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April 19, 2026Discover Plants.0 citationsOpen Access

Comparative metabolomic profiling of resistant and susceptible tomato cultivars against Ralstonia solanacearum revealing key pathways and metabolites of defense response

AKAnurag KashyapBDBhaskar DowarahSJSachin Jorvekar

Key Points

  • This research aims to uncover metabolic changes in tomato cultivars during infection by Ralstonia solanacearum, focusing on resistance mechanisms.
  • Analyzed root samples from resistant Hawaii 7996 and susceptible Marmande cultivars 6 days post-inoculation.
  • Employed liquid chromatography-electrospray ionization-quadrupole time-of-flight mass spectrometry (LC-ESI-QTOF-MS).
  • Processed data with MetaboAnalyst 6.0 for multivariate analysis and identified differentially accumulated metabolites.
  • Conducted pathway and chemical superclass enrichment analyses to assess metabolic profiles.
  • Hawaii 7996 exhibited significantly higher levels of defense-related metabolites in key pathways compared to Marmande.
  • Distinct metabolic responses were observed, with resistant cultivars showing strong activation in pathways like glutathione metabolism.
  • Baseline differences indicated that the resistant cultivar had elevated defense metabolites even without infection.
  • Marmande showed fewer metabolic changes, suggesting a weaker defense capability against bacterial wilt.

Abstract

Tomato is a globally important crop and model for plant-pathogen studies, with bacterial wilt caused by Ralstonia solanacearum posing a major threat. Understanding metabolic changes in resistant and susceptible cultivars during infection is vital. This study investigated the metabolic responses of resistant (Hawaii 7996) and susceptible (Marmande) tomato cultivars under R. solanacearum infection, identified key metabolites and defense pathways, and compared metabolite accumulation using high-resolution mass spectrometry. Liquid chromatography-electrospray ionization-quadrupole time-of-flight mass spectrometry (LC-ESI-QTOF-MS) was used to analyze root samples at 6 days post-inoculation. Data processed in MetaboAnalyst 6.0 identified differentially accumulated metabolites through multivariate analysis, heatmaps, and volcano plots. Pathway and chemical superclass enrichment analyses revealed distinct responses between cultivars. The resistant cultivar showed markedly higher abundance of defense-related metabolites in pathways such as glutathione metabolism, tropane/piperidine/pyridine alkaloid biosynthesis, phenylalanine metabolism, terpenoid backbone biosynthesis, and sesquiterpenoid/triterpenoid biosynthesis, indicating a robust defense response. In contrast, the susceptible cultivar exhibited fewer changes in these pathways, suggesting a weaker defense. Baseline differences were also observed, with the resistant cultivar displaying elevated levels of certain defense-associated metabolites even without infection. Overall, the findings clearly demonstrate that resistance in Hawaii 7996 is driven by a strong activation and maintenance of key defense-related metabolic pathways, whereas Marmande fails to initiate comparable metabolic reprogramming under infection. These results provide direct metabolomic evidence linked to bacterial wilt resistance and identify specific metabolites and pathways that may serve as promising biochemical targets for breeding disease-resilient tomato cultivars.

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Cite This Study

Kashyap et al. (2026) studied this question.

synapsesocial.com/papers/69e47282010ef96374d8e80ahttps://doi.org/10.1007/s44372-026-00572-6
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