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March 19, 2026New Phytologist3 citations

The PtoTCP19 – PtoOBE2 complex orchestrates phosphate deficiency tolerance and biomass production in Populus

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YPYanjun PanJLJingjing LiJZJingyuan Zhou

Key Points

  • The study aims to understand how Populus adapts to phosphate deficiency while maintaining biomass production.
  • Conducted genome-wide association study (GWAS) and RNA sequencing (RNA-seq)
  • Utilized DNA affinity purification sequencing (DAP-seq) and genetic transformation
  • Investigated interactions between PtoTCP19 and PtoOBE2
  • Evaluated phenotypic consequences of overexpressing and knocking out each protein
  • PtoTCP19 and PtoOBE2 physically interact to form a nuclear transcriptional complex
  • Overexpressing either protein enhanced phosphate deficiency tolerance and biomass production
  • Loss-of-function mutants exhibited reduced tolerance and biomass
  • The complex upregulates PtoPHT1; 4 for improved phosphate acquisition and promotes root growth via PtoEXPB2

Abstract

Summary Soil inorganic phosphate (Pi) availability critically limits forest primary productivity, necessitating effective adaptation to Pi variation. However, how perennial trees orchestrate Pi deficiency tolerance while maintaining growth under low‐phosphate (LP) stress remains unexplored. Combining genome‐wide association study (GWAS), RNA sequencing (RNA‐seq), DNA affinity purification sequencing (DAP‐seq), genetic transformation, and molecular experiments, we investigated how perennial species like Populus orchestrate phosphate deficiency tolerance and biomass production under LP stress. Here, we showed that TCP DOMAIN PROTEIN 19 (PtoTCP19) physically interacted with OBERON2 (PtoOBE2) to form a nuclear transcriptional complex. Genetic evidence supported the complex's functionality: overexpression of either PtoTCP19 or PtoOBE2 (OE‐ PtoTCP19 / PtoOBE2 ) improved LP tolerance and biomass, while their respective loss‐of‐function materials (Ri‐ PtoTCP19 and KO‐ PtoOBE2 ) exhibited opposite phenotypes. Mechanistically, the PtoTCP19–PtoOBE2 complex executes a dual‐pathway strategy: upregulating PHOSPHATE TRANSPORTER 1 ; 4 ( PtoPHT1 ; 4 ) to boost Pi acquisition and activating the EXPANSIN B2 ( PtoEXPB2 ) promoter to stimulate root growth, as validated by overexpressing‐ PtoEXPB2 (OE‐ PtoEXPB2 ) plants. Together, the PtoTCP19–PtoOBE2 complex is a novel hub that integrates Pi uptake and root development to orchestrate phosphate deficiency tolerance and biomass production in Populus , providing strategic insights for molecular breeding.

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Cite This Study

Pan et al. (2026) studied this question.

synapsesocial.com/papers/69bb92ae496e729e62980395https://doi.org/10.1111/nph.71090
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