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Rice is a short-day thermophilic crop that originated from the low latitudes of the tropics and subtropics; it requires high temperatures for growth but is sensitive to low temperatures. Therefore, it is highly important to explore and analyze the molecular mechanism of cold tolerance in rice to expand rice planting areas. Here, we report a phenotypic evaluation based on low-temperature stress in indica rice (R998) and wild rice (GZW) and a comparative transcriptomic study conducted at six time points. After 7 days of low-temperature treatment at 10 °C, R998 exhibited obvious yellowing and greening of the leaves, while GZW exhibited high low-temperature resistance, and the leaves maintained their normal morphology and exhibited no yellowing; GZW has a higher survival rate. Principal component analysis (PCA) and cluster analysis of the RNA-seq data revealed that the difference in low-temperature resistance between the two cultivars was caused mainly by the difference in low-temperature treatment after 6 h. Differential expression analysis revealed 2615 unique differentially expressed genes (DEGs) in the R998 material, 1578 unique DEGs in the GZW material, 1874 unique DEGs between R998 and GZW, and 2699 DEGs that were differentially expressed not only between cultivars but also at different time points in the same material under low-temperature treatment. A total of 15,712 DEGs were detected and were significantly enriched in the phenylalanine metabolism, photosynthesis, plant hormone signal transduction, and starch and sucrose metabolism pathways. These 15,712 DEGs included 1937 genes encoding transcription factors (TFs), of which 10 have been identified with functional validation in previous studies. In addition, a gene regulatory network was constructed via weighted gene correlation network analysis (WGCNA), and 12 key genes related to low-temperature tolerance in rice were identified, including five genes encoding TFs, one of which was identified and verified in previous studies. These results provide a theoretical basis for an in-depth understanding of the molecular mechanism of low-temperature tolerance in rice and provide new genetic resources for the study of low-temperature tolerance in rice.
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http://dx.doi.org/10.3390/ijms252413380 | DOI Listing |
Anal Chim Acta
November 2025
Guangdong Provincial Key Laboratory of Food Quality and Safety, South China Agricultural University, Guangzhou, 510642, China. Electronic address:
Egg yolk immunoglobulin (IgY) has emerged as a promising alternative to monoclonal antibodies (mAbs) due to its facile extraction, higher yield, and greater tolerance to organic solvents. This work developed a selective IgY antibody against bongkrekic acid (BA) and isobongkrekic acid (IsoBA), the lethal toxins produced by Burkholderia gladioli pv. Cocovenenans (BGC), which led to severe food poisoning incidents and resulted in casualties.
View Article and Find Full Text PDFMol Plant
September 2025
Henan Institute of Science and Technology, Xinxiang 453003, China. Electronic address:
J Integr Plant Biol
September 2025
Hunan Province Key Laboratory of Crop Sterile Germplasm Resource Innovation and Application, College of Life Science, Hunan Normal University, Changsha, 410081, China.
Hyperosmolality-triggered physiological drought hinders plant growth and development, leading to a drop in crop yields. Hyperosmolality triggers calcium signaling, and yet how osmotic-induced calcium signaling participates in cellular osmotic response remains enigmatic. To date, several Ca channels and transporters have been identified to regulate osmotic-induced calcium signal generation (CaSG) or Ca homeostasis.
View Article and Find Full Text PDFPlant Physiol Biochem
August 2025
College of Resource, Sichuan Agricultural University, 211 Huimin Road, Chengdu, Sichuan, 611130, China. Electronic address:
Rice (Oryza sativa L.) is one of the most important food crops worldwide, with a strong capacity for Cd accumulation. Cd accumulation in rice is regulated by multiple genes.
View Article and Find Full Text PDFBiology (Basel)
July 2025
College of Life Sciences, Zhejiang Normal University, Jinhua 321004, China.
GOLDEN2-LIKEs (GLKs) are important transcription factors for the chloroplast development influencing photosynthesis, nutrition, senescence, and stress response in plants. Sunflower () is a highly photosynthetic plant; here, a -homologues gene was identified from the sunflower genome by bioinformatics. To analyze the bio-function of , transgenic rice plants overexpressing () were constructed and characterized via phenotype.
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