首页> 美国卫生研究院文献>Plants >Investigating Effects of Bordered Pit Membrane Morphology and Properties on Plant Xylem Hydraulic Functions—A Case Study from 3D Reconstruction and Microflow Modelling of Pit Membranes in Angiosperm Xylem
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Investigating Effects of Bordered Pit Membrane Morphology and Properties on Plant Xylem Hydraulic Functions—A Case Study from 3D Reconstruction and Microflow Modelling of Pit Membranes in Angiosperm Xylem

机译:边界坑膜形态和特性对植物木质部水力功能的影响研究-以被子植物木质部坑膜的3D重建和微流模型为例

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摘要

Pit membranes in between neighboring conduits of xylem play a crucial role in plant water transport. In this review, the morphological characteristics, chemical composition and mechanical properties of bordered pit membranes were summarized and linked with their functional roles in xylem hydraulics. The trade-off between xylem hydraulic efficiency and safety was closely related with morphology and properties of pit membranes, and xylem embolism resistance was also determined by the pit membrane morphology and properties. Besides, to further investigate the effects of bordered pit membranes morphology and properties on plant xylem hydraulic functions, here we modelled three-dimensional structure of bordered pit membranes by applying a deposition technique. Based on reconstructed 3D pit membrane structures, a virtual fibril network was generated to model the microflow pattern across inter-vessel pit membranes. Moreover, the mechanical behavior of intervessel pit membranes was estimated from a single microfibril’s mechanical property. Pit membranes morphology varied among different angiosperm and gymnosperm species. Our modelling work suggested that larger pores of pit membranes do not necessarily contribute to major flow rate across pit membranes; instead, the obstructed degree of flow pathway across the pit membranes plays a more important role. Our work provides useful information for studying the mechanism of microfluid flow transport across pit membranes and also sheds light on investigating the response of pit membranes both at normal and stressed conditions, thus improving our understanding on functional roles of pit membranes in xylem hydraulic function. Further work could be done to study the morphological and mechanical response of bordered pit membranes under different dehydrated conditions, as well as the related microflow behavior, based on our constructed model.
机译:木质部相邻导管之间的坑膜在植物水运输中起关键作用。在这篇综述中,总结了有边坑膜的形态特征,化学成分和力学性能,并与它们在木质部水力学中的功能联系在一起。木质部水力效率和安全性之间的权衡与坑膜的形态和性能密切相关,木质部抗栓塞性也由坑膜的形态和性能决定。此外,为进一步研究有缘凹膜的形态和性质对植物木质部水力功能的影响,在此我们采用沉积技术对有缘凹膜的三维结构进行了建模。基于重建的3D凹坑膜结构,生成了一个虚拟的原纤维网络来模拟跨血管间凹坑膜的微流模式。此外,从单个微原纤维的机械性能可以估算出血管间膜的机械性能。在不同的被子植物和裸子植物之间,坑膜的形态各不相同。我们的建模工作表明,凹坑膜的较大孔并不一定有助于横过凹坑膜的主要流速。取而代之的是,跨坑膜的流路阻塞程度起着更重要的作用。我们的工作为研究微流体跨凹坑膜的流动机理提供了有用的信息,也为研究凹坑膜在正常和压力条件下的响应提供了启示,从而增进了我们对凹坑膜在木质部水力功能中的作用的了解。基于我们构建的模型,可以做进一步的工作来研究在不同脱水条件下边界孔膜的形态和力学响应,以及相关的微流行为。

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