DOI: 10.3390/plants15152362 ISSN: 2223-7747

Metabolomic and Transcriptomic Responses of Rhododendron delavayi Petals Infected with Neopestalotiopsis clavispora at Different Stages

Yunhong Luo, Su Gong, Yizhen Wang, Fubao Wu, Shanshan Yu, Ximin Zhang

Petal blight caused by Neopestalotiopsis clavispora infection in Rhododendron delavayi petals severely reduces their ornamental value; however, the metabolic and transcriptional responses of petals to this pathogen remain unclear. In this study, we integrated widely targeted metabolomic and transcriptomic analyses to systematically characterize the response mechanisms of R. delavayi petals at early (1 day post-infection), middle (2 days post-infection), and late (4 days post-infection) stages of N. clavispora infection. A total of 1251 metabolites were identified, and K-means clustering analysis revealed that the differentially accumulated metabolites (DAMs) in Subclass 1 were significantly enriched in flavonoid, phenylpropanoid, and glutathione metabolic pathways. Transcriptomic analysis identified 3744, 6986, and 5407 differentially expressed genes (DEGs) at early, middle and late stages, respectively. Weighted gene co-expression network analysis (WGCNA) indicated that the key hub genes at early, middle, and late stages were mainly involved in maintaining reactive oxygen species (ROS) homeostasis, plant–pathogen interaction signal transduction, and cell wall remodeling, respectively. Joint metabolomic and transcriptomic analysis showed that phenylpropanoid, flavonoid, and glutathione pathways were commonly and significantly enriched. In vitro antifungal assays demonstrated that 2000 mg/L phloretin significantly inhibited mycelial growth of N. clavispora and effectively alleviated petal infection. Collectively, R. delavayi petals exhibit stage-specific defense strategies against N. clavispora: in the early stage, by inducing H2O2 accumulation and ROS homeostasis; in the middle stage, by activating immune signaling pathways; and in the late stage, by enhancing cell wall remodeling and antioxidant capacity. This study provides a theoretical basis and a candidate compound for green control of petal blight.

More from our Archive