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Rice ( L.) is one of the major cereal crops cultivated across the world, particularly in Southeast Asia with 95% of global production. The present study was aimed to evaluate the total phenolic content (TPC) and to profile all the volatile organic compounds (VOCs) of eight popular traditional and two modern rice varieties cultivated in South India. Thirty-one VOCs were estimated by gas chromatography-mass spectrometry (GC-MS). The identified volatile compounds in the 10 rice varieties belong to the chemical classes of fatty acids, terpenes, alkanes, alkenes, alcohols, phenols, esters, amides, and others. Interestingly, most of the identified predominant components were not identical, which indicate the latent variation among the rice varieties. Significant variations exist for fatty acids (46.9-76.2%), total terpenes (12.6-30.7%), total phenols (0.9-10.0%), total aliphatic alcohols (0.8-5.9%), total alkanes (0.5-5.1%), and total alkenes (1.0-4.9%) among the rice varieties. Of all the fatty acid compounds, palmitic acid, elaidic acid, linoleic acid, and oleic acid predominantly varied in the range of 11.1-33.7, 6.1-31.1, 6.0-28.0, and 0.7-15.1%, respectively. The modern varieties recorded the highest palmitic acid contents (28.7-33.7%) than the traditional varieties (11.1-20.6%). However, all the traditional varieties had higher linoleic acid (10.0-28.0%) than the modern varieties (6.0-8.5%). Traditional varieties had key phenolic compounds, stearic acid, butyric acid, and glycidyl oleate, which are absent in the modern varieties. The traditional varieties Seeraga samba and Kichilli samba had the highest azulene and oleic acid, respectively. All these indicate the higher variability for nutrients and aroma in traditional varieties. These varieties can be used as potential parents to improve the largely cultivated high-yielding varieties for the evolving nutritional market. The hierarchical cluster analysis showed three different clusters implying the distinctness of the traditional and modern varieties. This study provided a comprehensive volatile profile of traditional and modern rice as a staple food for energy as well as for aroma with nutrition.
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http://dx.doi.org/10.3389/fnut.2020.599119 | DOI Listing |
Environ Sci Process Impacts
September 2025
Nebraska Water Center, Part of the Robert B. Daugherty Water for Food Global Institute 2021 Transformation Drive, University of Nebraska, Lincoln, Nebraska 68588-6204, USA.
Rice is consumed by ∼50% of the global population, grown primarily in flooded paddy fields, and is susceptible to arsenic accumulation. Inorganic arsenic, particularly in reduced form (As(III)), is considered the most toxic and is more likely to accumulate in rice grains under flooded systems. We postulate that increased levels of highly reactive iron minerals, such as ferrihydrite, in paddy soils can regulate the bioavailability of arsenic and reduce its uptake by priming iron plaque formation.
View Article and Find Full Text PDFPlant Biotechnol J
September 2025
State Key Laboratory for Quality and Safety of Agro-Products, Key Laboratory of Biotechnology in Plant Protection of MARA, Key Laboratory of Green Plant Protection of Zhejiang Province, Institute of Virology and Biotechnology, Zhejiang Academy of Agricultural Sciences, Hangzhou, China.
Plants balance resource energy allocation between growth and immunity to ensure survival and reproduction under limited availability. This study reveals that rice cultivars with elevated sucrose levels boost resistance to the fungal pathogen Magnaporthe oryzae by accumulating the phytoalexin sakuranetin, regulated by the transcription factor STOREKEEPER (OsSTK). OsSTK binds to the promoter region of OsNOMT (Naringenin-7-O-Methyltransferase) to drive sakuranetin biosynthesis.
View Article and Find Full Text PDFPlant Dis
September 2025
Anhui Academy of Agricultural Sciences, Institute of Plant Protection and Agro-Products Safety, Nongkenan 40, Luyang District, Hefei, Anhui province,China, Hefei, Anhui Province, China, 230031;
Since its emergence in 2020, a novel bacterial leaf blight caused by Pantoea ananatis has posed a serious threat to rice production in Anhui Province, China. Through verification via Koch's postulates and three years of field monitoring, P. ananatis strain HQ01 was identified as the dominant pathogen, exhibiting high virulence even at low inoculum concentrations (10² CFU/mL).
View Article and Find Full Text PDFCarbohydr Res
September 2025
Department of Chemistry, College of Science, Al-Nahrain University, Baghdad, Iraq.
Chitosan is a modified natural biopolymer obtained through the deacetylation of chitin, which is primarily found in the shells of crustaceans. Chitosan has recently attracted a lot of attention due to its possible use in the chemical, medical and food and industries. Due to its distinct biological activities and functional properties, its applications in the food industry are especially noteworthy.
View Article and Find Full Text PDFAppl Environ Microbiol
September 2025
Univ Montpellier, IRD, CIRAD, INRAE, Institut Agro, Plant Health Institute of Montpellier, Montpellier, France.
pv. is a pathogen of rice responsible for bacterial leaf streak, a disease that can cause up to 32% yield loss. While it was first reported a century ago in Asia, its first report in Africa was in the 1980s.
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