木质部
薄壁组织
机制(生物学)
压力容器
座舱增压
干细胞
静水压力
树(集合论)
植物
生物
导水率
园艺
生物物理学
材料科学
生态学
细胞生物学
机械
物理
复合材料
数学
数学分析
土壤水分
量子力学
作者
Cyril Bozonnet,Marc Saudreau,Éric Badel,Guillaume Charrier,Thierry Améglio
标识
DOI:10.1093/treephys/tpae037
摘要
Abstract Xylem embolism is a significant factor in tree mortality. Restoration of hydraulic conductivity after massive embolization of the vascular system requires the application of positive pressure to the vessels and/or the creation of new conductive elements. Some species generate positive pressure from the root system to propagate pressure in distal, aboveground organs in spring, whereas other species generate positive pressure locally at the stem level during winter. We provide a mechanistic explanation for winter stem pressure build-up in the walnut tree. We have developed a physical model that accounts for temperature fluctuations and phase transitions. This model is based on the exchange of water and sugars between living cells and vessels. Our computations demonstrate that vessel pressurization can be attributed to the transfer of water between vessels across the parenchyma rays, which is facilitated by a radial imbalance in sugar concentration. The ability to dispose of soluble sugars in living cells, and to transport them between living cells and up to the vessels, is identified as the main drivers of stem pressure build-up in the walnut tree.
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