数字农科院2.0

Mercapto-Functionalized Carbon Dots Reduce Cadmium Accumulation in Wheat Grains via Plant-Soil-Microbial Regulation

文献类型: 外文期刊

作者: Zhang, Li;Zhao, Lijie;Sarmah, Ajit K.;Sun, Jian;Zhao, Nan;Zeng, Qiang;La, Yuepeng;Lin, Dasong;Wang, Ruigang

作者机构:

关键词: SH-CDs;Cd;transcriptional analysis;plant metabolomics;rhizosphere soil regulation

期刊名称: ACS NANO

ISSN: 1936-0851

年卷期: 2025 年

页码:

收录情况: SCIE(2025版) ; ; EI(2025版)

摘要: Sustainable strategies to reduce Cd accumulation in wheat grown on Cd-contaminated alkaline soils remain limited. Here, we developed mercapto-functionalized carbon dots (SH-CDs) from Salvia miltiorrhiza biomass via a solvent-free ball milling approach with 3-mercaptopropyltrimethoxysilane. SH-CDs exhibited superior Cd2+ adsorption capacity (35.9 mgg-1), primarily attributed to the strong affinity of surface-bound mercapto (-SH) groups, as confirmed by DFT calculations. SH-CDs applied via soil irrigation (800 mgL-1) and foliar spraying (1 mgmL-1) effectively reduced Cd content in wheat grains by 61.1% and 43.8%, respectively, compared to the control group (CK), while grain yield increased significantly by 24.5% and 12.4%. Soil irrigation with SH-CDs transformed soil Cd into less bioavailable fractions, reducing diethylenetriaminepentaacetic acid-extractable Cd (DTPA-Cd) by 13.6-45.7%. Integrated transcriptomic and metabolomic analyses revealed that SH-CDs mitigate Cd accumulation and phytotoxicity through: (1) enhancing photosynthesis (upregulating Lhca/b, Psa, Psb genes) and antioxidant defense (elevating SOD, CAT, POD, GSH; upregulating GST, APX); (2) promoting Cd sequestration in cell walls via remodeling genes involved in lignin, cellulose, and pectin biosynthesis; (3) regulating Cd transporters (upregulating ABCG3/7, ABCC2/3/4; downregulating HIPP27/45); and (4) reprogramming stress-related metabolites (amino acids, lipids, flavonoids). Additionally, SH-CDs irrigation enriched soil plant-growth-promoting and heavy-metal-resistant bacteria (e.g., Lysobacter and Vicinamibacteraceae). This work elucidates the multifaceted plant-soil-microbe mechanisms underpinning the efficacy of SH-CDs, demonstrating their potential as a nanoenabled strategy for safe crop production in Cd-contaminated farmlands.

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