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树木中非结构性碳水化合物储存的日变化:再移动和垂直混合。

Diurnal Variation in Nonstructural Carbohydrate Storage in Trees: Remobilization and Vertical Mixing.

机构信息

Department of Plant Sciences, University of California, Davis, California 95616.

Yale School of Forestry and Environmental Studies, New Haven, Connecticut 06511.

出版信息

Plant Physiol. 2018 Dec;178(4):1602-1613. doi: 10.1104/pp.18.00923. Epub 2018 Oct 26.

Abstract

Nonstructural carbohydrate (NSC) storage plays a critical role in tree function and survival, but understanding and predicting local NSC storage dynamics is challenging because NSC storage pools are dispersed throughout the complex architecture of trees and continuously exchange carbon between source and sink organs at different time scales. To address these knowledge gaps, characterization and understanding of NSC diel variation are necessary. Here, we analyzed diurnal NSC dynamics in the overall architecture of almond () trees. We also analyzed the allocation of newly assimilated carbon using isotopic labeling. We show that both components of NSC (i.e. soluble carbohydrates and starch) are highly dynamic at the diurnal time scale and that these trends are influenced by tissue type, age, and/or position within the canopy. In leaves, starch reserves can be depleted completely during the night, while woody tissue starch levels may vary by more than 50% over a daily cycle. Recently assimilated carbon showed a dispersed downward allocation across the entire tree. NSC diurnal fluctuations within the tree's structure in combination with dispersed carbon allocation patterns provide evidence for the presence of vertical mixing and suggest that the xylem acts as a secondary NSC redistribution pathway.

摘要

非结构性碳水化合物 (NSC) 储存对树木的功能和生存起着至关重要的作用,但由于 NSC 储存库分散在树木复杂的结构中,并且在不同的时间尺度上不断在源器官和汇器官之间交换碳,因此理解和预测局部 NSC 储存动态具有挑战性。为了解决这些知识空白,有必要对 NSC 的日变化进行描述和理解。在这里,我们分析了杏仁树()整体结构中的日间 NSC 动态。我们还使用同位素标记分析了新同化碳的分配。我们表明,NSC 的两个组成部分(即可溶性碳水化合物和淀粉)在日时间尺度上具有高度动态性,这些趋势受组织类型、年龄和/或树冠内位置的影响。在叶片中,淀粉储备在夜间可能会完全耗尽,而木质组织中的淀粉水平在一天的周期内可能会变化超过 50%。最近同化的碳在整个树冠中呈分散向下分配。树木结构内的 NSC 日变化与分散的碳分配模式一起,为垂直混合的存在提供了证据,并表明木质部充当了 NSC 再分配的次要途径。

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