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Effects of selenium accumulation on reproductive functions in Brassica juncea and Stanleya pinnata

机译:硒积累对芥菜和赤杨生殖功能的影响

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摘要

Selenium (Se) is an essential micronutrient for many organisms, but is also a toxin and environmental pollutant at elevated levels. Due to its chemical similarity to sulphur, most plants readily take up and assimilate Se. Se accumulators such as Brassica juncea can accumulate Se between 0.01% and 0.1% of dry weight (DW), and Se hyperaccumulators such as Stanleya pinnata (Brassicaeae) contain between 0.1% and 1.5% DW of Se. While Se accumulation offers the plant a variety of ecological benefits, particularly protection from herbivory, its potential costs are still unexplored. This study examines the effects of plant Se levels on reproductive functions. In B. juncea, Se concentrations >0.05–0.1% caused decreases in biomass, pollen germination, individual seed and total seed weight, number of seeds produced, and seed germination. In S. pinnata there was no negative effect of increased Se concentration on pollen germination. In cross-pollination of B. juncea plants with different Se levels, both the maternal and paternal Se level affected reproduction, but the maternal Se concentration had the most pronounced effect. Interestingly, high-Se maternal plants were most efficiently pollinated by Se-treated paternal plants. These data provide novel insights into the potential reproductive costs of Se accumulation, interactive effects of Se in pollen grains and in the pistil, and the apparent evolution of physiological tolerance mechanisms in hyperaccumulators to avoid reproductive repercussions.
机译:硒(Se)是许多生物必不可少的微量营养素,但同时也是高水平的毒素和环境污染物。由于其与硫的化学相似性,大多数植物很容易吸收和吸收硒。 Se蓄积剂(例如芥菜)的硒含量可占干重(DW)的0.01%至0.1%,而Se超级蓄积剂(赤松(Brassicaeae))的DW含量在0.1%至1.5%之间。硒的积累为植物带来了多种生态效益,尤其是对草食动物的保护,但其潜在成本仍待探索。这项研究检查了植物硒水平对生殖功能的影响。在芥菜中,硒浓度> 0.05–0.1%会导致生物量,花粉萌发,单个种子和种子总重量,产生的种子数量以及种子发芽减少。在Pinusata中,Se浓度升高对花粉萌发没有负面影响。在不同硒水平的芥菜型异花授粉植物的异花授粉中,母本硒和父本硒水平都影响繁殖,但母本硒浓度的影响最为明显。有趣的是,高硒母本植物被硒处理的父本植物最有效地授粉。这些数据为硒积累的潜在生殖成本,花粉粒和雌蕊中硒的交互作用以及超蓄积以避免生殖影响的生理耐受机制的明显演变提供了新颖的见解。

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