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March 26, 2026The Plant Journal0 citations

BnaPAP2.C2 plays a novel inhibitory role in anthocyanin accumulation compared to its paralogs in rapeseed ( Brassica napus L.)

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LXLei XuXCXiaodi ChenJYJizhao Yang

Key Points

  • The aim is to explore the inhibitory role of BnaPAP2.C2 in anthocyanin accumulation in rapeseed compared to its paralogs.
  • Investigation of tissue-specific anthocyanin pigmentation in rapeseed and related species.
  • Analysis of promoter regions and transcriptional regulation mechanisms.
  • Competitive binding studies to evaluate interactions between MYB regulators.
  • BnaPAP2.C2 suppresses anthocyanin biosynthesis by sequestering BnaTT8 and outcompeting BnaPAP2.A7b.
  • BnaPAP2.C2 is constantly expressed in both green and purple leaves, unlike pigmentation-associated genes.
  • Elevated expression of BnaPAP2.A7b under stress enhances anthocyanin production, while BnaPAP2.C2 is downregulated.

Abstract

SUMMARY Tissue‐specific anthocyanin pigmentation is observed in rapeseed ( Brassica napus L. AACC, 2 n = 38) as well as in its ancestral diploids Brassica rapa (AA, 2 n = 20) and Brassica oleracea (CC, 2 n = 18). We previously identified the MYB genes BnaPAP2.A7b and BnaPAP2.C6a as key regulators of anthocyanin biosynthesis. Here we uncover an antagonistic regulatory mechanism in leaves involving their paralog BnaPAP2.C2 . Unlike the pigmentation‐associated genes, BnaPAP2.C2 is constitutively expressed in both green and purple leaves, regardless of anthocyanin levels. Its promoter contains two enhancers (463 and 486 bp) that synergistically regulate transcription. Competitive binding studies reveal that BnaPAP2.C2, although lacking activation capacity, sequesters BnaTT8 and outcompetes BnaPAP2.A7b, thereby suppressing anthocyanin biosynthesis. Under environmental stress, elevated expression of BnaPAP2.A7b promotes anthocyanin biosynthesis, whereas BnaPAP2.C2 is downregulated. This paralog‐specific molecular antagonism provides new insight into the evolution of MYB–bHLH interaction specificity. Together, these findings uncover a novel inhibitory mechanism within the anthocyanin regulatory hierarchy of polyploid rapeseed, highlighting competitive binding as an evolutionary innovation driving functional diversification of duplicated MYB regulators.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/69c4cd25fdc3bde448919160https://doi.org/10.1111/tpj.70801
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