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Light and Nutrient Dependent Responses in Secondary Metabolites of Plantago lanceolata Offspring Are Due to Phenotypic Plasticity in Experimental Grasslands

机译:车前子后代次生代谢产物的光和营养依赖性响应是由于实验草原的表型可塑性

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摘要

A few studies in the past have shown that plant diversity in terms of species richness and functional composition can modify plant defense chemistry. However, it is not yet clear to what extent genetic differentiation of plant chemotypes or phenotypic plasticity in response to diversity-induced variation in growth conditions or a combination of both is responsible for this pattern. We collected seed families of ribwort plantain (Plantago lanceolata) from six-year old experimental grasslands of varying plant diversity (Jena Experiment). The offspring of these seed families was grown under standardized conditions with two levels of light and nutrients. The iridoid glycosides, catalpol and aucubin, and verbascoside, a caffeoyl phenylethanoid glycoside, were measured in roots and shoots. Although offspring of different seed families differed in the tissue concentrations of defensive metabolites, plant diversity in the mothers' environment did not explain the variation in the measured defensive metabolites of P. lanceolata offspring. However secondary metabolite levels in roots and shoots were strongly affected by light and nutrient availability. Highest concentrations of iridoid glycosides and verbascoside were found under high light conditions, and nutrient availability had positive effects on iridoid glycoside concentrations in plants grown under high light conditions. However, verbascoside concentrations decreased under high levels of nutrients irrespective of light. The data from our greenhouse study show that phenotypic plasticity in response to environmental variation rather than genetic differentiation in response to plant community diversity is responsible for variation in secondary metabolite concentrations of P. lanceolata in the six-year old communities of the grassland biodiversity experiment. Due to its large phenotypic plasticity P. lanceolata has the potential for a fast and efficient adjustment to varying environmental conditions in plant communities of different species richness and functional composition.
机译:过去的一些研究表明,就物种丰富度和功能组成而言,植物多样性可以改变植物的防御化学。然而,尚不清楚在多大程度上植物化学型或表型可塑性的遗传分化响应于由多样性引起的生长条件变化或两者的结合而引起的这种模式。我们从具有六种不同植物多样性的六岁实验草原上收集了核仁车前草(车前草)的种子家族(耶拿实验)。这些种子家族的后代在标准条件下生长,具有两种水平的光照和养分。在根部和芽中测量了虹彩的苷,梓醇和aucubin以及藜芦苷(一种咖啡酰苯基乙醛糖苷)。尽管不同种子家族的后代防御代谢产物的组织浓度不同,但母亲环境中的植物多样性不能解释所测定的轮叶对虾防御代谢产物的变化。但是,根和芽中次生代谢产物的水平受光和养分利用率的强烈影响。在强光条件下发现了最高浓度的鸢尾糖苷和马齿bas苷,养分利用率对在强光条件下生长的植物中的鸢尾糖苷浓度具有积极影响。然而,无论光照如何,在高营养水平下马齿bas甙的浓度都会降低。我们温室研究的数据表明,响应于环境变化的表型可塑性而不是响应于植物群落多样性的基因分化是造成草地生物多样性实验六岁社区中轮叶丙二酸次生代谢产物浓度变化的原因。由于其大的表型可塑性,轮叶假单胞菌有可能快速有效地适应不同物种丰富度和功能组成的植物群落中变化的环境条件。

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