PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 10, 2026BMC Plant Biology0 citationsOpen Access

Genome-wide association study and evolutionary analysis of the CrRLK1L family reveal BnCrRLK1L1₅ as a positive regulator of Sclerotinia sclerotiorum resistance in Brassica napus

TFTongyu FuRZRong ZuoJLJie Liu

Key Points

  • This research aims to explore the role of CrRLK1L family members in B. napus resistance to S. sclerotiorum.
  • Conducted a genome-wide association study (GWAS) to identify candidate genes for resistance.
  • Performed evolutionary and phylogenetic analyses of the CrRLK1L family across Brassica species.
  • Used transcriptomic analysis and functional characterization in Arabidopsis mutants to assess gene function.
  • BnCrRLK1L1_5 was identified as a candidate gene with enhanced expression in resistant genotypes.
  • Functional analysis showed that BnCrRLK1L1_5 restores resistance levels beyond wild-type in a mutant background (fer-4).
  • Co-expression studies indicated that BnCrRLK1L1_5 reduces cell death and regulates immune signaling.

Abstract

Abstract Background Sclerotinia stem rot, caused by the necrotrophic pathogen Sclerotinia sclerotiorum (S. sclerotiorum), poses a significant threat to rapeseed (Brassica napus), resulting in substantial yield losses and economic damage worldwide. While receptor-like kinases, particularly the Catharanthus roseus RLK1-like (CrRLK1L) family, are known to play vital roles in plant immunity and development, their specific functions in B. napus defense against S. sclerotiorum and their evolutionary dynamics remain largely unexplored. Results Through a GWAS, we identified BnCrRLK1L1₅, a CrRLK1L family member, as a candidate gene conferring resistance to S. sclerotiorum. To understand its evolutionary context, genome-wide and phylogenetic analyses of the CrRLK1L family across three Brassica species were performed, revealing significant diversification driven by whole-genome duplications and gene loss. Nevertheless, key functional domains, such as the malectin-like and kinase domains, remained highly conserved. Further analysis of cis -elements and the identification of six BnCrRLK1L1 paralogs in B. napus suggested potential functional redundancy and broad roles in mediating stress responses. Transcriptomic analysis revealed that the expression of BnCrRLK1L1₅ was strongly induced in resistant genotypes upon inoculation. Functional characterization using fer-4, a mutant of the Arabidopsis ortholog FERONIA (FER), showed enhanced susceptibility to S. sclerotiorum. Furthermore, complementation with BnCrRLK1L1₅ in the fer-4 background restored resistance to levels exceeding the wild-type, indicating functional conservation between BnCrRLK1L1₅ and FER. Co-expression of BnCrRLK1L1₅ with BAX in N. benthamiana leaves significantly reduced necrosis and ion leakage, suggesting that BnCrRLK1L1₅ functions as a suppressor of cell death. Moreover, protein-protein interaction network analysis predicted interactions between BnCrRLK1L1₅ and key partners, including BnCrRLK1L1₄, PTM9, RALF23, and Ferritin 4. These findings suggest that BnCrRLK1L1₅ modulates resistance through regulating cell wall integrity, oxidative stress, and immune signaling. Conclusions Together, this study elucidates the dynamic evolution of the CrRLK1L family and establishes BnCrRLK1L1₅ as a key regulator of resistance against S. sclerotiorum. The potential mechanisms involving immune signaling and cell death regulation provide valuable insights for improving disease resistance in rapeseed and other crops.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Fu et al. (2026) studied this question.

synapsesocial.com/papers/6a0021fec8f74e3340f9cfachttps://doi.org/10.1186/s12870-026-08872-5
Ask AI
Helpful
Bookmark
Share
View Full Paper