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首页> 外文期刊>ACS Omega >Characteristics of Leaf Stomata and Their Relationship with Photosynthesis in Saccharum officinarum Under Drought and Silicon Application
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Characteristics of Leaf Stomata and Their Relationship with Photosynthesis in Saccharum officinarum Under Drought and Silicon Application

机译:干旱和硅施工中Saccharum Offinarum中叶气孔的特征及其与光合作用的关系

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Silicon (Si) plays an important role in the sustainable agriculture industry. The increasing demand for crop production with a significant reduction of synthetic chemical fertilizers and pesticide use is a big challenge nowadays. The use of Si has been proven to be an environmentally sound way of enhancing crop productivity by facilitating plant growth and development through either a direct or indirect mechanism, especially in tropical and subtropical regions. In particular, it has been investigated for its role in water stress management. The aim of the current experiment was to examine the protective role of Si in the photosynthetic capacity of different leaf segments and the ultrastructure of sugarcane (Saccharum officinarm ) plants under water stress. Sugarcane cv. GT 42 plants were supplied with 0, 100, 300, and 500 mg L~(–1) Si and exposed for 60 days under each stress condition such as 100–95, 55–50, and 35–30% of field capacity. For the photosynthetic responses, each leaf was observed and separated into three equal parts (base, middle, and tip). We used intact leaves and were able to assess leaf photosynthetic responses. Under moderate and severe stress conditions, applied Si increased the photosynthesis (base, ~16–143%; middle, 20–66%; and tip leaf part, 41–71%), transpiration rate (base, 15–97%; middle, 26–68%; and tip leaf part, 6–61%), and stomatal conductance (base, 26–137%; middle, 12–70%; and tip leaf part, 7–75%) in sugarcane plants. Ultrastructural examination of sugarcane leaves using scanning electron microscopy showed the remarkable effects on stomata ultrastructure. Silicon increased plant growth development, photosynthetic efficiency, and biomass/yield, and promoted better adaptation of stomata to drought. This study suggests that the application of Si may be used to increase the stress tolerance of sugarcane plants.
机译:硅(SI)在可持续农业产业中起着重要作用。越来越大,减少了合成化学肥料和农药使用的作物生产需求是一个大挑战。已经证明使用SI通过促进植物生长和通过直接或间接机制,特别是在热带和亚热带地区来提高作物生产力的环保方法。特别是,已经研究其在水分胁迫管理中的作用。目前实验的目的是检测Si在不同叶片段的光合容量和水胁迫下的甘蔗(Saccharum Officinararm)植物的超微结构的保护作用。甘蔗cv。 GT 42植物供应0,100,300和500mg L〜(-1)Si,并在每个应力条件下暴露60天,如100-95,55-50和35-30%的现场容量。对于光合反应,观察每个叶子并分成三个相等的部分(碱,中间和尖端)。我们使用完整的叶子并能够评估叶片光合反应。在中度和严重的应激条件下,应用Si增加光合作用(碱,〜16-143%;中间,20-66%;尖端叶部分,41-71%),蒸腾率(基础,15-97%;中间,26-68%;和尖端叶部分,6-61%)和气孔电导(碱,26-137%;中间,12-70%;和尖端叶部分,7-75%)在甘蔗植物中。使用扫描电子显微镜对甘蔗叶的超微结构检查显示对气孔超微结构的显着影响。硅提高了植物生长发育,光合效率和生物质/产量,促进了对干旱的口气更好地调整。该研究表明,Si的应用可用于增加甘蔗植物的应力耐受性。

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