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鹅掌楸树冠中叶柄力学、叶片倾斜度、形态以及与光照可利用性相关的支撑投入

Petiole mechanics, leaf inclination, morphology, and investment in support in relation to light availability in the canopy of Liriodendron tulipifera.

作者信息

Niinemets Ülo, Fleck Stefan

机构信息

Department of Plant Physiology, Institute of Molecular and Cell Biology, University of Tartu, Riia 23, 51010, Tartu, Estonia.

Department of Plant Ecology, University of Bayreuth, 95440, Bayreuth, Germany.

出版信息

Oecologia. 2002 Jun;132(1):21-33. doi: 10.1007/s00442-002-0902-z. Epub 2002 Jun 1.

Abstract

To determine the role of leaf mechanical properties in altering foliar inclination angles, and the nutrient and carbon costs of specific foliar angle variation patterns along the canopy, leaf structural and biomechanical characteristics, biomass partitioning into support, and foliar nitrogen and carbon concentrations were studied in the temperate deciduous species Liriodendron tulipifera L., which possesses large leaves on long petioles. We used beam theory to model leaf lamina as a uniform load, and estimated both the lamina and petiole flexural stiffness, which characterizes the resistance to bending of foliar elements at a common load and length. Petiole and lamina vertical inclination angles with respect to horizontal increased with increasing average daily integrated photon flux density (Q ). Yet, the light effects on lamina inclination angle were primary determined by the petiole inclination angle. Although the petioles and laminas became longer, and the lamina loads increased with increasing Q , the flexural stiffness of both lamina and petiole increased to compensate for this, such that the lamina vertical displacement was only weakly related to Q . In addition, increases and decreases in the petiole inclination angle with respect to the horizontal effectively reduced the distance of lamina load from the axis of rotation, thereby reducing the bending moments and lamina inclination due to gravity. We demonstrate that large investments, up to 30% of total leaf biomass, in petiole and large veins are necessary to maintain the lamina at a specific position, but also that light has no direct effect on the fractional biomass investment in support. However, we provide evidence that apart from light availability, structural and chemical characteristics of the foliage may also be affected by water stress, magnitude of which scales positively with Q .

摘要

为了确定叶片机械特性在改变叶倾角方面的作用,以及沿树冠特定叶角变化模式的养分和碳成本,我们对具有长叶柄上着生大叶片的温带落叶树种北美鹅掌楸(Liriodendron tulipifera L.)的叶片结构和生物力学特征、分配到支撑部分的生物量以及叶片氮和碳浓度进行了研究。我们使用梁理论将叶片薄片建模为均匀载荷,并估计了叶片薄片和叶柄的抗弯刚度,该刚度表征了在共同载荷和长度下叶元件对弯曲的抵抗力。叶柄和叶片相对于水平方向的垂直倾角随着日平均积分光子通量密度(Q)的增加而增加。然而,光对叶片倾角的影响主要由叶柄倾角决定。尽管叶柄和叶片变长,并且叶片载荷随着Q的增加而增加,但叶片薄片和叶柄的抗弯刚度都增加以对此进行补偿,使得叶片垂直位移与Q的关系较弱。此外,叶柄相对于水平方向倾角的增加和减小有效地减少了叶片载荷到旋转轴的距离,从而减少了由于重力引起的弯矩和叶片倾角。我们证明,在叶柄和大脉中投入高达总叶生物量30%的大量资源对于将叶片维持在特定位置是必要的,但光对支撑部分生物量分配比例没有直接影响。然而,我们提供的证据表明,除了光照可用性外,叶片的结构和化学特征也可能受到水分胁迫的影响,其强度与Q呈正相关。

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