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Thermonastic leaf movements in Rhododendron during freeze-thaw events: Patterns, functional significances, and causes

机译:冻融事件中杜鹃花的热风叶片运动:模式,功能意义和原因

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摘要

Adaptations to freezing air temperature in temperate understory species of Rhododendron include physiological processes, anatomical changes, and thermonastic leaf movements. Leaves roll transversely and leaf-lamina angle decreases in relation to horizontal as temperatures decrease below a critical freezing temperature. Within the genus Rhododendron, tolerance of cold conditions is greater in species with thermonastic leaf movements than species without. The leaf movements protect critical physiological processes such as photosynthesis from damage due to the synergistic effects of cold temperatures, and high light common to winter conditions in temperate forests. In particular, the absence of these leaf movements increases photoinhibition, and species that lack these adaptations exhibit distinctly different physiological and anatomical mechanisms of photo-protection during cold conditions. The biomechanical or physiological causes for thermonastic leaf movements have been difficult to resolve because of the lack of distinctive anatomical and morphological features associated with these leaf movements. Nevertheless, it is firmly established that the lower the petiole turgor potential the lower the leaf-lamina angle in relation to horizontal. However, the cause of leaf rolling is unclear. In this study, experiments on sectioned leaves implicate both longitudinal and lateral thermonastic rolling forces, likely driven by water redistribution between apoplast and symplast, and regulated by aquaporins. This should result in abaxial-adaxial differential turgor pressures that vary markedly along the mediolateral direction. We postulate that the combined effect of the leaf morphology, anisotropy in rolling forces and the geometrical constraints due to the relatively stiff midrib causes leaf rolling, consistent with the mechanics of a thin plate with anisotropic spontaneous curvature. We expect a correlation between the rolling forces and veination microstructure that remains to be explored for a complete understanding of leaf adaptations to freezing in understory evergreen Rhododendron species, as well as more general thermonastic responses
机译:杜鹃属温带林下种对冻结空气温度的适应包括生理过程,解剖变化和热感叶片运动。当温度降至临界冷冻温度以下时,叶片横向滚动,叶片层角相对于水平方向减小。在杜鹃花属中,具有热叶片运动的物种对寒冷条件的耐受性比没有杜鹃花的物种更高。叶片运动可以保护关键的生理过程,例如光合作用,免受寒冷温度和温带森林冬季条件下常见的强光协同作用的损害。特别是,没有这些叶片运动会增加光抑制作用,而缺乏这些适应性的物种在寒冷条件下会表现出明显不同的光保护生理和解剖机制。由于缺乏与这些叶片运动相关的独特的解剖学和形态学特征,难以解决热力学叶片运动的生物力学或生理原因。然而,已经确定的是,叶柄膨大势能越低,相对于水平方向的叶片层角越小。但是,卷叶的原因尚不清楚。在这项研究中,对切片叶的实验暗示了纵向和横向的热轧滚动力,这可能是由质外体和共质体之间的水重新分布所驱动,并受到水通道蛋白的调节。这将导致沿后外侧方向明显变化的背-背差压。我们假设叶片形态,轧制力各向异性和中肋相对较硬引起的几何约束的综合作用导致叶片轧制,这与具有各向异性自发曲率的薄板的力学原理一致。我们期望滚动力和脉管微观结构之间的相关性尚待探索,以全面了解下层常绿杜鹃物种对叶片的冷冻适应性,以及更一般的热感反应

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