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Detecting the Differences in Responses of Stomatal Conductance to Moisture Stresses between Deciduous Shrubs and Artemisia Subshrubs

机译:检测落叶灌木和青蒿灌木之间气孔导度对水分胁迫的响应差异

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摘要

Shrubs and subshrubs can tolerate wider ranges of moisture stresses in both soil and air than other plant life forms, and thus represent greater nonlinearity and uncertainty in ecosystem physiology. The objectives of this paper are to model shrub/subshrub stomatal conductance by synthesizing the field leaf gas exchanges data of 24 species in China, in order to detect the differences between deciduous shrubs and Artemisia subshrubs in their responses of stomatal conductance to changes in the moisture stresses. We revised a model of stomatal conductance by incorporating the tradeoff between xylem hydraulic efficiency and cavitation loss risk. We then fit the model at the three hierarchical levels: global (pooling all data as a single group), three functional groups (deciduous non-legume shrubs, deciduous legume shrubs, and subshrubs in Artemisia genus), and individual observations (species × sites). Bayesian inference with Markov Chain Monte Carlo method was applied to obtain the model parameters at the three levels. We found that the model at the level of functional groups is a significant improvement over that at the global level, indicating the significant differences in the stomatal behavior among the three functional groups. The differences in tolerance and sensitivities to changes in moisture stresses are the most evident between the shrubs and the subshrubs: The two shrub groups can tolerate much higher soil water stress than the subshrubs. The analysis at the observation level is also a significant improvement over that at the functional group level, indicating great variations within each group. Our analysis offered a clue for the equivocal issue of shrub encroachment into grasslands: While the invasion by the shrubs may be irreversible, the dominance of subshrubs, due to their lower resistance and tolerance to moisture stresses, may be put down by appropriate grassland management.
机译:与其他植物生命形式相比,灌木和亚灌木可以在土壤和空气中承受更大范围的水分胁迫,因此表现出更大的非线性和生态系统生理学的不确定性。本文的目的是通过综合中国24个物种的田间叶片气体交换数据来模拟灌木/亚灌木气孔导度,以检测落叶灌木和青蒿亚灌木在气孔导度对水分变化的响应中的差异。压力。我们通过结合木质部水力效率和空化损失风险之间的权衡,修订了气孔导度模型。然后,我们在三个层次级别上对模型进行拟合:全局(将所有数据合并为一个组),三个功能组(蒿属属的落叶非豆科灌木,落叶豆科灌木和亚灌木)以及单个观察值(物种×地点) )。采用马尔可夫链蒙特卡罗方法进行贝叶斯推理,得到三个层次的模型参数。我们发现,功能组水平的模型比全局水平的模型有显着改进,表明三个功能组之间的气孔行为存在显着差异。灌木和亚灌木之间对水分胁迫变化的耐受性和敏感性差异最明显:两种灌木组比亚灌木具有更高的土壤水分胁迫能力。观察级别的分析也比功能组级别的分析显着改进,表明每个组内的差异很大。我们的分析为灌木丛侵入草原这一模棱两可的问题提供了线索:尽管灌木丛的入侵可能是不可逆的,但由于适当的草地管理,亚灌木丛的优势地位较低,因为它们对水分胁迫的抵抗力和耐受力较低。

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  • 期刊名称 other
  • 作者

    Qiong Gao; Mei Yu; Chan Zhou;

  • 作者单位
  • 年(卷),期 -1(8),12
  • 年度 -1
  • 页码 e84200
  • 总页数 10
  • 原文格式 PDF
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