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Testing the adaptive plasticity of Iris pumila leaf traits to natural light conditions using phenotypic selection analysis

机译:使用表型选择分析测试鸢尾叶片性状对自然光条件的适应性可塑性

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A multivariate selection analysis has been used to test the adaptiveness of several In's pumila leaf traits that display plasticity to natural light conditions. Siblings of a synthetic population comprising 31 families of two populations from contrasting light habitats were grown at an open dune site and in the understory of a Pinus nigra stand in order to score variation in phenotypic expression of six leaf traits: number of senescent leaves, number of live leaves, leaf length, leaf width, leaf angle, and specific leaf area. The ambient light conditions affected the values of all traits studied except for specific leaf area. In accordance to ecophysiological expectations for an adaptive response to light, both leaf length and width were significantly greater while the angle between sequential leaves was significantly smaller in the woodland understory than at the exposed dune site. The relationship between leaf traits and vegetative fitness (total leaf area) differed across light habitats as predicted by functional hypotheses. The standardized linear selection gradient (beta') for leaf length and width were positive in sign in both environments, but their magnitude for leaf length was higher in the shade than under full sunlight. Since plasticity of leaf length in the woodland shade has been recognized as adaptive, fitness cost of producing plastic change in leaf length was assessed. In both of the available methods used, the two-step and the multivariate regression procedures, a rather high negative association between the fitness value and the plasticity of leaf length was obtained, indicating a cost of plasticity. The selection gradient for leaf angle was weak and significant only in the woodland understory Genetic correlations between trait expressions in contrasting light environments were negative in sign and low in magnitude, implying a significant genetic variation for plasticity in these leaf traits. Furthermore, leaf length and leaf width were found to be genetically positively coupled, which indicates that there is a potential for these two traits to evolve toward their optimal phenotypic values even faster than would be expected if they were genetically independent. (C) Elsevier, Paris [References: 40]
机译:多变量选择分析已用于测试几种In's pumila叶性状的适应性,这些性状表现出对自然光条件的可塑性。为了对六个叶片性状的表型表达进行评分,在一个开放的沙丘站点和黑松林下层中生长了一个由31个来自两个相反种群的种群的家庭组成的兄弟姐妹,这些种群来自相反的光生境,以便对六种叶片性状的表型表达进行评分:活叶,叶长,叶宽,叶角和特定叶面积。除了特定的叶面积外,环境光照条件影响了所有研究性状的值。根据对光的适应性反应的生态生理学期望,林地下层的叶片长度和宽度均显着较大,而相继叶片之间的角度显着小于裸露的沙丘处。如功能假设所预测,在轻型生境中,叶片性状与营养适应性(总叶面积)之间的关系有所不同。在两种环境中,叶片长度和宽度的标准化线性选择梯度(beta')在符号上均为正,但是在阴影下其叶片长度的大小比在阳光直射下更高。由于林地树荫下叶片长度的可塑性已被认为是适应性的,因此评估了叶片长度产生塑性变化的适应性成本。在两步和多元回归程序中使用的两种可用方法中,适应度值与叶片长度的可塑性之间获得了相当高的负相关性,表明可塑性成本。叶片角的选择梯度是弱的,仅在林地下有显着性。在相反的光照环境下,性状表达之间的遗传相关性为负号,幅度较小,这意味着这些性状的可塑性具有显着的遗传变异。此外,发现叶长和叶宽在遗传上呈正相关,这表明这两个性状有可能朝着其最佳表型值进化,甚至比其在基因上独立的情况下更快。 (C)Elsevier,巴黎[参考编号:40]

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