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Hydroponics: A Versatile System to Study Nutrient Allocation and Plant Responses to Nutrient Availability and Exposure to Toxic Elements
Published on: July 13, 2016
Ecotypic variation and inducible accumulation responses of Leersia hexandra Swartz under Cu(II) and Ni(II)
Mouyixing Chen1, Caixing Lai2, Wanting Cui3
1College of Earth Sciences, Guilin University of Technology, Guilin, 541006, China.
Abstract:
Heavy metal co-contamination is a global challenge for phytoremediation, particularly in regions impacted by mining and electroplating industries, where the selection of plant materials with stable and resilient accumulation traits remains a key bottleneck. This study investigated the differential responses of two ecotypes of L. hexandra, a historically contaminated-site ecotype and an uncontaminated cropland-site ecotype, to combined Cu(II) and Ni(II) stress in a hydroponic system. The contaminated-site ecotype exhibited significantly higher metal accumulation capacity than the cropland-site ecotype (p < 0.05). Its aboveground tissues accumulated up to 17.6-fold more Cu(II) in stems and 23.5-fold more Cu(II) in leaves, with Ni(II) showing a similar trend. Physiologically, the contaminated-site ecotype showed an organ-specific antioxidant response, characterized by relatively strong root enzymatic defense involving POD (5.6-fold higher) and CAT (14.0-fold higher), whereas leaf antioxidant enzyme activities remained comparatively low. These patterns suggest that the contaminated-site ecotype retained stronger apparent metal accumulation and organ-level allocation capacity, together with a more pronounced root-level antioxidant response, after historical habitat remediation. Most notably, although the accumulation capacity of the contaminated-site ecotype appeared lower than the historical maximum reported for the same habitat, it still showed stronger Cu(II)/Ni(II) accumulation and organ-specific antioxidant responses than the cropland-site ecotype under renewed exposure. These results suggest that historically selected metal-adaptive traits in L. hexandra may persist to some extent after environmental pressure declines and may be reflected in stronger short-term responses upon renewed metal exposure. This study provides an ecotype-oriented basis for selecting locally adapted L. hexandra germplasm for phytoremediation of Cu(II)/Ni(II)-co-contaminated environments.

