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June 1, 2026BMC Plant Biology0 citationsOpen Access

Pan-genomic and pan-transcriptomic integration unveils evolutionary dynamics and regulatory diversification of the WRKY gene family in Camellia sinensis

BWB. WangSTShilai TianXYXinzhuan Yao

Key Points

  • This research aims to explore the evolutionary dynamics and regulatory diversification of the WRKY gene family in Camellia sinensis.
  • Conducted a pan-genome-wide analysis integrating data from 22 tea plant genomes.
  • Classified WRKY genes into core and dispensable categories, identifying presence-absence variants.
  • Performed phylogenetic reconstruction and transcriptomic analysis to assess evolutionary patterns.
  • Identified extensive presence-absence variants among WRKY genes, previously overlooked in single-reference genomes.
  • Resolved 11 subfamilies of WRKY genes, with significant lineage-specific expansions noted.
  • Highlighted adaptive evolution signals in dispensable genes, indicating functional redundancy in stress adaptation.

Abstract

BACKGROUND: The WRKY transcription factor family, characterized by its conserved WRKYGQK motif and zinc finger structure, serves as a central regulatory module in plants, mediating developmental, stress-responsive, and metabolic processes through W-box binding. In Camellia sinensis, WRKY genes act as molecular integrators that link environmental cues to the biosynthesis of quality-related compounds, underscoring the importance of understanding their evolutionary patterns for genetic improvement. However, previous research has been limited by single-reference genome approaches, which fail to capture the full spectrum of WRKY gene presence-absence variation across diverse tea plant cultivars. RESULTS: This study presents the first pan-genome-wide analysis of the WRKY family in any plant species, integrating data from 22 tea plant genomes. We identified a comprehensive set of WRKY genes and classified them into core and dispensable categories, revealing extensive presence-absence variants (PAVs) that were overlooked in single-reference studies. Phylogenetic reconstruction resolved 11 subfamilies, with notable lineage-specific expansions. Mechanistically, core gene evolution was predominantly driven by whole-genome or segmental duplication under strong purifying selection, whereas dispensable genes, particularly in certain subfamilies, showed signals of adaptive evolution and were enriched through dispersed duplication. Transcriptomic analysis uncovered co-expression networks among highly expressed WRKY clusters, indicating functional redundancy and sub-functionalization in stress adaptation. CONCLUSIONS: The findings from the present study provide insights into the evolutionary dynamics of presence-absence and copy-number variation within the WRKY family in tea plants, establishing a valuable genetic resource for enhancing stress resilience and metabolic traits in tea breeding programs.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/6a1d208702fbce9130636f49https://doi.org/10.1186/s12870-026-09047-y
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