DOI: 10.1111/mpp.70348 ISSN: 1464-6722
PmWRKY‐10
Enhances Pine Wilt Disease Resistance by Promoting Pinosylvin Monomethyl Ether Biosynthesis Through Transcriptional Activation of
PmPMT2‐1
Ziyan Nie, Shan Hu, Bin Liu, Qinghua Liu, Hengfu Yin, Zhichun Zhou, Kai Gao ABSTRACT
Pine wilt disease (PWD), caused by the pine wood nematode (PWN,
Bursaphelenchus xylophilus
), poses a severe threat to global pine forests. Plants can enhance their resistance to external stresses by eliciting secondary metabolites; however, the transcriptional regulatory mechanisms governing this defence response in pines remain largely unexplored. Here, we report a novel defence regulatory module in
Pinus massoniana
.
PmWRKY‐10
may participate in PWN resistance by regulating the biosynthesis of the nematicidal metabolite pinosylvin monomethyl ether (PME). We first demonstrated that PME accumulation is closely linked to resistance in
P. massoniana
and provided evidence that PME exhibits direct and potent nematicidal activity against PWN in vitro. By integrating multi‐omics profiling with weighted gene co‐expression network analysis (WGCNA), we identified
PmPMT2‐1
as a key candidate associated with PME biosynthesis and accumulation, while recognizing that it is unlikely to function as the sole rate‐limiting determinant. Functional analyses demonstrated that
PmPMT2‐1
overexpression promoted PME accumulation and enhanced resistance, whereas silencing the gene impaired both processes. Mechanistically, we identified
PmWRKY‐10
as an upstream transcriptional activator that directly binds to the W‐box element in the
PmPMT2‐1
promoter, inducing its transcription. Our work delineates a complete
PmWRKY‐10
→
PmPMT2‐1
→PME transcriptional‐metabolic pathway that is essential for stilbene‐based resistance in pine. This discovery not only provides fundamental insights into the inducible defence mechanisms of conifers but also identifies key genetic targets for breeding resistant varieties and developing sustainable forest management strategies.