The brown planthopper, Nilaparvata lugens (Stål), is a major insect pest of rice, and its management is increasingly constrained by insecticide resistance. This study assessed insecticide susceptibility, detoxification enzyme activity, and biological characteristics in a Gangavathi field population relative to a long-term susceptible glasshouse population. Resistance ratios were highest for buprofezin (1403.3-fold), imidacloprid (931.3-fold), and ethiprole + imidacloprid (515.7-fold), while thiamethoxam reached 124.0-fold. Chlorpyriphos resistance ratios ranged from 3.6- to 3.9-fold, whereas acephate, dinotefuran, fipronil, and pymetrozine showed ratios below three-fold. Esterase, glutathione S-transferase, and cytochrome P450 monooxygenase activities in the Gangavathi population were 2.2-, 1.8-, and 4.9-fold higher, respectively, than those in the susceptible population. The field population also showed a longer pre-oviposition period (4.3 days), incubation period (7.9 days), nymphal duration (13.7 days), and total life cycle (25.9 days). Conversely, egg hatchability (72.6%), fecundity (221.4 eggs per female), nymphal survival (77.5%), female proportion (53.7%), and brachypterous forms (50.1%) were lower than those recorded in the susceptible population. The findings demonstrate substantial resistance to several frequently used insecticides, particularly buprofezin and imidacloprid, accompanied by enhanced detoxification enzyme activity and altered biological performance. These results provide a basis for location-specific resistance surveillance and the judicious selection of insecticides within integrated brown planthopper management programmes.
V. Ratnakar, V. J. Lakshmi, Y. Swathi et al.· Journal of Advances in Biolo...· 0 citations
The imprecise breeding methods including recombination breeding, physical/chemical mutagenesis, and marker-assisted breeding have been extensively utilized for trait improvement of rice crop. Despite tremendous progress made through these breeding methods, the critical issues, such as linkage drag, unintended phenotype, and longer duration of time required to breed a cultivar, have been the major limitations. Among the new breeding technologies, genome editing (GE) has become the most promising approach because of its specificity, precision, and speed. Despite its transformative potential, genome editing continues to face several limitations in crop improvement. These include well-recognized policy challenges, such as biosafety regulations and intellectual property constraints, alongside technical barriers like inefficient tissue culture and transformation systems. Additionally, researchers remain constrained by the limited availability of precise gene information necessary for accurate targeted editing and effective trait enhancement. This review presents an analysis of genes that regulate abiotic and biotic stresses, yield, grain quality and nutrition, plant architecture, nutrient absorption and use efficiency, and other agronomically important traits of rice. The trait-wise probable target genes for genome editing have been discussed in detail. This review will serve as a ready reckoner for rice researchers and funding agencies.
Manish Solanki, Faisal Yousuf, Akanksha Srivastava et al.· Physiologia Plantarum : An I...· 1 citation