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Diurnal patterns of gas-exchange and metabolic pools in tundra plants during three phases of the arctic growing season

机译:北极生长期三个阶段的苔原植物气体交换和代谢池的日变化

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摘要

Arctic tundra plant communities are subject to a short growing season that is the primary period in which carbon is sequestered for growth and survival. This period is often characterized by 24-h photoperiods for several months a year. To compensate for the short growing season tundra plants may extend their carbon uptake capacity on a diurnal basis, but whether this is true remains unknown. Here, we examined in situ diurnal patterns of physiological activity and foliar metabolites during the early, mid, and late growing season in seven arctic species under light-saturated conditions. We found clear diurnal patterns in photosynthesis and respiration, with midday peaks and midnight lulls indicative of circadian regulation. Diurnal patterns in foliar metabolite concentrations were less distinct between the species and across seasons, suggesting that metabolic pools are likely governed by proximate external factors. This understanding of diurnal physiology will also enhance the parameterization of process-based models, which will aid in better predicting future carbon dynamics for the tundra. This becomes even more critical considering the rapid changes that are occurring circumpolarly that are altering plant community structure, function, and ultimately regional and global carbon budgets.
机译:北极苔原植物群落的生长季节很短,这是碳被螯合生长和生存的主要时期。这个时期通常以每年24个小时的光周期为特征。为了补偿短生长期的寒带苔藓植物可以按日增加其碳吸收能力,但是这种说法是否正确尚不清楚。在这里,我们研究了光饱和条件下七个北极物种在生长早期,中期和晚期的生理活动和叶面代谢产物的原位昼夜模式。我们在光合作用和呼吸中发现了清晰的昼夜模式,午间高峰和午夜平静表明了昼夜节律。在不同物种之间和不同季节之间,叶代谢物浓度的昼夜模式差异较小,这表明代谢池可能受附近外部因素的控制。对昼夜生理的这种理解还将增强基于过程的模型的参数化,这将有助于更好地预测冻原的未来碳动力学。考虑到沿周线发生的迅速变化正在改变植物群落的结构,功能,并最终改变区域和全球碳预算,这变得更加关键。

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