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The gelatinous extracellular matrix facilitates transport studies in kelp: visualization of pressure-induced flow reversal across sieve plates

机译:凝胶状细胞外基质有助于海藻中的运输研究:可视化的压力诱导的筛板逆流

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摘要

>Background and Aims In vascular plants, important questions regarding phloem function remain unanswered due to problems with invasive experimental procedures in this highly sensitive tissue. Certain brown algae (kelps; Laminariales) also possess sieve tubes for photoassimilate transport, but these are embedded in large volumes of a gelatinous extracellular matrix which isolates them from neighbouring cells. Therefore, we hypothesized that kelp sieve tubes might tolerate invasive experimentation better than their analogues in higher plants, and sought to establish Nereocystis luetkeana as an experimental system.>Methods The predominant localization of cellulose and the gelatinous extracellular matrix in N. luetkeana was verified using specific fluorescent markers and confocal laser scanning microscopy. Sieve tubes in intact specimens were loaded with fluorescent dyes, either passively (carboxyfluorescein diacetate; CFDA) or by microinjection (rhodamine B), and the movement of the dyes was monitored by fluorescence microscopy.>Key Results Application of CFDA demonstrated source to sink bulk flow in N. luetkeana sieve tubes, and revealed the complexity of sieve tube structure, with branches, junctions and lateral connections. Microinjection into sieve elements proved comparatively easy. Pulsed rhodamine B injection enabled the determination of flow velocity in individual sieve elements, and the direct visualization of pressure-induced reversals of flow direction across sieve plates.>Conclusions The reversal of flow direction across sieve plates by pressurizing the downstream sieve element conclusively demonstrates that a critical requirement of the Münch theory is satisfied in kelp; no such evidence exists for tracheophytes. Because of the high tolerance of its sieve elements to experimental manipulation, N. luetkeana is a promising alternative to vascular plants for studying the fluid mechanics of sieve tube networks.
机译:>背景和目标在维管植物中,由于在这种高度敏感的组织中侵入性实验程序存在问题,有关韧皮部功能的重要问题仍未得到解答。某些褐藻(海带;海带)也具有用于光同化运输的筛管,但这些筛管被嵌入大量的凝胶状细胞外基质中,从而将它们与邻近细胞隔离。因此,我们假设海带筛管在高等植物中可能比其类似物更能耐受侵袭性实验,并试图建立海藻神经作为实验系统。>方法纤维素和凝胶状细胞外基质主要位于使用特定的荧光标记和共聚焦激光扫描显微镜验证了luetkeana猪笼草。在完整样本中的筛管中装有被动(羧基乙酸荧光素二乙酸酯; CFDA)或显微注射(若丹明B)荧光染料,并通过荧光显微镜监测染料的移动。>主要结果 CFDA演示了在N. luetkeana筛管中下沉散流的来源,并揭示了筛管结构的复杂性,包括分支,连接和侧向连接。显微注射到筛分元件中比较容易。脉冲若丹明B注入可以确定单个筛网元件中的流速,并且可以直观地直观显示压力引起的跨筛板流动方向的反转。>结论,通过对筛板加压,可以使跨筛板的流动方向反向。下游筛分元件最终表明海带满足了Münch理论的关键要求。没有关于气管植物的证据。由于其筛分元素对实验操作的高度耐受性,N。luetkeana是研究血管网筛管流体力学的有前景的替代血管植物的方法。

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