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◆ Ecotoxicology and environmental safety2026-09-09

Plant-rhizosphere control of thallium mobility and detoxification in contaminated soils: Insights from multi-omics and in situ DGT.

Siwei Deng, Wenhao Wang, Jiang Yu, Yi Wu, Fan Zhang, Xuemei Gou, Yuqing Zhang, Xuetao Zhao, Jie Yu, Xinyue Huangpeng, Liangwei Han

原始摘要(英文原文)· Original abstract
Thallium (Tl) is an extremely toxic and strongly bioaccumulative metal increasingly detected in agricultural soils, yet its behavior at the plant-rhizosphere interface remains poorly constrained. Here, we integrated in situ diffusive gradients in thin films (DGT) with multi-omics analyses (transcriptomics, metabolomics, and 16S rRNA sequencing) to elucidate how plant-rhizosphere interactions regulate Tl mobility and detoxification in Brassica rapa. In situ DGT profiling coupled with the European Community Bureau of Reference (BCR) sequential extraction identified the root-soil interface (0-3 cm) as a hotspot of labile Tl dynamics, revealing a dose-dependent shift from rhizosphere-mediated Tl mobilization under moderate exposure to immobilization under high stress. This transition was mirrored by a hormesis-driven plant response, with low Tl levels stimulating growth and uptake (bioconcentration factor, BCF = 4.2), followed by growth inhibition and restricted translocation at higher doses. Multi-omics analyses showed coordinated metabolic and transcriptional reprogramming associated with this shift, including altered central carbon metabolism, glutathione homeostasis, phenylpropanoid biosynthesis, and selective regulation of metal transporters (ZIP downregulation; ABC and MATE upregulation). Key metabolites (L-proline, sinapoyl aldehyde) and genes (e.g., TAT, PRDX6) emerged as integrative regulators linking detoxification, redox balance, and osmoprotection. Concurrently, Tl exposure induced a functional succession of the rhizosphere microbiome toward metal-resistant taxa (e.g., Nitrospira, Microvirga), closely associated with changes in root exudation patterns. Collectively, these findings advance a process-based mechanistic understanding of how rhizosphere biogeochemistry, plant molecular responses and microbial dynamics jointly control Tl mobility and detoxification, informing Tl risk assessment and plant-microbe-assisted management.
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Plant-rhizosphere control of thallium mobility and detoxification in contaminated soils: Insights from multi-omics and in situ DGT. — 科研速览 Science Skim