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Mechanism of water-stress induced cavitation in conifers: bordered pit structure and function support the hypothesis of seal capillary-seeding

机译:针叶树中水分胁迫引起的空化机理:有缘的坑结构和功能支持密封毛细种子的假说

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摘要

Resistance to water-stress induced cavitation is an important indicator of drought tolerance in woody species and is known to be intimately linked to the anatomy of the xylem. However, the actual mechanical properties of the pit membrane are not well known and the exact mode of air-seeding by which cavitation occurs is still uncertain. We examined the relationship between cavitation resistance and bordered pit structure and function in 40 coniferous species. Xylem pressure inducing 50% loss of hydraulic conductance (P50, a proxy for cavitation resistance) varied widely among species, from −2.9 to −11.3 MPa. The valve effect of the pit membrane, measured as a function of margo flexibility and torus overlap, explained more variation in cavitation-resistance than simple anatomical traits such as pit membrane, pit aperture or torus size. Highly cavitation resistant species exhibited both a high flexibility of the margo and a large overlap between the torus and the pit aperture, allowing the torus to tightly seal the pit aperture. Our results support the hypothesis of seal capillary-seeding as the most likely mode of air-seeding, and suggest that the adhesion of the torus to the pit border may be the main determinant of cavitation resistance in conifers.
机译:对水分胁迫引起的空化的抵抗力是木质物种抗旱性的重要指标,并且已知与木质部的解剖结构密切相关。但是,坑膜的实际机械性能尚不为人所知,并且仍然无法确定发生气穴现象的播种的确切模式。我们研究了40个针叶树种的抗气蚀性与边缘凹坑结构和功能之间的关系。木质部压力引起的水力传导率损失50%(P50,抗气蚀性的代表),在-2.9到-11.3 MPa之间变化很大。与margo柔韧性和环面重叠的函数相比,凹膜的瓣膜效应解释了比简单的解剖学特征(例如凹膜,凹孔或环面大小)更多的抗气蚀性变化。高度抗气蚀性的物种既表现出margo的高柔韧性,又表现出圆环与凹坑孔之间的较大重叠,从而使圆环紧密地密封了凹坑孔。我们的结果支持以下假设:密封毛细血管播种是最有可能的空气播种模式,并表明圆环对凹坑边界的粘附可能是针叶树抗气蚀性的主要决定因素。

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