Institute of Plant Nutrition, Leibniz University Hannover, Hannover, Germany.
Ann Bot. 2010 Jul;106(1):185-97. doi: 10.1093/aob/mcq053. Epub 2010 Mar 17.
Aluminium (Al) toxicity is the most important soil constraint for plant growth and development in acid soils. The mechanism of Al-induced inhibition of root elongation is still not well understood, and it is a matter of debate whether the primary lesions of Al toxicity are apoplastic or symplastic.
The present review focuses on the role of the apoplast in Al toxicity and resistance, summarizing evidence from our own experimental work and other evidence published since 1995.
The binding of Al in the cell wall particularly to the pectic matrix and to the apoplastic face of the plasma membrane in the most Al-sensitive root zone of the root apex thus impairing apoplastic and symplastic cell functions is a major factor leading to Al-induced inhibition of root elongation. Although symplastic lesions of Al toxicity cannot be excluded, the protection of the root apoplast appears to be a prerequisite for Al resistance in both Al-tolerant and Al-accumulating plant species. In many plant species the release of organic acid anions complexing Al, thus protecting the root apoplast from Al binding, is a most important Al resistance mechanism. However, there is increasing physiological, biochemical and, most recently also, molecular evidence showing that the modification of the binding properties of the root apoplast contributes to Al resistance. A further in-depth characterization of the Al-induced apoplastic reaction in the most Al-sensitive zone of the root apex is urgently required, particularly to understand the Al resistance of the most Al-resistant plant species.
铝(Al)毒性是酸性土壤中植物生长和发育的最重要的土壤限制因素。Al 诱导的根伸长抑制的机制仍未得到很好的理解,Al 毒性的主要病变是质外体还是共质体仍存在争议。
本综述重点关注质外体在 Al 毒性和抗性中的作用,总结了我们自己的实验工作和 1995 年以来发表的其他证据。
Al 在细胞壁中的结合,特别是在根根尖最敏感的根区与质外体面对质膜的果胶基质中的结合,从而损害质外体和共质体细胞功能,是导致 Al 诱导的根伸长抑制的主要因素。尽管不能排除 Al 毒性的共质体病变,但保护根质外体似乎是 Al 耐受性和 Al 积累植物物种的 Al 抗性的先决条件。在许多植物物种中,释放与 Al 络合的有机酸阴离子,从而保护根质外体免受 Al 结合,是最重要的 Al 抗性机制。然而,越来越多的生理、生化和最近的分子证据表明,根质外体结合特性的修饰有助于 Al 抗性。迫切需要进一步深入研究根根尖最敏感区的 Al 诱导质外体反应,特别是为了理解最耐 Al 的植物物种的 Al 抗性。