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Phenotypic Plasticity of Leaf Shape along a Temperature Gradient in Acer rubrum

机译:红枫叶温度梯度下叶形的表型可塑性

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摘要

Both phenotypic plasticity and genetic determination can be important for understanding how plants respond to environmental change. However, little is known about the plastic response of leaf teeth and leaf dissection to temperature. This gap is critical because these leaf traits are commonly used to reconstruct paleoclimate from fossils, and such studies tacitly assume that traits measured from fossils reflect the environment at the time of their deposition, even during periods of rapid climate change. We measured leaf size and shape in Acer rubrum derived from four seed sources with a broad temperature range and grown for two years in two gardens with contrasting climates (Rhode Island and Florida). Leaves in the Rhode Island garden have more teeth and are more highly dissected than leaves in Florida from the same seed source. Plasticity in these variables accounts for at least 6–19 % of the total variance, while genetic differences among ecotypes probably account for at most 69–87 %. This study highlights the role of phenotypic plasticity in leaf-climate relationships. We suggest that variables related to tooth count and leaf dissection in A. rubrum can respond quickly to climate change, which increases confidence in paleoclimate methods that use these variables.
机译:表型可塑性和遗传测定对于了解植物如何对环境变化做出响应都非常重要。但是,人们对叶齿和叶片解剖对温度的塑性响应知之甚少。这一差距至关重要,因为这些叶片特征通常用于从化石中重建古气候,并且此类研究默认地认为,从化石中测得的特征即使在快速的气候变化时期也能反映其沉积时的环境。我们测量了来自四个种子来源且温度范围较广的宏cer树的叶子大小和形状,并在两个气候相对不同的花园(罗德岛和佛罗里达州)中生长了两年。与来自同一种子源的佛罗里达州的叶子相比,罗德岛州花园中的叶子具有更多的牙齿,并且被更高度地解剖。这些变量的可塑性至少占总变异的6-19%,而生态型之间的遗传差异可能最多占69-87%。这项研究强调了表型可塑性在叶片-气候关系中的作用。我们建议,与红曲霉齿数和叶片解剖相关的变量可以对气候变化做出快速响应,从而增加了对使用这些变量的古气候方法的信心。

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