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February 2, 2026Nature Communications0 citationsOpen Access

Ectopic cambia in wisteria vines are associated with the expression of conserved KNOX genes

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ICIsrael L. Cunha-NetoASAnthony A. SneadJLJacob B. Landis

Key Points

  • This research aims to understand the genetics behind the formation of ectopic cambia in Japanese wisteria.
  • Utilized developmental anatomy to examine tissue structure.
  • Conducted comparative transcriptomics to analyze gene expression.
  • Performed molecular evolutionary analyses on KNOX gene trees.
  • Carried out heterologous gene expression assays to test gene function.
  • Identified ectopic cambia arising from cortical parenchyma in wisteria.
  • Found KNOX genes associated with ectopic cambia development.
  • Discovered a Fabaceae-specific duplication of KNAT2/6 under positive selection.
  • Demonstrated KNOX genes showed expected activity in functional tests without causing vascular issues.

Abstract

Secondary vascular growth is a conserved mechanism that gives rise to vascular tissues produced via a single vascular cambium. Molecular mechanisms underlying this process are characterized mainly in model species with typical vascular architectures, while the genetics underlying ecologically-important atypical vascular architectures remain unexplored. We use developmental anatomy, comparative transcriptomics, molecular evolutionary analyses, and heterologous gene expression to address this knowledge gap, investigating how multiple ectopic cambia (EC) form in the woody vine Japanese wisteria. Anatomical studies show EC in Japanese wisteria arise from cortical parenchyma, and cambium-specific transcriptome comparisons reveal that genes acting as regulators of typical cambium development in model species are likewise associated with EC development. Gene trees of KNOX genes suggest that duplication events may contribute to EC formation, including a Fabaceae-specific duplication of KNAT2/6, which is detected as being under positive selection. We also demonstrate that KNOX genes from Japanese wisteria show canonical KNOX-like activity in heterologous functional assays, although no vascular aberrations were observed. Overall, these findings provide the first insights into the genetics of EC formation in "natural variants", advancing our understanding of the molecular mechanisms regulating vascular variants in seed plants.

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Cite This Study

Cunha-Neto et al. (2026) studied this question.

synapsesocial.com/papers/6980fe48c1c9540dea8103edhttps://doi.org/10.1038/s41467-026-68669-w
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