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Changes in drought response strategies with ontogeny in Quercus rubra:implications for scaling from seedlings to mature trees

机译:栎属个体发育的干旱应对策略变化:从幼苗到成熟树木的结垢意义

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We investigated scaling of physiological parameters between age classes of Quercus rubra by combining in situ field measurements with an experimental approach. In the in situ field study, we investigated changes in drought response with age in seedlings, juveniles, and mature trees of Q. rubra. Throughout the particularly dry summer of 1995 and the unusually wet summer of 1996 in New England, we measured water potential of leaves (Psi(Leaf)) and gas exchange of plants at three sites at the Harvard Forest in Petersham, Massachusetts. In order to determine what fraction of the measured differences in gas exchange between seedlings and mature trees was due to environment versus ontogeny, an experiment was conducted in which seedlings were grown under light and soil moisture regimes simulating the environment of mature trees. The photosynthetic capacity of mature trees was three-fold greater than that of seedlings during the wet year, and six-fold greater during the drought year. The seedling experiment demonstrated that the difference in photosynthetic capacity between seedlings and mature trees is comprised equally of an environmental component (50%) and an ontogenetic component (50%) in the absence of water limitation. Photosynthesis was depressed more severely in seedlings than in mature trees in the drought year relative to the wet year, while juveniles showed an intermediate response. Throughout the drought, the predawn leaf water potential (Psi(PD)) of seedlings became increasingly negative (-0.4 to -1.6 MPa), while that of mature trees became only slightly more negative (-0.2 to -0.5 MPa). Again, juveniles showed an intermediate response (-0.25 to -0.8 MPa). During the wet summer of 1996, however, there was no difference in Psi(PD) between seedlings, juveniles and mature trees. During the dry summer of 1995, seedlings were more responsive to a major rain event than mature trees in terms of Psi(Leaf), suggesting that the two age classes depend on different water sources. In all age classes, instantaneous measurements of intrinsic water use efficiency (WUEi), defined as C assimilation rate divided by stomatal conductance, increased as the drought progressed, and all age classes halt higher WUEi during the drought year than in the wet year. Mature trees, however, showed a greater ability to increase their WUEi in response to drought. Integrated measurements of WUE from C isotope discrimination (Delta) of leaves indicated higher WUE in mature trees than juveniles and seedlings. Differences between years, however, could not be distinguished, probably due to the strong bias in C isotope fractionation at the time of leaf production, which occurred prior to the onset of drought conditions in 1995. From this study, we arrive at two main conclusions:
机译:我们通过结合原位实地测量和实验方法研究了栎属各年龄组之间生理参数的缩放。在原位野外研究中,我们调查了Q. rubra幼苗,幼树和成熟树的干旱响应随年龄的变化。在新英格兰1995年特别干燥的夏季和1996年异常潮湿的整个夏季期间,我们在马萨诸塞州彼得森的哈佛森林的三个地点测量了叶片的水势(Psi(Leaf))和植物的气体交换。为了确定在测量的幼苗和成熟树木之间的气体交换差异中,有多少比例是由于环境对个体发育造成的,进行了一个实验,其中在模拟成熟树木环境的光照和土壤水分条件下生长幼苗。在雨季,成熟树木的光合作用能力是幼苗的三倍,而在干旱年份则是六倍。幼苗实验表明,在没有水分限制的情况下,幼苗与成熟树木之间光合作用能力的差异由环境成分(50%)和个体发育成分(50%)组成。与干旱年份相比,干旱年份的幼苗比成熟树木的光合作用受压更为严重,而幼虫表现出中等的响应。在整个干旱期间,幼苗的黎明前叶片水势(Psi(PD))变得越来越负(-0.4至-1.6 MPa),而成熟树木的水分潜能仅略微更高(-0.2至-0.5 MPa)。再次,青少年显示出中等反应(-0.25至-0.8 MPa)。但是,在1996年的潮湿夏季,幼苗,幼树和成熟树木之间的Psi(PD)值没有差异。在1995年的干燥夏季,就Psi(Leaf)而言,幼苗对主要降雨事件的响应要比成熟树木更为敏感,这表明这两个年龄类别取决于不同的水源。在所有年龄段中,内在水分利用效率(WUEi)的瞬时测量值(定义为碳同化率除以气孔导度)随干旱的进行而增加,并且在干旱年份,所有年龄段的WUEi均比湿润年份高。然而,成熟的树木表现出更大的增加其WUEi的能力以应对干旱。从叶片的C同位素判别(Delta)得出的WUE的综合测量结果表明,成熟树木中的WUE高于少年和幼苗。但是,无法区分年份之间的差异,这可能是由于叶片生产时碳同位素分馏的强烈偏差,这种偏差是在1995年干旱开始之前发生的。从这项研究中,我们得出两个主要结论:

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