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Consequences of elevated carbon dioxide and ozone for interactions between deciduous trees and lepidopteran folivores.

机译:落叶树和鳞翅目叶片之间相互作用的二氧化碳和臭氧浓度升高的后果。

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Projections indicate that approximately half of the world's forests are expected to experience elevated levels of CO2 and O3 by 2100. These pollutants are known to alter various aspects of tree phytochemistry, and in turn, insect performance. The research presented here focuses on two areas in which our knowledge of CO2 and O3 effects on tree-insect interactions is limited. First, I investigated the effects of CO2 and seasonally-mediated changes in foliar quality on multiple generations of a leaf-chewing insect. Second, I determined the individual and interactive effects of CO2 and O3 on foliar quality and on the performance of leaf-feeding insects.; CO2 enrichment and seasonal progression affected tree phytochemistry and, in turn, insect performance, but the magnitude and direction of change depended on tree species. Furthermore, this study found evidence that the effects of CO2 varied over multiple insect generations, but the response differed among tree species. Based on the combined effects of CO 2 enrichment and seasonal progression on two insect generations, this study suggests that insect host utilization patterns might be altered, resulting in changes in community composition.; Tree phytochemistry and insect performance responded differently to elevated levels of CO2 and O3 depending on whether the pollutants were administered alone or in combination. Furthermore, CO2 and O3 affected tree-insect interactions differently depending on plant genotype. Elevated O3 appeared to affect foliar chemistry more than elevated CO2; however, the overall response of phytochemistry to both pollutants was moderate. These slight changes in phytochemistry typically translated to moderate changes in larval performance. However, generalizing the response of elevated CO2 and O3 on plant-tree interactions is difficult because each tree and insect species responded differently. Furthermore, other aspects of insect performance, not just larval growth and development, were affected by CO2 and O3. These studies demonstrated that under future atmospheric conditions, where more than one pollutant is likely to affect plant-insect interactions, relationships between plants and insects will likely be altered although the magnitude of responses will depend on tree and insect species.
机译:预测表明,到2100年,全球大约有一半的森林预计会出现较高水平的CO 2 和O 3 。这些污染物已知会改变树木植物化学的各个方面,反过来,昆虫的表现。这里介绍的研究集中在两个领域,在这些领域中,我们对CO 2 和O 3 对树-昆虫相互作用的影响的知识是有限的。首先,我研究了CO 2 - 和季节性介导的叶面质量变化对多代咀嚼昆虫的影响。其次,我确定了CO 2 和O 3 对叶片质量和食叶昆虫的性能的个体和相互作用影响。 CO 2 的富集和季节变化影响树木的植物化学,进而影响昆虫的生长,但变化的幅度和方向取决于树木的种类。此外,该研究发现证据表明,CO 2 的作用在多个昆虫世代中均发生变化,但其反应在树种之间有所不同。基于CO 2 富集和季节进程对两个昆虫世代的综合影响,本研究表明昆虫宿主的利用方式可能会发生改变,从而导致群落组成发生变化。根据污染物是单独施用还是联合施用,树木的植物化学和昆虫行为对CO 2 和O 3 水平升高的反应不同。此外,CO 2 和O 3 根据植物基因型对树-昆虫相互作用的影响不同。升高的O 3 似乎比升高的CO 2 对叶化学的影响更大。然而,植物化学对两种污染物的总体反应是中等的。这些植物化学反应的轻微变化通常会转化为幼虫性能的中等变化。然而,由于每棵树和昆虫物种的反应不同,因此难以概括升高的CO 2 和O 3 对植物-树木相互作用的响应。此外,CO 2 和O 3 不仅影响幼虫的生长发育,而且影响昆虫性能。这些研究表明,在未来的大气条件下,一种以上的污染物可能会影响植物与昆虫的相互作用,尽管响应的幅度取决于树木和昆虫的种类,但植物与昆虫之间的关系可能会发生变化。

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