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Functional hydraulic sectoring in grapevines as evidenced by sap flow dye infusion leaf removal and micro-computed tomography

机译:通过SAP流动染料输注叶片去除和微计算断层扫描所证明的葡萄藤中的功能性液压部门

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摘要

The supply of water to a plant canopy is dependent on the xylem pathway connecting roots to leaves. In some plants, sectored xylem pathways can restrict resource distribution, resulting in variable quality of organs in the shoots, yet little is known about the effects of sectoring in crop cultivars. In this study, we combined sap flow measurements and infusion of xylem-specific dyes to document functional conductive area and flow pathways from roots to shoots of 20-year-old Thompson Seedless and 8-year-old Chardonnay grapevines. Sap flow measurements and dye infusion demonstrated that water flowed predominantly in discrete xylem (visually identifiable from the trunk surface) sectors along the trunk axis, each supplying limited portions of the canopy. Functional conductive area in the trunk was proportional to that in the shoots even though sector size varied considerably between vines. Leaf area removal experiments further demonstrated sectoring in grapevines; sap flow decreased by >90 % in trunk sectors connected to excised shoots while it remained constant in trunk sectors supplying intact portions of the canopy. Despite the functional sectoring in grapevines, a high degree of interconnectivity of trunk xylem in the tangential direction was confirmed with synchrotron-based micro-computed tomography (microCT) and dye crossover infusion studies. Fruit attached to dyed canes was also similarly sectored; no clusters exhibited dye on non-dyed canes, while 97 % of clusters attached to dyed canes exhibited dye infusion. The dye travelled down the cluster rachis and appeared to accumulate at the pedicel/berry junction, but only on dyed canes. These findings suggest that xylem in grapevine trunks is integrated anatomically, but functions in a sectored manner due to high axial hydraulic conductivity. The functional sectoring of grapevine xylem documented here has important implications for management practices in vineyards and for fruit cluster uniformity within single grapevine.
机译:对植物冠层的水供应依赖于连接根的木质途径。在一些植物中,扇形Xylem途径可以限制资源分布,导致芽中的器官的可变质量,但对农作物品种的影响很少。在这项研究中,我们将SAP流量测量和Xylem特异性染料的输注组合给文件的功能导电区域和流动途径,从根部到20岁的汤普森无籽和8岁的霞多丽葡萄藤拍摄。 SAP流量测量和染料输注表明,水主要在离散的XYLEM(视觉上可识别的沿行李箱表面)扇区沿线轴线流动,每个扇区均提供有限的顶篷部分。行李箱中的功能导电区域与射击中的成比例,即使扇形尺寸在葡萄藤之间变化很大。叶面积去除实验进一步证明了葡萄园的群体; SAP流量在连接到切除的射击中的躯干扇区中减少> 90%,而在供应遮篷的完整部分的躯干扇区中保持恒定。尽管在葡萄藤中具有功能性扇形,但是通过基于同步的微型计算机断层扫描(MicroCT)和染料交叉输液研究,确认了切向方向上的躯干木耳的高度互连。附着在染色的罐头附着的水果也是类似的部门;没有簇在非染色的罐上表现出染料,而97%附着在染色罐中的簇表现出染料输注。染料沿着簇痛苦行进,似乎积累在Peedel / Berry交界处,但只有在染色的罐中。这些发现表明,葡萄树干中的木质蛋白是通过高轴向液压导电性而以扇形方式集成的。这里记录的葡萄木质的功能部门对葡萄园的管理实践和单葡萄园内的果实群均匀性具有重要意义。

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