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Covariation between leaf hydraulics and biomechanics is driven by leaf density in Mediterranean shrubs

机译:叶子液压和生物力学之间的协变度是由地中海灌木的叶密度驱动的

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Key messageLeaf density links the resistance to mechanical and hydraulic stress in Mediterranean shrubs as it is associated with the water potential at turgor loss and the moduli of elasticity and strength.AbstractUnderstanding the patterns of hydraulic and mechanical trait variation in vascular plants is critical to predicting species' stress tolerance. Although previous work has shown that hydraulic and mechanical traits are decoupled in stems, there is little information available for leaves, which are organs more diversified in structure, function, and possibly drought tolerance strategies across habitats. We tested for coordination between leaf hydraulic traits related to drought tolerance and the mechanical resistance of leaves, for 17 shrub species from the arid and semiarid vegetation of the California Floristic Province. Bayesian and phylogenetic correlations showed that across species, hydraulic and mechanical traits both had strong associations with the water potential at turgor loss, and with leaf tissue density. However, leaf maximum hydraulic conductance and the water potential at 50% and 80% loss of hydraulic conductance were statistically independent of two key mechanical traits, the leaf modulus of elasticity and leaf structural strength. Our results suggest that leaf biomechanical traits, which reflect construction costs and contribute to leaf longevity, are decoupled from hydraulic capacity and safety. The independence of hydraulic and mechanical protection in leaves enables a wide range of trait combinations in leaves, which would increase their adaptive potential across ecosystems.
机译:关键Messageaf Leaf密度链接地中海灌木的耐力抵抗力,因为它与Turgor损失的水势相关,并且弹性模量和强度。血管植物的液压和机械性状变化的模式对预测物种至关重要。 '压力耐受性。尽管以前的工作表明,液压和机械性状在茎中脱钩,但是叶片的信息很少,这是境遇结构,功能和可能的干旱耐受策略的器官更加多样化。我们在叶片液压性状与叶子的机械抗性相关的叶子液压性状与叶子的机械抗性之间进行了协调,来自加州植物省的干旱和半干旱植被的17种灌木。贝叶斯和系统发育相关性表明,跨种类,液压和机械性状均具有强烈关联与Turgor损失的水势,以及叶片组织密度。然而,叶最大液压传导和水电位为50%和80%的液压传导损失在统计学上与两个关键的机械性状,弹性和叶片结构强度的叶片模量无关。我们的研究结果表明,叶片生物力学特性反映了建筑成本并有助于叶子寿命,从液压能力和安全结隔离。叶片中的液压和机械保护的独立性可以在叶子中提供各种特质组合,这将增加其在生态系统上的自适应潜力。

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