THE “SERPENTINE SYNDROME” (H. JENNY, 1980): A PROXY FOR SOIL REMEDIATION

IF 0.5 Q4 ENVIRONMENTAL SCIENCES
C. Bini, L. Maleci
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引用次数: 8

Abstract

Serpentine soils have relatively high concentrations of PTEs (Co, Cr, Cu, Fe, Ni) but generally low amounts of major nutrients. They often bear a distinctive vegetation, and a frequently-used approach to understanding serpentine ecology and related environmental hazard has been the chemical analysis of soils and plants. In this paper we report past and current studies on serpentine soils and serpentinophytes. The serpentine vegetation differs from the conterminous non-serpentine areas, being often endemic, and showing macroscopic physionomical characters. Similarly, at microscopic level cytomorphological characteristics of the roots and variations in biochemical parameters were recorded in serpentinophytes. Light microscopy observations showed depressed mitotic activity in the meristematic zone, and consequent reduced root growth. The different tolerance mechanisms responsible for plant adaption to high concentrations of PTEs in serpentine soils can be related to the capacity of plants to limit metal uptake and translocation. The majority of serpentinophytes tend to limit metal absorption to roots: the cell wall constitutes a barrier against metal penetration inside plant tissues. Only a few species are able to accumulate metals in their aerial parts, acting a tolerance mechanism to very high metal concentrations. Serpentinophytes, therefore, could represent proxies for plants  used in remediation of metal-contaminated soils and in phytomining as well.
“蛇纹石综合症”(h. jenny, 1980):土壤修复的代理
蛇形土壤的pte (Co、Cr、Cu、Fe、Ni)浓度相对较高,但主要养分含量一般较低。它们通常具有独特的植被,了解蛇形生态和相关环境危害的常用方法是土壤和植物的化学分析。本文综述了蛇形土壤和蛇形植物的研究现状。蛇形植被不同于相邻的非蛇形植被,往往是特有的,并表现出宏观的生理特征。同样,在显微镜下,蛇纹植物的根的细胞形态特征和生化参数的变化也被记录下来。光镜观察显示分生组织区有丝分裂活性降低,从而导致根生长减少。植物适应蛇形土壤中高浓度pte的不同耐受机制可能与植物限制金属吸收和转运的能力有关。大多数蛇形植物倾向于将金属吸收限制在根部:细胞壁构成了金属渗入植物组织的屏障。只有少数物种能够在它们的空气部分积累金属,对非常高的金属浓度起耐受机制。因此,蛇生植物可以作为金属污染土壤修复和植物开采的替代植物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
1.20
自引率
0.00%
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0
审稿时长
12 weeks
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