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Disparity in elevational shifts of upper species limits in response to recent climate warming in the Qinling Mountains, North-central China

机译:中国中北部秦岭地区近期气候变暖对物种上限的海拔高度变化的影响

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摘要

Examinations of upper elevational distribution limits of tree species can provide indications of how subalpine vegetation responds to the ongoing climate warming. Dynamics and functional mechanisms of elevational treelines are reasonably well understood, while explanations for tree species-specific upper elevational distribution limits below the treeline still remain unclear. In this study, we used a state-of-the-art dendroecological approach to reconstruct long-term changes of species-specific upper elevational distribution limits of different plant functional type (i.e., light-demanding deciduous coniferous larch at treeline, shade-tolerant evergreen coniferous fir and shade-intolerant deciduous broad-leaved birch below treeline) along elevational gradients in the Qinling Mountains of north-central China. Over the past three centuries, all the upper species limits shifted up-slope as a response to climate warming. However, the warming-induced upslope migrations showed substantial differences, displaying the maximum upward shift of larch with an average elevation of 24.7 m during the past century, while only a slight advance of the non-treeline tree species. The disparity in elevational advance of upper species limits might be attributable to the presence of interspecific competition, showing that the non-treeline tree species experienced intermediate interspecific competition while the treeline tree species experienced no interspecific competition. Thus, our findings suggested that in addition to climate warming, biotic interaction may contribute much to shaping the species-specific upper limit dynamics. This study not only enhanced mechanistic understanding of long-term species-specific upper elevational distribution limit changes, but also highlighted the jointly effects of rising temperatures and species interactions on subalpine vegetation dynamics.
机译:对树种的海拔分布上限的检查可以提供指示,说明亚高山植被如何对持续的气候变暖作出反应。海拔树线的动力学和功能机制得到了很好的理解,而对于树以下的特定树种特定的海拔高度上限的解释仍然不清楚。在这项研究中,我们使用了最新的树状生态学方法来重建不同植物功能类型(例如,在树线处耐光的落叶针叶落叶松,耐荫性)的物种特定的高海拔分布限制的长期变化。常绿的针叶冷杉和树荫下不耐荫的落叶阔叶桦树)沿中北部秦岭的海拔梯度分布。在过去的三个世纪中,作为对气候变暖的反应,所有物种的上限都向上倾斜。然而,变暖引起的上坡迁移表现出很大的差异,在过去的一个世纪中,落叶松的最大上移幅度为24.7 m,而非树型树种仅略有进步。物种上限海拔高度升高的差异可能归因于种间竞争的存在,这表明非树种树种经历了中间种间竞争,而树种没有经历种间竞争。因此,我们的研究结果表明,除了气候变暖以外,生物相互作用还可能有助于塑造特定物种的上限动力学。这项研究不仅增强了对长期特定物种的高海拔分布极限变化的机械理解,而且强调了温度升高和物种相互作用对亚高山植被动力学的共同影响。

著录项

  • 来源
    《The Science of the Total Environment》 |2020年第1期|135718.1-135718.13|共13页
  • 作者单位

    Key Laboratory of Aquatic Botany and Watershed Ecology Wuhan Botanical Garden Chinese Academy of Sciences Wuhan 430074 PR China Center for Plant Ecology Core Botanical Gardens Chinese Academy of Sciences Wuhan 430074 PR China The University of Chinese Academy of Sciences Beijing 100049 PR China;

    Key Laboratory of Aquatic Botany and Watershed Ecology Wuhan Botanical Garden Chinese Academy of Sciences Wuhan 430074 PR China Center for Plant Ecology Core Botanical Gardens Chinese Academy of Sciences Wuhan 430074 PR China College of Science Tibet University Lhasa 850000 PR China;

    Administration of Foping National Nature Reserve Foping 723400 PR China;

    Key Laboratory of Aquatic Botany and Watershed Ecology Wuhan Botanical Garden Chinese Academy of Sciences Wuhan 430074 PR China Center for Plant Ecology Core Botanical Gardens Chinese Academy of Sciences Wuhan 430074 PR China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Climate warming; Interspecific competition; Non-treeline tree species; The Qinling Mountains; Upper species limits;

    机译:气候变暖;种间竞争;非林木树种;秦岭物种上限;
  • 入库时间 2022-08-18 05:24:57

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