The FtMYB46-FtNRAMP3 module in Tartary buckwheat significantly enhances plant tolerance to lead and cadmium, with overexpression increasing tolerance by up to 50%.
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Moving in Plant Physiology and Biochemistry, Plant, Cell & Environment, Journal of Experimental Botany, Environmental pollution.
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The FtMYB46-FtNRAMP3 module in Tartary buckwheat significantly enhances plant tolerance to lead and cadmium, with overexpression increasing tolerance by up to 50%.
Sulfur assimilation regulates micronutrient homeostasis and detoxification in plants, with S pathways influencing over 20 essential trace element processes.
Microbial communities influence plant iron-sulfur metabolism by reprogramming plant networks and enhancing nutrient use efficiency, with potential to improve crop resilience.
CsNIP2 and CsNIP16 enable Al-F complex transport, leading to hyperaccumulation in tea plants, with CsNIP2 promoting root-shoot translocation and accumulation.
NtMYB78 boosts salt tolerance in tobacco by activating stress responses and increasing lignin deposition, with overexpression lines showing improved survival under salinity.
Zn-Se co-application in wheat reduces grain Se levels by 50% but still meets human nutritional requirements, revealing complex multi-scale antagonism mechanisms.
Exogenous ABA enhances salt tolerance in Astragalus cicer by activating key regulatory networks, including hormone signaling and MAPK pathways, improving growth and stress resilience.
Nitrate acts as a key signaling molecule in Arabidopsis, regulating iron deficiency responses via NLP7 and NIGT1.3, affecting plant growth and stress adaptation.
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