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(问题)关于韧皮部生物学。2. 质量流、分子跳跃、分布模式和高分子信号转导。

(Questions)n on phloem biology. 2. Mass flow, molecular hopping, distribution patterns and macromolecular signalling.

机构信息

Plant Cell Biology Research Group, Institute of General Botany, Justus Liebig University, Senckenbergstrasse 17, Giessen, Germany.

出版信息

Plant Sci. 2011 Oct;181(4):325-30. doi: 10.1016/j.plantsci.2011.05.008. Epub 2011 May 24.

Abstract

This review speculates on correlations between mass flow in sieve tubes and the distribution of photoassimilates and macromolecular signals. Since micro- (low-molecular compounds) and macromolecules are withdrawn from, and released into, the sieve-tube sap at various rates, distribution patterns of these compounds do not strictly obey mass-flow predictions. Due to serial release and retrieval transport steps executed by sieve tube plasma membranes, micromolecules are proposed to "hop" between sieve element/companion cell complexes and phloem parenchyma cells under source-limiting conditions (apoplasmic hopping). Under sink-limiting conditions, micromolecules escape from sieve tubes via pore-plasmodesma units and are temporarily stored. It is speculated that macromolecules "hop" between sieve elements and companion cells using plasmodesmal trafficking mechanisms (symplasmic hopping). We explore how differential tagging may influence distribution patterns of macromolecules and how their bidirectional movement could arise. Effects of exudation techniques on the macromolecular composition of sieve-tube sap are discussed.

摘要

本文推测了筛管中物质流与光合同化物和生物大分子信号分布之间的相关性。由于小分子(低分子化合物)和生物大分子以不同的速率从筛管汁液中被提取并释放出来,因此这些化合物的分布模式并不严格遵循物质流预测。由于筛管质膜执行的是一系列的释放和检索运输步骤,因此在源限制条件下(质外体跳跃),小分子被提出在筛分子/伴胞复合体和韧皮部薄壁细胞之间“跳跃”。在汇限制条件下,小分子通过孔-胞间连丝单位从筛管中逸出并被暂时储存。推测大分子通过胞间连丝运输机制在筛分子和伴胞之间“跳跃”(共质体跳跃)。我们探讨了差异标记如何影响大分子的分布模式,以及它们如何双向移动。还讨论了渗出技术对筛管汁液中大分子组成的影响。

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