International Maize and Wheat Improvement Center, CIMMYT-Ethiopia, P.O. Box 5689, Addis Ababa, Ethiopia.
J Exp Bot. 2014 Apr;65(7):1895-904. doi: 10.1093/jxb/eru075. Epub 2014 Mar 8.
Our understanding of physical and physiological mechanisms depends on the development of advanced technologies and tools to prove or re-evaluate established theories, and test new hypotheses. Water flow in land plants is a fascinating phenomenon, a vital component of the water cycle, and essential for life on Earth. The cohesion-tension theory (CTT), formulated more than a century ago and based on the physical properties of water, laid the foundation for our understanding of water transport in vascular plants. Numerous experimental tools have since been developed to evaluate various aspects of the CTT, such as the existence of negative hydrostatic pressure. This review focuses on the evolution of the experimental methods used to study water transport in plants, and summarizes the different ways to investigate the diversity of the xylem network structure and sap flow dynamics in various species. As water transport is documented at different scales, from the level of single conduits to entire plants, it is critical that new results be subjected to systematic cross-validation and that findings based on different organs be integrated at the whole-plant level. We also discuss the functional trade-offs between optimizing hydraulic efficiency and maintaining the safety of the entire transport system. Furthermore, we evaluate future directions in sap flow research and highlight the importance of integrating the combined effects of various levels of hydraulic regulation.
我们对物理和生理机制的理解取决于先进技术和工具的发展,这些技术和工具可以证明或重新评估已建立的理论,并检验新的假设。陆生植物中的水流是一种迷人的现象,是水循环的重要组成部分,也是地球上生命所必需的。一百多年前提出的基于水的物理性质的内聚-张力理论(CTT)为我们理解维管植物中的水分运输奠定了基础。此后,已经开发出了许多实验工具来评估 CTT 的各个方面,例如负静水压力的存在。本综述重点介绍了用于研究植物水分运输的实验方法的演变,并总结了不同方法来研究不同物种木质部网络结构和汁液流动动态的多样性。由于水分运输在不同尺度上都有记录,从单个导管的水平到整个植物的水平,因此必须对新的结果进行系统的交叉验证,并将基于不同器官的发现整合到整个植物的水平上。我们还讨论了在优化水力效率和维持整个运输系统安全性之间的功能权衡。此外,我们评估了汁液流动研究的未来方向,并强调了整合各种水平的水力调节的综合效应的重要性。