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The 4-dimensional plant: effects of wind-induced canopy movement on light fluctuations and photosynthesis

机译:4维植物:风生冠层运动对光起伏和光合作用的影响

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摘要

Physical perturbation of a plant canopy brought about by wind is a ubiquitous phenomenon and yet its biological importance has often been overlooked. This is partly due to the complexity of the issue at hand: wind-induced movement (or mechanical excitation) is a stochastic process which is difficult to measure and quantify; plant motion is dependent upon canopy architectural features which, until recently, were difficult to accurately represent and model in 3-dimensions; light patterning throughout a canopy is difficult to compute at high-resolutions, especially when confounded by other environmental variables. Recent studies have reinforced the expectation that canopy architecture is a strong determinant of productivity and yield; however, links between the architectural properties of the plant and its mechanical properties, particularly its response to wind, are relatively unknown. As a result, biologically relevant data relating canopy architecture, light- dynamics, and short-scale photosynthetic responses in the canopy setting are scarce. Here, we hypothesize that wind-induced movement will have large consequences for the photosynthetic productivity of our crops due to its influence on light patterning. To address this issue, in this study we combined high resolution 3D reconstructions of a plant canopy with a simple representation of canopy perturbation as a result of wind using solid body rotation in order to explore the potential effects on light patterning, interception, and photosynthetic productivity. We looked at two different scenarios: firstly a constant distortion where a rice canopy was subject to a permanent distortion throughout the whole day; and secondly, a dynamic distortion, where the canopy was distorted in incremental steps between two extremes at set time points in the day. We find that mechanical canopy excitation substantially alters light dynamics; light distribution and modeled canopy carbon gain. We then discuss methods required for accurate modeling of mechanical canopy excitation (here coined the 4-dimensional plant) and some associated biological and applied implications of such techniques. We hypothesize that biomechanical plant properties are a specific adaptation to achieve wind-induced photosynthetic enhancement and we outline how traits facilitating canopy excitation could be used as a route for improving crop yield.
机译:风引起的植物冠层的物理扰动是普遍存在的现象,但是其生物学重要性常常被忽视。部分原因是手头问题的复杂性:风引起的运动(或机械激励)是一个随机过程,难以测量和量化。植物的运动取决于树冠的建筑特征,直到最近,这些特征很难精确地表示和建模为3维;难以以高分辨率计算整个树冠上的光图案,尤其是在与其他环境变量混淆的情况下。最近的研究加强了人们对树冠结构是生产力和产量的重要决定因素的期望。然而,植物的建筑特性与其机械特性,尤其是其对风的响应之间的联系相对未知。结果,与冠层结构,光动力学和冠层环境中短尺度光合作用相关的生物学相关数据很少。在这里,我们假设风引起的运动由于其对光图案的影响,将对我们的农作物的光合生产力产生重大影响。为了解决这个问题,在这项研究中,我们结合了对植物冠层的高分辨率3D重建与使用固体旋转产生的风引起的冠层摄动的简单表示,以探讨对光图案,拦截和光合生产力的潜在影响。我们研究了两种不同的情况:首先是不断变形的稻冠,整天都受到永久变形;其次,是动态失真,在一天中的设定时间点,顶篷在两个极端之间逐步递增变形。我们发现,机械冠层激发极大地改变了光动力学。光分布和建模的冠层碳增益。然后,我们讨论了对机械冠层激励进行精确建模(此处称为4维植物)所需的方法,以及此类技术的一些相关生物学和应用含义。我们假设生物力学的植物特性是实现风诱导的光合增强的特定适应,并且我们概述了促进冠层激发的性状如何用作提高作物产量的途径。

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