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March 19, 2026Plant Biotechnology Journal0 citationsOpen Access

Analysis of BpbHLH Gene Family Responsive to MeJA Signalling in Betula platyphylla Suk. and Functional Mechanisms of BpbHLH42/44 in Genetic Improvement and Triterpenoid Biosynthesis

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YLYong LiLXLinlin XuJCJiale Cui

Key Points

  • The study aims to analyze the role of BpbHLH gene family in MeJA signalling and their functions in triterpenoid biosynthesis in Betula platyphylla.
  • Identified 131 BpbHLH genes in Betula platyphylla.
  • Characterized BpbHLH42 and BpbHLH44 through yeast, tobacco, birch cells, and transgenic plants.
  • Assessed the effects of MeJA on BpbHLHs and their role in metabolic pathways.
  • BpbHLH42 promotes oleanolic acid (OA) accumulation via BpHMGR and other genes.
  • BpbHLH44 favors betulin production through specific gene activation.
  • Transgenic lines show that BpbHLH42 increases leaf size and OA levels, while BpbHLH44 enhances stress tolerance by boosting secondary metabolites.

Abstract

ABSTRACT The basic helix–loop–helix (bHLH) transcription factor family regulates plant secondary metabolism, development and stress responses. Although triterpenoids such as betulinic acid (BA), betulin (BT) and oleanolic acid (OA) from Betula platyphylla Suk. are of pharmacological importance, the methyl jasmonate (MeJA)‐induced regulation of IVa bHLHs remains unclear. A total of 131 BpbHLH genes were identified, and functional characterisation was performed for two IVa members, BpbHLH42 and BpbHLH44 , in yeast, tobacco, birch cells and transgenic plants. Both enhanced triterpenoid biosynthesis but exhibited distinct specificities: BpbHLH42 primarily promoted OA accumulation by activating BpHMGR , BpSE1/3 , BpW and BpY6 , while BpbHLH44 favoured BT production through BpW , BpY6 and BpY11 . Both indirectly regulated BpY9 via BpMYB21 , forming a bHLH–MYB complex, and the MeJA repressor BpJAZ2 disrupted the BpbHLH42–MYB21 interaction. Transgenic birch lines further revealed divergent phenotypes: BpbHLH42 overexpression enlarged and smoothed leaves and increased OA levels, whereas BpbHLH44 enhanced alkali stress tolerance by elevating secondary metabolite accumulation. These results uncover the differential regulatory roles of BpbHLH42 and BpbHLH44 in triterpenoid biosynthesis and demonstrate their potential for metabolic engineering and genetic improvement in woody plants.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69bb9321496e729e62980ffehttps://doi.org/10.1111/pbi.70626
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