Area of research
Plant Science · Global and Planetary Change
Research interest
Research interests include Photosynthesis, Agronomy, Biology, Anthesis, Priming (agriculture), and Abscisic acid.
Reprogramming of microbial community in barley root endosphere and rhizosphere soil by polystyrene plastics with different particle sizes
Rhizosphere melatonin application reprograms nitrogen-cycling related microorganisms to modulate low temperature response in barley
Elevated atmospheric CO2 concentration changes the eco-physiological response of barley to polystyrene nanoplastics
Relationship between endophytic microbial diversity and grain quality in wheat exposed to multi-generational CO2 elevation
Geochronological and geochemical constraints on the non-ultrahigh-pressure metasedimentary blocks of North China affinity within the Sulu ultrahigh-pressure belt, eastern China, and tectonic implications
Role of plant species and soil phosphorus concentrations in determining phosphorus: nutrient stoichiometry in leaves and fine roots
Leaf Gas Exchange, Plant Water Relations and Water Use Efficiency of Vigna Unguiculata L. Walp. Inoculated with Rhizobia under Different Soil Water Regimes
Effect of multigenerational exposure to elevated atmospheric CO2 concentration on grain quality in wheat
Priming: A promising strategy for crop production in response to future climate
Salt acclimation induced salt tolerance is enhanced by abscisic acid priming in wheat
Melatonin enhances cold tolerance in drought‐primed wild‐type and abscisic acid‐deficient mutant barley
Soil warming enhances the hidden shift of elemental stoichiometry by elevated CO2 in wheat
Variations in Protein Concentration and Nitrogen Sources in Different Positions of Grain in Wheat
Dynamics of amino acid carbon and nitrogen and relationship with grain protein in wheat under elevated CO 2 and soil warming
Winter Soil Warming Exacerbates the Impacts of Spring Low Temperature Stress on Wheat
Winter Wheat Photosynthesis and Grain Yield Responses to Spring Freeze
Drought priming at vegetative stage improves the antioxidant capacity and photosynthesis performance of wheat exposed to a short-term low temperature stress at jointing stage
Wheat plants exposed to winter warming are more susceptible to low temperature stress in the spring
Mechano-stimulated modifications in the chloroplast antioxidant system and proteome changes are associated with cold response in wheat
Changes of transcriptome and proteome are associated with the enhanced post-anthesis high temperature tolerance induced by pre-anthesis heat priming in wheat
Cold priming drives the sub-cellular antioxidant systems to protect photosynthetic electron transport against subsequent low temperature stress in winter wheat
Drought priming at vegetative growth stages improves tolerance to drought and heat stresses occurring during grain filling in spring wheat
Implications for Rodinia reconstructions for the initiation of Neoproterozoic subduction at ~860Ma on the western margin of the Yangtze Block: Evidence from the Guandaoshan Pluton
Physiological, proteomic and transcriptional responses of wheat to combination of drought or waterlogging with late spring low temperature
Exogenous Abscisic Acid Application During Grain Filling in Winter Wheat Improves Cold Tolerance of Offspring's Seedlings
Spring Freeze Effect on Wheat Yield is Modulated by Winter Temperature Fluctuations: Evidence from Meta‐Analysis and Simulating Experiment
Multiple heat priming enhances thermo-tolerance to a later high temperature stress via improving subcellular antioxidant activities in wheat seedlings
Induction of chilling tolerance in wheat during germination by pre-soaking seed with nitric oxide and gibberellin
Pre-anthesis high temperature acclimation alleviates the negative effects of post-anthesis heat stress on stem stored carbohydrates remobilization and grain starch accumulation in wheat
Multiple heat and drought events affect grain yield and accumulations of high molecular weight glutenin subunits and glutenin macropolymers in wheat