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A Method to Preserve Wetland Roots and Rhizospheres for Elemental Imaging
Published on: February 15, 2021
Multi-factor influences on potentially toxic element speciation and crop uptake in high-background soils of Southwest
Chengzhong He1, Qiang Li2, Jiazhong Huang3
1Yunnan Key Laboratory for Plateau Mountain Ecology and Degradation Environment Restoration & School of Ecology and Environmental Sciences, Yunnan University, Kunming, Yunnan 650100, China; Southwest United Graduate School & Institute of International Rivers and Eco-security, Yunnan University, Kunming, Yunnan 650100, China; Innovative Base for Eco-Geological Evolution, Protection and Restoration of Southwest Mountainous Areas, Geological Society of China, Kunming, Yunnan 650100, China; Yunnan Provincial Field ScientIon-exchangeableic Observation and Research Station for Soil and Water Resources Evolution and Carbon Sequestration Enhancement EFe-Mn oxide-boundects in the Alpine Gorge Area of the Jinsha River, Kunming, Yunnan 650100, China; Engineering Technology Innovation Center for Natural Ecosystem Carbon Sink, Ministry of Natural Resources, Kunming, Yunnan 650100, China; Kunming Natural Resources Survey, China Geological Survey, Protection and Restoration of Southwest Mountainous Areas, Geological Society of China, Kunming, Yunnan 650100, China.
Abstract:
High background values of potentially toxic elements in soils do not always necessitate high ecological risks, yet the decoupling mechanisms remain constrained in sloping farmlands. Here, eight elements were investigated in rhizosphere soils, maize kernels, and konjac corms from Southwest China. Results indicated that soils were acidic and enriched in Chromium, Zinc, Copper, Nickel, Arsenic, and Cadmium relative to the regional background. Sequential extraction showed Cadmium was dominated by active fractions averaging 36.3%, whereas Arsenic was predominantly residual. Konjac corms exhibited significantly higher bioaccumulation than maize kernels, with a Cadmium bioaccumulation factor of 2.93 compared to 0.024 for maize. Structural equation modeling revealed distinct accumulation pathways: soil water-soluble Cadmium directly drove maize kernel Cadmium with a standardized path coefficient of 0.447. Conversely, konjac corm Cadmium was strongly controlled by corm Zinc with a coefficient of 0.959, evidencing synergistic uptake. Furthermore, pH, CaO, Nickel, and Manganese oxides acted as key regulators suppressing Cadmium lability. Proximity to coal mining areas further associated with elevated element concentrations and mobility. These findings quantify multi-factor controls on crop uptake and highlight that species-specific accumulation mechanisms must be prioritized for safe agricultural management in high-background regions.

