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Arbuscular mycorrhizae improves photosynthesis and water status of Zea mays L. under drought stress

机译:干旱胁迫下丛枝菌根改善玉米的光合作用和水分状况。

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摘要

The influences of arbuscular mycorrhizal (AM) fungus on growth, gas exchange, chlorophyll concentration, chlorophyll fluorescence and water status of maize (Zea mays L.) plants were studied in pot culture under well-watered and drought stress conditions. The maize plants were grown in a sand and black soil mixture for 4 weeks, and then exposed to drought stress for 4 weeks. Drought stress significantly decreased AM colonization and total dry weight. AM symbioses notably enhanced net photosynthetic rate and transpiration rate, but decreased intercellular CO2 concentration of maize plants regardless of water treatments. Mycorrhizal plants had higher stomatal conductance than non-mycorrhizal plants under drought stress. The concentrations of chlorophyll were higher in mycorrhizal than non-mycorrhizal plants under drought stress. AM colonization significantly increased maximal fluorescence, maximum quantum efficiency of PSII photochemistry and potential photochemical efficiency, but decreased primary fluorescence under well-watered and droughted conditions. Mycorrhizal maize plants had higher relative water content and water use efficiency under drought stress compared with non-mycorrhizal plants. The results indicated that AM symbiosis alleviates the toxic effect of drought stress via improving photosynthesis and water status of maize plants.
机译:在盆栽条件下,研究了盆栽菌根真菌对玉米在水分充足和干旱胁迫条件下的生长,气体交换,叶绿素浓度,叶绿素荧光和水分状况的影响。玉米植物在沙子和黑色土壤混合物中生长4周,然后暴露于干旱胁迫4周。干旱胁迫显着降低了AM定植和总干重。 AM共生显着提高了净光合速率和蒸腾速率,但降低了玉米植株的细胞间CO 2浓度,与水处理无关。在干旱胁迫下,菌根植物的气孔导度高于非菌根植物。干旱胁迫下,菌根植物中的叶绿素浓度高于非菌根植物。 AM定植显着增加了最大荧光,PSII光化学的最大量子效率和潜在的光化学效率,但在水源充足和干旱的条件下,初级荧光却降低了。与非菌根植物相比,在干旱胁迫下,菌根玉米植物具有较高的相对含水量和水分利用效率。结果表明,AM共生通过改善玉米植物的光合作用和水分状况减轻了干旱胁迫的毒性作用。

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