GAB_2026v17n5

Genomics and Applied Biology 2026, Vol.17, No.5, 284-298 http://bioscipublisher.com/index.php/gab 298 Pflüger T., Jensen S.M., Liu F., and Rosenqvist E., 2024, Leaf gas exchange responses to combined heat and drought stress in wheat genotypes with varied stomatal density, Environmental and Experimental Botany, 228: 105984. https://doi.org/10.1016/j.envexpbot.2024.105984 Qiao M., Hong C., Jiao Y., Hou S., and Gao H., 2024, Impacts of drought on photosynthesis in major food crops and the related mechanisms of plant responses to drought, Plants, 13(13): 1808. https://doi.org/10.3390/plants13131808 Ru C., Wang K., Hu X., Chen D., Wang W., and Yang H., 2023, Nitrogen modulates the effects of heat, drought, and combined stresses on photosynthesis, antioxidant capacity, cell osmoregulation, and grain yield in winter wheat, Journal of Plant Growth Regulation, 42(3): 1681-1703. https://doi.org/10.1007/s00344-022-10650-0 Soares G.F., Ramos M.L.G., Pereira L.F., Keller B., Muller O., de Lima C.A., da Silva P.C., Malaquias J.V., Chagas J.H., and Ribeiro Junior W.Q., 2025, Phenotyping for drought tolerance in different wheat genotypes using spectral and fluorescence sensors, Plants, 14(14): 2216. https://doi.org/10.3390/plants14142216 Sommer S.G., Han E., Li X., Rosenqvist E., and Liu F., 2023, The chlorophyll fluorescence parameter fv/fm correlates with loss of grain yield after severe drought in three wheat genotypes grown at two CO2 concentrations, Plants, 12(3): 436. https://doi.org/10.3390/plants12030436 Song M., Hu N., Zhou S., Xie S., Yang J., Ma W., Teng Z., Liang W., Wang C., Bu M., Zhang S., Yang X., and He D., 2023, Physiological and RNA-Seq analyses on exogenous strigolactones alleviating drought by improving antioxidation and photosynthesis in wheat (Triticum aestivumL.), Antioxidants, 12(10): 1884. https://doi.org/10.3390/antiox12101884 Todorova D., Aleksandrov V., Anev S., and Sergiev I., 2022, Photosynthesis alterations in wheat plants induced by herbicide, soil drought or flooding, Agronomy, 12(2): 390. https://doi.org/10.3390/agronomy12020390 Vijayaraghavareddy P., Lekshmy S.V., Struik P.C., Makarla U., Yin X., and Sreeman S., 2022, Production and scavenging of reactive oxygen species confer to differential sensitivity of rice and wheat to drought stress, Crop and Environment, 1(1): 15-23. https://doi.org/10.1016/j.crope.2022.03.010 Wang L., Zhang Y., Li H., Hu X., Feng P., Mo Y., and Gong S., 2025, Stomatal-hydraulic coordination mechanisms of wheat in response to atmospheric-soil drought and rewatering, Agriculture, 15(13): 1375. https://doi.org/10.3390/agriculture15131375 Wu K., Li X., Gao C., Li X., Zhao Y., Li X., and Sun W., 2026, Physiological and transcriptomic responses of Xinjiang Wheat ‘Xindong 22’ (Triticum aestivumL.) to drought stress during early development, Agriculture, 16(4): 483. https://doi.org/10.3390/agriculture16040483 Yang S.H., Hou Z.H., Zheng L., Jiao Y.C., Cheng W., Li H., Chen J., Zhou Y., Zhu X., Chen M., Gao X., Fu J.D., Ma Y.Z., Fang Z., and Xu Z.S., 2026, A TaMYB2-TaMAP3K17 module enhances drought tolerance by promoting reactive oxygen species scavenging in wheat, Abiotech, 2026: 100058. https://doi.org/10.1016/j.abiote.2026.100058 Yang Y., Li Y., Ma X., Teng Z., Yan L., Chang S., Peng S., Hou P., and Li Y., 2026, Leaf morpho-anatomical traits regulate the differential responses of stomatal and mesophyll conductance to drought in rice and wheat, The Plant Journal, 125(2): e70673. https://doi.org/10.1111/tpj.70673 Zhao W., Liu L., Shen Q., Yang J., Han X., Tian F., and Wu J., 2020, Effects of water stress on photosynthesis, yield, and water use efficiency in winter wheat, Water, 12(8): 2127. https://doi.org/10.3390/w12082127

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