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Spectacular Oscillations in Plant Isoprene Emission under Transient Conditions Explain the Enigmatic CO2 Response

机译:瞬态条件下植物异戊二烯排放中的剧烈振荡解释了神秘的CO2响应

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摘要

Plant isoprene emissions respond to light and temperature similarly to photosynthesis, but CO2 dependencies of isoprene emission and photosynthesis are profoundly different, with photosynthesis increasing and isoprene emission decreasing with increasing CO2 concentration due to reasons not yet understood. We studied isoprene emission, net assimilation rate, and chlorophyll fluorescence under different CO2 and O2 concentrations in the strong isoprene emitter hybrid aspen (Populus tremula × Populus tremuloides), and used rapid changes in ambient CO2 or O2 concentrations or light level to induce oscillations. As isoprene-emitting species support very high steady-state chloroplastic pool sizes of the primary isoprene substrate, dimethylallyl diphosphate (), which can mask the effects of oscillatory dynamics on isoprene emission, the size of the pool was experimentally reduced by either partial inhibition of isoprenoid synthesis pathway by fosmidomycin-feeding or by changes in ambient gas concentrations leading to pool depletion in intact leaves. In feedback-limited conditions observed at low O2 and/or high CO2 concentration under which the rate of photosynthesis is governed by the limited rate of ATP and NADPH formation due to low chloroplastic phosphate levels, oscillations in photosynthesis and isoprene emission were repeatedly induced by rapid environmental modifications in both partly fosmidomycin-inhibited leaves and in intact leaves with in vivo reduced pools. The oscillations in net assimilation rate and isoprene emission in feedback-inhibited leaves were in the same phase, and relative changes in the pools of photosynthetic metabolites and estimated by in vivo kinetic methods were directly proportional through all oscillations induced by different environmental perturbations. We conclude that the oscillations in isoprene emission provide direct experimental evidence demonstrating that the response of isoprene emission to changes in ambient gas concentrations is controlled by the chloroplastic reductant supply.
机译:植物异戊二烯排放对光和温度的响应与光合作用相似,但是异戊二烯排放和光合作用对CO2的依赖性存在显着差异,由于尚未理解的原因,光合作用的增加和异戊二烯的排放随CO2浓度的增加而降低。我们研究了强异戊二烯发射器杂种杨木(Populus tremula×Populus tremuloides)中不同CO2和O2浓度下异戊二烯的排放,净同化率和叶绿素荧光,并利用环境CO2或O2浓度或光照水平的快速变化来诱发振荡。由于散发异戊二烯的物质支持主要异戊二烯底物非常高的稳态氯塑料池尺寸,二甲基烯丙基二磷酸酯()可以掩盖振荡动力学对异戊二烯排放的影响,因此通过部分抑制异戊二烯来实验减小池的尺寸施用磷霉素或通过改变周围气体浓度导致完整叶片中的库耗尽的类异戊二烯合成途径。在低O2和/或高CO2浓度下观察到的反馈受限条件下,由于低氯塑料磷酸盐水平,光合作用的速率受ATP和NADPH形成速率的限制,因此,光合作用的快速振荡反复引起光合作用的振荡和异戊二烯的释放在部分受磷霉素抑制的叶片中以及在体内叶片减少的完整叶片中的环境变化。反馈抑制叶片中净同化率和异戊二烯排放的振荡处于同一阶段,并且通过不同的环境扰动引起的所有振荡,通过体内动力学方法估算的光合代谢产物池的相对变化均成正比。我们得出的结论是,异戊二烯排放中的振荡提供了直接的实验证据,表明异戊二烯排放对环境气体浓度变化的响应受氯塑料还原剂供应的控制。

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