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April 25, 2026Plant Cell & Environment1 citations

Genetic Architecture and Molecular Mechanisms of Fusarium Crown Rot Resistance in Wheat

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XSXueke ShiSZShao‐Ang ZhaoYCYaoling Chen

Key Points

  • The aim is to elucidate genetic mechanisms of resistance to Fusarium crown rot in wheat.
  • Synthesis of advancements in identifying resistance loci from wheat and wild relatives
  • Assessment of diversity associated with fusarium crown rot resistance
  • Evaluation of multi-omics approaches to understand molecular mechanisms
  • Identified key genes that improve FCR resistance through enhancing cell wall integrity and Reactive Oxygen Species homeostasis.
  • Highlighted the importance of transcriptional reprogramming and metabolic remodelling in resistance mechanisms.
  • Outlined future recommendations for precision phenotyping and the use of artificial intelligence in resistance breeding.

Abstract

Fusarium crown rot (FCR) is a devastating soil-borne disease of wheat, primarily caused by Fusarium pseudograminearum, Fusarium graminearum and Fusarium culmorum. It causes substantial yield losses worldwide and contaminates grains with mycotoxins, posing major threats to food and feed safety. Given the lack of effective resistance in existing wheat cultivars, elucidating FCR resistance mechanisms and accelerating genetic improvement are of paramount importance. This review synthesises and evaluates the progress over the past 5 years, highlighting advances in the identification of major resistance loci from wheat and its wild relatives, as well as the assessment of their diversity. Advances in multi-omics approaches have underscored a sophisticated defence network, involving transcriptional reprogramming and metabolic remodelling. Furthermore, functional studies have identified key genes that enhance FCR resistance by modulating cell wall integrity, maintaining reactive oxygen species homeostasis and reprogramming defence metabolism, phytohormone pathways, as well as the transcriptome. Finally, we outline future research directions, including the establishment of standardised FCR phenotyping systems, the employment of gene editing technologies and artificial intelligence and the elucidation of the regulatory networks underlying FCR resistance. We conclude that a multi-disciplinary approach, integrating precision phenotyping, bioinformatics and genetics, is essential for overcoming key biological constraints in FCR resistance breeding and ensuring global wheat security.

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Cite This Study

Shi et al. (2026) studied this question.

synapsesocial.com/papers/69ec5b8a88ba6daa22dad0cahttps://doi.org/10.1111/pce.70553
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