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    Article

    Physiological and Pathological Basis of Disease Resistance for the Wheat Stay-Green Mutant Tasg1 to Infection by Fusarium graminearum

    A wheat stay-green mutant, tasg1, was previously generated via mutation breeding of HS2, a common wheat cultivar (Triticum aestivum L.). Compared with wild-type (WT) plants, tasg1 plants showed slower degradation...

    F. X. Tian, G. L. Xu, S. Zhou, C. X. Wang in Russian Journal of Plant Physiology (2023)

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    Article

    Antioxidative defence under drought stress in a wheat stay-green mutant

    A wheat stay-green mutant, named tasg1, was generated using the mutagen ethyl methane sulphonate applied to wheat (Triticum aestivum L.) cv. HS2. A drought stress was imposed by controlling irrigation and shelter...

    F. X. Tian, M. Zhang, X. Wang, Y. H. Chen, W. Wang in Biologia Plantarum (2015)

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    Article

    Differences in physiological characteristics between two wheat cultivars exposed to field water deficit conditions

    We investigated various physiological characteristics of two wheat (Triticum aestivum L.) cultivars differing in drought tolerance, i.e., Shannong16 (a drought-tolerant cultivar) and Weimai8 (a high-yield wheat c...

    Y. L. Wu, Q. F. Guo, Y. Luo, F. X. Tian, W. Wang in Russian Journal of Plant Physiology (2014)

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    Article

    Improved drought resistance in a wheat stay-green mutant tasg1 under field conditions

    We investigated the drought resistance of a wheat (Triticum aestivum L.) stay-green mutant tasg1 and its wild-type (WT) in field experiments conducted for two years. Drought stress was imposed by controlling irri...

    F. X. Tian, J. F. Gong, G. P. Wang, G. K. Wang, Z. Y. Fan, W. Wang in Biologia Plantarum (2012)