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最佳的叶片寿命策略决定了个体发育过程中的V动态。

Optimal leaf life strategies determine V dynamic during ontogeny.

作者信息

Detto Matteo, Xu Xiangtao

机构信息

Department of Ecology and Evolutionary Biology, Princeton University, Princeton, NJ, 08544, USA.

Smithsonian Tropical Research Institute, Balboa, 0843-03092, Republic of Panama.

出版信息

New Phytol. 2020 Oct;228(1):361-375. doi: 10.1111/nph.16712.

DOI:10.1111/nph.16712
PMID:32473028
Abstract

Leaf photosynthetic properties, for example the maximum carboxylation velocity or V , change with leaf age due to ontogenetic processes. This study introduces an optimal dynamic allocation scheme to model changes in leaf-level photosynthetic capacity as a function of leaf biochemical constraints (costs of synthesis and defence), nitrogen availability and other environmental factors (e.g. light). The model consists of a system of equations describing RuBisCO synthesis and degradation within chloroplasts, defence and ageing at leaf levels, nitrogen transfer and carbon budget at plant levels. Model results show that optimal allocation principles explained RuBisCO dynamics with leaf age. An approximated analytical solution can reproduce the basic pattern of RuBisCO and V in rice and in two tropical tree species. The model also reveals leaf life complementarities that remained unexplained in previous approaches, as the interplay between V at maturation, life span and the decline in photosynthetic capacity with age. Furthermore, it explores the role of defence, which is not implemented in current models. This framework covers some of the existing gaps in integrating multiple processes across plant organs (chloroplast, leaf and whole plant) and is a first-step towards representing mechanistically leaf ontogenetic processes into physiological and ecosystem models.

摘要

叶片的光合特性,例如最大羧化速率或V,会因个体发育过程而随叶龄发生变化。本研究引入了一种最优动态分配方案,以模拟叶片水平光合能力的变化,该变化是叶片生化限制(合成和防御成本)、氮素可用性及其他环境因素(如光照)的函数。该模型由一组方程组组成,描述了叶绿体中核酮糖-1,5-二磷酸羧化酶/加氧酶(RuBisCO)的合成与降解、叶片水平的防御和衰老、植物水平的氮素转移以及碳收支。模型结果表明,最优分配原则解释了RuBisCO随叶龄的动态变化。一个近似解析解能够重现水稻以及两种热带树种中RuBisCO和V的基本模式。该模型还揭示了叶片寿命的互补性,这在之前的方法中并未得到解释,即成熟时的V、寿命以及光合能力随年龄的下降之间的相互作用。此外,它还探讨了防御的作用,而这在当前模型中并未实现。这个框架填补了整合跨植物器官(叶绿体、叶片和整株植物)的多个过程中存在的一些空白,是朝着将叶片个体发育过程机械地纳入生理和生态系统模型迈出的第一步。

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