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The excessive application of nitrogen fertilization improves rice yield, but increases disease severity. However, the underlying molecular mechanisms remain unclear. Here, we conducted a comparative analysis of nitrogen- and R. solani-regulated transcriptomes and identified TEOSINTE BRANCHED, CYC, PCF 19 (TCP19), that was a key regulator of nitrogen use efficiency (NUE), as a potential link between nitrogen metabolism and sheath blight (ShB) regulation. Inoculation of tcp19 and TCP19 OXs with R. solani revealed that TCP19 negatively regulated ShB resistance independent of nitrogen conditions. TCP19 expression was suppressed under moderate nitrogen (MN) but induced under high nitrogen (HN) conditions. Furthermore, TCP19 directly activated Dense and Erect Panicle 1 (DEP1) while repressing nitrate transporter 1.1B (NRT1.1B), ammonium transporter 1;2 (AMT1;2) and pathogenesis-related 1b (PR1b). Notably, TCP19 induced by HN conditions further strengthened this regulation. Phytochrome interacting factor like protein 15 (PIL15), a TCP19 interactor, directly activated DEP1 and AMT1;2 while repressing NRT1.1B. Additionally, the key nitrogen signalling regulator Indeterminate domain 10 (IDD10) interacted with both TCP19 and PIL15 and inhibited DEP1 activation by TCP19 and PIL15. Interestingly, DEP1 competitively interacted with IDD10 to release TCP19 and PIL15. Overall, our findings elucidate the mechanisms by which TCP19 regulates nitrogen signalling in rice ShB resistance, highlighting TCP19-PR1b signal under HN conditions as a key factor contributing to increased disease severity.
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http://dx.doi.org/10.1111/pbi.70224 | DOI Listing |
Plants (Basel)
August 2025
Key Laboratory of Eco-Environments of Three Gorges Reservoir Region, Ministry of Education, School of Life Sciences, Southwest University, Chongqing 400715, China.
MicroRNA319 (miR319) and its targets TEOSINTE-BRANCHED1/CYCLOIDEA/PCF (TCP) transcription factors are well-characterized regulators of leaf and flower development, yet their role in root development remains elusive. Here, we demonstrated that overexpression of led to a decrease in the number and density of lateral roots in poplar, while repressing by short tandem target mimics (STTM) promoted lateral root (LR) development. The auxin signaling repressors and were upregulated in -OE plants but downregulated in -STTM plants.
View Article and Find Full Text PDFPlant Biotechnol J
September 2025
State Key Laboratory of Elemento-Organic Chemistry and Department of Plant Protection, National Pesticide Engineering Research Center, College of Chemistry, Nankai University, Tianjin, China.
The excessive application of nitrogen fertilization improves rice yield, but increases disease severity. However, the underlying molecular mechanisms remain unclear. Here, we conducted a comparative analysis of nitrogen- and R.
View Article and Find Full Text PDFPlant Biotechnol J
May 2025
State Key Laboratory of Elemento-Organic Chemistry and Department of Plant Protection, National Pesticide Engineering Research Center (Tianjin), Nankai University, Tianjin, China.
Light signalling regulates plant growth and stress resistance, whereas its mechanism in controlling saline-alkaline tolerance (SAT) remains largely unknown. This study identified that light signalling, primarily mediated by Phytochrome B (PhyB), inhibited ammonium transporter 1 (AMT1) to negatively regulate SAT. Our previous findings have shown that PhyB can impede the transcription factors indeterminate domain 10 (IDD10) and brassinazole resistant 1 (BZR1) to reduce NH uptake, thereby modulating SAT and sheath blight (ShB) resistance in rice.
View Article and Find Full Text PDFPlants (Basel)
November 2024
College of Agriculture, Northeast Agricultural University, 600 Changjiang Road, Harbin 150030, China.
The number of tillers in rice significantly affects final yield, making it a key trait for breeding and nitrogen-efficient cultivation. By investigating agronomic characteristics, we analyzed phenotypic differences between the wild-type P47-1 and the mutant , performing genetic analysis and gene mapping through population construction and BSA sequencing. The mutant, exhibiting dwarfism and multiple tillering, is controlled by a single gene, , which is tightly linked to .
View Article and Find Full Text PDFPlants (Basel)
September 2024
State Key Laboratory for Conservation and Utilization of Subtropical Agro-Bioresources, Guangxi University, Nanning 530004, China.