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Copper (Cu) is an essential micronutrient required for rice flowering and seed setting. Here, we identified that Cu-induced R2R3-MYB transcription factor, OsMYB67, acts as a negative regulator that controls rice heading and yield production by affecting Cu distribution in panicles. OsMYB67 was constitutively expressed, with the highest expression in the roots. OsMYB67 knockout did not affect plant growth, but significantly increased Cu concentrations in roots, shoots, and xylem sap at the seedling stage. At the reproductive stage, OsMYB67 mutants displayed an early heading phenotype, with significantly increased Cu distribution in panicles but decreased Cu distribution in leaves, whereas OsMYB67-overexpressing plants showed the opposite result. In addition, higher grain yield and Cu concentrations in seeds were observed in OsMYB67 mutants compared to the wild-type. The results of Y1H, transient co-expression, EMSA, in situ RT-PCR, and RT-qPCR showed that OsMYB67 directly binds to the promoter region of OsHMA9 and upregulates its expression. Significantly increased Cu concentrations were also observed in the roots, shoots, and seeds of oshma9 mutants, consistent with the results observed in OsMYB67 mutants. Interestingly, dramatically higher expression levels of OsATX1 and OsYSL16 were observed in the OsMYB67 mutants, which may contribute to the increased Cu distribution in the panicles.
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http://dx.doi.org/10.1111/pce.15540 | DOI Listing |
Plant Dis
August 2025
Instituto Nacional de Investigacao Agraria e Veterinaria, Molecular Biology, Lab Bioquimica, Oeiras, Lisboa, Portugal, 2780-157;
Aphelenchoides besseyi, the causal agent of the white-tip disease, is a quarantine nematode known to affect rice (Oryza sativa) by colonising leaf tips and panicles. In January 2021, A. besseyi was detected in Portugal in imported Italian rice seeds (cv.
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August 2025
Environmental Horticulture Department, University of Florida, 2043 IFAS Research Drive, Gainesville, FL 32611, United States.
Coastal dunes represent globally important ecosystems heavily impacted by human activities and requiring nature-based restoration solutions. Plants with dune building and stabilizing traits typically represent the dominant vegetation. Such species can have ranges extending >1000 km albeit in fragmented populations.
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May 2025
Rice Research Institute of Sichuan Agricultural University/Sichuan Provincial Key Laboratory of Crop Physiology, Ecology and Cultivation, Chengdu, China.
Introduction: Side deep fertilization (SDF) technology and slow release N fertilizer offer advantages in enhancing rice yield and N use efficiency. However, the effects of side deep application of slow-release N as base fertilizer, combined with the application of urea at different growth stages, on dry matter accumulation, N uptake, translocation, assimilation, and yield formation in rice remain unclear.
Methods: Therefore, in 2023 and 2024, a field experiment was conducted in Sichuan, China, using the local variety Chuankangyou 6308.
Plants (Basel)
May 2025
Rice Research Institute, Shenyang Agricultural University, Shenyang 110866, China.
This study aimed to investigate the regulatory effects of nitrogen (N) application rate and plant density on panicle type index (PTI), yield, grain filling characteristics, and their correlations. The low-PTI rice variety DP128 (PTI = 0.15) was cultivated under field conditions at four N supply levels (0 (N), 140 (N), 200 (N), and 260 (N) kg∙ha), and two plant densities (166,755 and 333,495 plants∙ha).
View Article and Find Full Text PDFPlants (Basel)
April 2025
College of Electronic Engineering, South China Agricultural University, Guangzhou 510642, China.
Accurately detecting rice panicles in complex field environments remains challenging due to their small size, dense distribution, diverse growth directions, and easy confusion with the background. To accurately detect rice panicles, this study proposes OE-YOLO, an enhanced framework derived from YOLOv11, incorporating three synergistic innovations. First, oriented bounding boxes (OBB) replace horizontal bounding boxes (HBB) to precisely capture features of rice panicles across different heights and growth stages.
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