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Environmental Controls of Foliar Respiration in Arctic Tundra Plants.

机译:北极苔原植物叶片呼吸的环境控制。

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摘要

The Arctic is warming at rapid, unprecedented rates, causing cascading ecological and environmental changes that threaten to destabilize the vast amounts of carbon stored in the vegetation and soils of the tundra. Foliar gas exchange, which is responsible for the initial fixation of carbon, is likely to respond to warming and associated environmental change in tundra plants, though the direction and degree of these responses are not well studied. This dissertation aims to quantify multiple cellular and leaf-level processes underlying carbon cycling in tundra plants, and to address the responses of these processes to abiotic and biotic effects of warming in the Arctic.;To assess the impact of environmental change on foliar gas exchange physiology of tundra plants, a series of empirical studies were conducted on common and abundant plant species located near Toolik Lake, on the North Slope of Alaska. Long-term manipulated treatment plots that simulate the effects of climate change in this region, including elevated growth temperature and increased soil nutrient availability, served as the research setting for multiple experiments that addressed the response of variables such as foliar photosynthesis, respiration, photorespiration, mitochondria and chloroplast size and density, and physical leaf traits. Due to the extreme photoperiod experienced by arctic vegetation, respiration in the light (estimated using the Kok method) was quantified in addition to dark respiration for a more accurate depiction of plant carbon fluxes.;Individual studies, presented as dissertation chapters, examine the responses of the aforementioned variables to a gradient of soil nitrogen and phosphorus availability; decades-long warming and fertilization; seasonal timing and short-term intra-season temperature fluctuations; and canopy position within a shrub community. Collectively, the results of these studies find respiration to be more sensitive to long- and short-term environmental variation than photosynthesis, indicating a decoupling of the processes controlling foliar carbon cycling. Across all species and environmental conditions, respiration is inhibited by light, emphasizing the need for the estimation of this physiological phenomena and its inclusion in regional terrestrial ecosystem carbon models. Also, foliar carbon fluxes in woody shrub species are significantly higher than non-shrub species across experiments, a finding that demands attention given the general trend of increasing shrub cover associated with warming in the Arctic tundra. The results presented in this study on the environmental controls on leaf-level gas exchange allow for a more thorough understanding of the current carbon balance of this region and provides new data the can inform predictions and models of its future status.
机译:北极正以前所未有的速度迅速变暖,导致一系列的生态和环境变化,有可能破坏冻原植被和土壤中储存的大量碳的稳定性。尽管未对这些反应的方向和程度进行充分研究,但负责碳的初始固定的叶面气体交换很可能会对苔原植物的变暖和相关的环境变化做出反应。本论文旨在量化苔原植物碳循环的多个细胞和叶水平过程,并探讨这些过程对北极变暖的非生物和生物效应的响应。评估环境变化对叶片气体交换的影响。苔原植物的生理学,对位于阿拉斯加北坡Toolik湖附近的常见和丰富的植物物种进行了一系列的经验研究。可以模拟该地区气候变化影响的长期可控处理区,包括生长温度升高和土壤养分利用率提高,是多项实验的研究环境,这些实验解决了诸如叶面光合作用,呼吸作用,光呼吸,线粒体和叶绿体的大小和密度,以及叶片的物理特性。由于北极植被经历了极端的光周期,因此除了黑暗呼吸以外,还对了光呼吸(使用Kok方法估算)进行了定量,以更准确地描绘植物的碳通量。上述变量对土壤氮和磷有效性的梯度影响;长达数十年的升温和施肥;季节变化和短期季节内温度波动;和灌木丛中的树冠位置。总体而言,这些研究的结果发现,呼吸对长期和短期环境变化的影响比光合作用更为敏感,这表明控制叶面碳循环的过程脱钩了。在所有物种和环境条件下,光线都会抑制呼吸作用,强调需要估计这种生理现象并将其纳入区域陆地生态系统碳模型中。此外,整个实验期间,木质灌木物种中的叶面碳通量显着高于非灌木物种,鉴于与北极苔原变暖相关的灌木覆盖增加的总体趋势,这一发现值得关注。本研究中有关叶级气体交换的环境控制的研究结果使人们可以更全面地了解该地区当前的碳平衡,并提供新的数据,从而可以为该州的未来状况提供预测和模型。

著录项

  • 作者

    Heskel, Mary A.;

  • 作者单位

    Columbia University.;

  • 授予单位 Columbia University.;
  • 学科 Biology Botany.;Environmental Sciences.;Biology Ecology.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 234 p.
  • 总页数 234
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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