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February 11, 2026BMC Plant Biology0 citationsOpen Access

Differential response to waterlogging stress in rapeseed (Brassica napus L.): insights from physiological, transcriptomic, and metabolomic analyses

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MZMenglin ZhouXSXi SongQYQingqing Yu

Key Points

  • Examine mechanisms of tolerance to waterlogging stress in rapeseed varieties.
  • Physiological, transcriptomic, and metabolomic analyses conducted on contrasting rapeseed genotypes D199 and N1983
  • Assessment of superoxide dismutase and catalase activity under waterlogging stress
  • Integration of gene expression data to identify hormonal interactions.
  • D199 displayed 24% higher superoxide dismutase and 94% higher catalase activity than N1983
  • 7% reduction in reactive oxygen species accumulation observed in D199
  • Identification of key genes (AHP4, IAA14, SAUR) linked to stress tolerance mechanisms.

Abstract

Waterlogging stress severely impacts the yield and quality of rapeseed ( Brassica napus L.), necessitating the elucidation of tolerance mechanisms through a comparative analysis of contrasting varieties. To elucidate the mechanisms of tolerance, this study employed an integrative approach combining physiological, transcriptomic, and metabolomic analyses to compare the waterlogging-tolerant genotype D199 with the sensitive genotype N1983. Physiological profiling indicated that D199 exhibited 24% higher superoxide dismutase (SOD) activity and 94% higher catalase (CAT) activity, alongside a 7% reduction in superoxide anion accumulation compared to N1983 under stress conditions, effectively mitigating reactive oxygen species (ROS) damage. Integrated transcriptomic and metabolomic profiling has revealed three synergistic adaptation mechanisms: the upregulation of AHP4 (3.0-fold), associated with cytokinin signaling pathways, enhances the leaf’s antioxidant capacity via the activation of RR1/RR2. Additionally, auxin biosynthesis genes IAA14 (2.9-fold) and GH3.6 (2.2-fold) facilitate root remodeling through the induction of SAUR4/5/78 (3.6-4.0-fold). Crucially, the spatiotemporal coordination between auxin and cytokinin pathways orchestrates aerial ROS scavenging and root plasticity, involving co-expressed genes SAUR (auxin-responsive) and AHP4 (cytokinin-related). This systematic decoding of the hormone crosstalk network identifies actionable breeding targets ( IAA14 , AHP4 , SAUR78 ) for the development of waterlogging-resilient cultivars.

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Cite This Study

Zhou et al. (2026) studied this question.

synapsesocial.com/papers/698be001058ab1890a13bad6https://doi.org/10.1186/s12870-026-08099-4
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