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Evidence for the Contribution of the Mehler-Peroxidase Reaction in Dissipating Excess Electrons in Drought-Stressed Wheat.

机译:Mehler-过氧化物酶反应在干旱胁迫下耗散的多余电子中的贡献的证据。

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摘要

Gross O2 evolution and uptake by attached, drought-stressed leaves of wheat (Triticum aestivum) were measured using a 16O2/ 18O2 isotope technique and mass spectrometry. The activity of photosystem II, determined from the rate of 16O2 evolution, is only slightly affected under drought conditions. During drought stress, net CO2 uptake decreases due to stomatal closure, whereas the uptake of 18O2 is stimulated. The main O2-consuming reactions in the light are the Mehler-peroxidase (MP) reaction and the photorespiratory pathway. From measurements of the rate of carbon flux through the photorespiratory pathway, estimated by the analysis of the specific radioactivities of glycolate, we conclude that the rate of photorespiration is decreased with drought stress. Therefore, the O2 taken up in the light appears to be preferentially used by the MP reaction. In stressed leaves, 29.1% of the photosynthetic electrons are consumed in the MP reaction and 18.4% drive the photorespiratory pathway. Thus, overreduction of the electron transport chain is avoided preferably by the MP reaction when drought stress restricts CO2 reduction.
机译:使用16O2 / 18O2同位素技术和质谱仪测量了附着的干旱胁迫下的小麦(Triticum aestivum)叶片的总O2演变和吸收。由16O2的释放速率确定的光系统II的活动在干旱条件下仅受到轻微影响。在干旱胁迫期间,由于气孔关闭,净CO2吸收减少,而刺激18O2吸收。光下主要的耗氧量反应是Mehler过氧化物酶(MP)反应和光呼吸途径。通过对乙醇酸根比放射性的分析估计,通过测量通过光呼吸途径的碳通量速率,我们得出结论,干旱引起光呼吸速率降低。因此,在光中吸收的O 2似乎优先被MP反应使用。在压力叶片中,MP反应中消耗了29.1%的光合电子,而18.4%的驱动光呼吸途径。因此,当干旱胁迫限制CO 2还原时,优选通过MP反应避免电子传输链的过度还原。

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