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April 12, 2026Horticulturae0 citationsOpen Access

Integrated Transcriptomic and Metabolomic Analyses Reveal Root-Centered Regulatory Networks Conferring Cadmium Tolerance in Salix

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XSXiaomei SongNWNingqi WangYZYuyi Zhang

Key Points

  • This research aims to elucidate the mechanisms behind cadmium tolerance in different Salix genotypes through integrated analyses.
  • Examined two Salix genotypes under control and cadmium stress conditions
  • Conducted transcriptomic and metabolomic analyses of roots and leaves
  • Assessed biomass, cadmium accumulation, and gene expression patterns
  • Validated findings with RT-qPCR for key detoxification and transport genes
  • The Cd-tolerant genotype maintained biomass while the Cd-sensitive genotype showed a 17% reduction
  • P294 accumulated higher levels of cadmium in stems and leaves compared to P646
  • Transcriptomic analysis revealed 896 differentially expressed genes (DEGs) in P294 roots versus 462 in P646
  • Metabolomic analysis showed more altered metabolites in P294 roots, indicating increased metabolic responses under stress

Abstract

Cadmium (Cd) is a major environmental pollutant due to its high mobility and persistence in soils, facilitating entry into the food chain and threatening ecosystems and human health. However, the mechanisms that enable Salix species, well adapted for Cd remediation, to both tolerate and accumulate Cd remain elusive. Here, two Salix genotypes with contrasting Cd tolerance were examined under control and Cd stress using integrated physiological, transcriptomic, and metabolomic analyses of roots and leaves. The Cd-tolerant genotype (Salix suchowensis P294) maintained biomass under Cd stress, whereas the Cd-sensitive genotype (Salix sinopurpurea × Salix integra P646) showed a ~17% reduction. P294 accumulated more Cd in its stems (132.76 mg kg−1) and leaves (122.25 mg kg−1) than P646 (93.54 and 56.24 mg kg−1). Transcriptomics responses were stronger in roots, with 896 DEGs in P294 and 462 in P646, enriched in nitrogen metabolism, phenylpropanoid biosynthesis, and metal transport, whereas only 167 and 176 DEGs were detected in leaves for P294 and P646, respectively. Metabolomics revealed more altered metabolites in roots (125 in P294, 89 in P646), mainly organic acids, amino acids, and flavonoids, compared with leaves (46 and 66). RT-qPCR validated the root-specific upregulation of key detoxification and transport genes (ABCA7, PRX72, GSTU1, GSTU4, ZIP1). These results reveal a root-centered regulatory network underlying Cd accumulation and tolerance, integrating detoxification, redox homeostasis, and structural reinforcement, as well as providing valuable targets for genetic improvement of phytoremediation efficiency.

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Cite This Study

Song et al. (2026) studied this question.

synapsesocial.com/papers/69db36e64fe01fead37c4dbchttps://doi.org/10.3390/horticulturae12040473
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