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首页> 外文期刊>Functional Plant Biology >Reexamining the empirical relation between plant growth and leaf photosynthesis.
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Reexamining the empirical relation between plant growth and leaf photosynthesis.

机译:重新审查植物生长与叶片光合作用之间的经验关系。

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Technological advances during the past several decades have greatly enhanced our ability to measure leaf photosynthesis virtually anywhere and under any condition. Associated with the resulting proliferation of gas-exchange data is a lingering uncertainty regarding the importance of such measurements when it comes to explaining intrinsic causes of plant growth variation. Accordingly, in this paper we rely on a compilation of data to address the following questions: from both statistical and mechanistic standpoints, how closely does plant growth correlate with measures of leaf photosynthesis? Moreover, in this context, does the importance of leaf photosynthesis as an explanatory variable differ among growth light environments? Across a wide array of species and environments, relative growth rate (RGR) was positively correlated with daily integrals of photosynthesis expressed per unit leaf area (Aarea), leaf mass (Amass), and plant mass (Aplant). The amount of RGR variation explained by these relationships increased from 36% for the former to 93% for the latter. Notably, there was close agreement between observed RGR and that estimated from Aplant after adjustment for theoretical costs of tissue construction. Overall, based on an analysis of growth response coefficients (GRCs), gross assimilation rate (GAR), a photosynthesis-based estimate of biomass gain per unit leaf area, explained about as much growth variation as did leaf mass ratio (LMR) and specific leaf area (SLA). Further analysis of GRCs indicated that the importance of GAR in explaining growth variation increased with increasing light intensity. Clearly, when considered in combination with other key determinants, appropriate measures of leaf gas exchange effectively capture the fundamental role of leaf photosynthesis in plant growth variation..
机译:在过去的几十年中,技术的进步极大地增强了我们在几乎任何地方和任何条件下测量叶片光合作用的能力。在解释植物生长变化的内在原因时,与气体交换数据的扩散相关联的是关于此类测量的重要性的不确定性。因此,在本文中,我们依靠数据汇编来解决以下问题:从统计学和机理的角度来看,植物生长与叶片光合作用的度量之间有多紧密的联系?此外,在这种情况下,叶片光合作用作为解释变量的重要性在生长光环境中是否有所不同?在各种各样的物种和环境中,相对生长率(RGR)与每单位叶面积(Aarea),叶质量(Amass)和植物质量(Aplant)表示的光合作用的每日积分呈正相关。这些关系解释的RGR变化量从前者的36%增加到后者的93%。值得注意的是,在根据组织构造的理论成本进行调整之后,观察到的RGR与Aplant估计的RGR之间存在密切的一致性。总体而言,基于对生长响应系数(GRC),总同化率(GAR)的分析,基于光合作用的单位叶面积生物量增益估算,解释了与叶质量比(LMR)一样多的生长变化,具体叶面积(SLA)。对GRC的进一步分析表明,GAR在解释生长变化中的重要性随光强度的增加而增加。显然,当与其他关键因素结合考虑时,适当的叶片气体交换措施可以有效地捕捉叶片光合作用在植物生长变异中的基本作用。

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