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贯叶豚草(M.&K.)对有限铁供应的钙质生境的适应策略。

Adaptive strategies of Parietaria diffusa (M.&K.) to calcareous habitat with limited iron availability.

机构信息

Dipartimento di Produzione Vegetale, Università degli Studi di Milano, via Celoria 2, 20133 Milan, Italy.

出版信息

Plant Cell Environ. 2012 Jun;35(6):1171-84. doi: 10.1111/j.1365-3040.2012.02481.x. Epub 2012 Feb 6.

DOI:10.1111/j.1365-3040.2012.02481.x
PMID:22229865
Abstract

The study of native plants growing in hostile environments is useful to understand how these species respond to stress conditions. Parietaria diffusa (M.&K.) is able to survive in highly calcareous soils and extreme environments, such as house walls, without displaying any chlorotic symptoms. Here, we have investigated the existence of Strategy I complementary/alternative mechanism(s) involved in Fe solubilization and uptake and responsible for Parietaria's extraordinary efficiency. After assessing the specific traits involved in a calcicole-behaviour in the field, we have grown plants in conditions of Fe deficiency, either direct (-Fe) or induced by the presence of bicarbonate (+FeBic). Then, the growth performance, physiological and biochemical responses of the plants were investigated. The study shows that in Parietaria+FeBic, the classical responses of Strategy I plants are activated to a lower extent than in -Fe. In addition, there is a greater production of phenolics and organic acids that are both exuded and accumulated in the roots, which in turn show structures similar to 'proteoid-like roots'. We suggest that in the presence of this constraint, Parietaria undergoes some metabolic rearrangements that involve PEP-consuming reactions and an enhancement of the shikimate pathway.

摘要

研究生长在恶劣环境中的本地植物对于了解这些物种如何应对胁迫条件非常有用。皱叶酸模(M.&K.)能够在高钙土壤和极端环境中生存,例如房屋墙壁,而不会出现任何黄化症状。在这里,我们研究了参与铁溶解和吸收的策略 I 补充/替代机制(多个),这些机制负责皱叶酸模的非凡效率。在评估了野外适应钙质环境的特定特征后,我们在缺铁条件下(直接缺铁 -Fe)或在碳酸氢盐存在下(诱导缺铁 +FeBic)种植植物。然后,研究了植物的生长性能、生理和生化反应。研究表明,在 Parietaria+FeBic 中,与 -Fe 相比,策略 I 植物的典型反应被激活到较低程度。此外,还会产生更多的酚类和有机酸,这些物质既被分泌又在根部积累,根部表现出类似于“类根瘤状根”的结构。我们认为,在存在这种限制的情况下,皱叶酸模经历了一些涉及 PEP 消耗反应和增强莽草酸途径的代谢重排。

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