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Constrained growth flips the direction of optimal phenological responses among annual plants.

机译:受限制的增长颠覆了一年生植物中最佳物候反应的方向。

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摘要

Phenological changes among plants due to climate change are well documented, but often hard to interpret. In order to assess the adaptive value of observed changes, we study how annual plants with and without growth constraints should optimize their flowering time when productivity and season length changes. We consider growth constraints that depend on the plant's vegetative mass: self-shading, costs for nonphotosynthetic structural tissue and sibling competition. We derive the optimal flowering time from a dynamic energy allocation model using optimal control theory. We prove that an immediate switch (bang-bang control) from vegetative to reproductive growth is optimal with constrained growth and constant mortality. Increasing mean productivity, while keeping season length constant and growth unconstrained, delayed the optimal flowering time. When growth was constrained and productivity was relatively high, the optimal flowering time advanced instead. When the growth season was extended equally at both ends, the optimal flowering time was advanced under constrained growth and delayed under unconstrained growth. Our results suggests that growth constraints are key factors to consider when interpreting phenological flowering responses. It can help to explain phenological patterns along productivity gradients, and links empirical observations made on calendar scales with life-history theory.
机译:由于气候变化,植物之间的物候变化已得到充分记录,但通常难以解释。为了评估观察到的变化的适应性价值,我们研究了当生产力和季节长度发生变化时,有无生长限制的一年生植物应如何优化其开花时间。我们认为生长限制取决于植物的营养质量:自我遮蔽,非光合作用结构组织的成本和同级竞争。我们使用最佳控制理论从动态能量分配模型得出最佳开花时间。我们证明了从营养生长到生殖生长的即时转换(控制转换)在生长受限和死亡率恒定的情况下是最佳的。提高平均生产力,同时保持季节长度恒定和不受限制的生长,会延迟最佳开花时间。当生长受到限制并且生产力相对较高时,最佳开花时间反而增加了。当生长季节的两端均等延长时,最佳开花时间在受限制的生长条件下提前,而在不受限制的生长条件下则推迟。我们的结果表明,生长限制是解释物候开花反应时要考虑的关键因素。它可以帮助解释生产率梯度上的物候模式,并将对历法尺度的经验观察与生活史理论联系起来。

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