Global S&T Development Trend Analysis Platform of Resources and Environment
DOI | 10.1073/pnas.2100314118 |
The Widened Pipe Model of plant hydraulic evolution | |
Loren Koçillari; Mark E. Olson; Samir Suweis; Rodrigo P. Rocha; Alberto Lovison; Franco Cardin; Todd E. Dawson; Alberto Echeverría; Alex Fajardo; Silvia Lechthaler; Cecilia Martínez-Pérez; Carmen Regina Marcati; Kuo-Fang Chung; Julieta A. Rosell; Alí Segovia-Rivas; Cameron B. Williams; Emilio Petrone-Mendoza; Andrea Rinaldo; Tommaso Anfodillo; Jayanth R. Banavar; Amos Maritan | |
2021-06-01 | |
发表期刊 | Proceedings of the National Academy of Sciences
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出版年 | 2021 |
英文摘要 | Shaping global water and carbon cycles, plants lift water from roots to leaves through xylem conduits. The importance of xylem water conduction makes it crucial to understand how natural selection deploys conduit diameters within and across plants. Wider conduits transport more water but are likely more vulnerable to conduction-blocking gas embolisms and cost more for a plant to build, a tension necessarily shaping xylem conduit diameters along plant stems. We build on this expectation to present the Widened Pipe Model (WPM) of plant hydraulic evolution, testing it against a global dataset. The WPM predicts that xylem conduits should be narrowest at the stem tips, widening quickly before plateauing toward the stem base. This universal profile emerges from Pareto modeling of a trade-off between just two competing vectors of natural selection: one favoring rapid widening of conduits tip to base, minimizing hydraulic resistance, and another favoring slow widening of conduits, minimizing carbon cost and embolism risk. Our data spanning terrestrial plant orders, life forms, habitats, and sizes conform closely to WPM predictions. The WPM highlights carbon economy as a powerful vector of natural selection shaping plant function. It further implies that factors that cause resistance in plant conductive systems, such as conduit pit membrane resistance, should scale in exact harmony with tip-to-base conduit widening. Furthermore, the WPM implies that alterations in the environments of individual plants should lead to changes in plant height, for example, shedding terminal branches and resprouting at lower height under drier climates, thus achieving narrower and potentially more embolism-resistant conduits. |
领域 | 资源环境 |
URL | 查看原文 |
引用统计 | |
文献类型 | 期刊论文 |
条目标识符 | http://119.78.100.173/C666/handle/2XK7JSWQ/328762 |
专题 | 资源环境科学 |
推荐引用方式 GB/T 7714 | Loren Koçillari,Mark E. Olson,Samir Suweis,et al. The Widened Pipe Model of plant hydraulic evolution[J]. Proceedings of the National Academy of Sciences,2021. |
APA | Loren Koçillari.,Mark E. Olson.,Samir Suweis.,Rodrigo P. Rocha.,Alberto Lovison.,...&Amos Maritan.(2021).The Widened Pipe Model of plant hydraulic evolution.Proceedings of the National Academy of Sciences. |
MLA | Loren Koçillari,et al."The Widened Pipe Model of plant hydraulic evolution".Proceedings of the National Academy of Sciences (2021). |
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