强水稻幼苗的抗旱性。但是,仍然没有详细的研究来调查一氧化氮(NO)对不同氮素营养和水分状况的响应。为了研究支持这种关系的内在机理,研究了水分胁迫下NO的时效产生及其在NH4 +或NO3?提供的水稻幼苗抗氧化防御系统中的保护作用。 NH4 +处理幼苗的根部水分胁迫3?h会引起NO的早期爆发,但在NO3?下未观察到这种现象。治疗。用NO3处理可明显提高水分胁迫引起的根系氧化损伤。由于在前者中活性氧(ROS)的积累,比使用NH4 +的情况要多。在NO3?之后3?h施用NO供体诱导NO的产生。处理减轻了氧化损伤,同时通过应用NO清除剂2-(4-羧基苯基)-4,4,5,5-四甲基咪唑啉-1-氧基-3-氧化物(c-PTIO)抑制了根源的NO爆发,从而增加了根的氧化NH4 +处理中的损坏。一氧化氮合酶(NOS)抑制剂N(G)-硝基-L-精氨酸甲酯(L-NAME)的应用完全抑制了NH4 +处理后3?h根系中NO的合成,并加剧了水分胁迫引起的氧化损伤。因此,L-NAME对氧化损伤的加剧可能是由于NOS介导的早期NO爆发的变化所致。水分胁迫还增加了根部抗氧化酶(过氧化氢酶,超氧化物歧化酶和抗坏血酸过氧化物酶)的活性。这些被NO供体进一步诱导,但是被NH 4 +处理的根中的NO清除剂和NOS抑制剂抑制。这些发现表明,NOS介导的早期NO爆发通过增强补充NH4 +的根部的抗氧化防御能力,在减轻水分胁迫引起的氧化损伤中起重要作用。

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