Zhang Lianhe, Hu Bin, Li Wei, Che Ronghui, Deng Kun, Li Hua, Yu Feiyan, Ling Hongqing, Li Youjun, Chu Chengcai
Henan University of Science and Technology, Luoyang, 471003, China.
State Key Laboratory of Plant Genomics, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing, 100101, China.
New Phytol. 2014 Mar;201(4):1183-1191. doi: 10.1111/nph.12596. Epub 2013 Nov 11.
• Selenite is a predominant form of selenium (Se) available to plants, especially in anaerobic soils, but the molecular mechanism of selenite uptake by plants is not well understood. • ltn1, a rice mutant previously shown to have increased phosphate (Pi) uptake, was found to exhibit higher selenite uptake than the wild-type in both concentration- and time-dependent selenite uptake assays. Respiratory inhibitors significantly inhibited selenite uptake in the wildtype and the ltn1 mutant, indicating that selenite uptake was coupled with H(+) and energy-dependent. Selenite uptake was greatly enhanced under Pi-starvation conditions, suggesting that Pi transporters are involved in selenite uptake. • OsPT2, the most abundantly expressed Pi transporter in the roots, is also significantly up-regulated in ltn1 and dramatically induced by Pi starvation. OsPT2-overexpressing and knockdown plants displayed significantly increased and decreased rates of selenite uptake, respectively, suggesting that OsPT2 plays a crucial role in selenite uptake. Se content in rice grains also increased significantly in OsPT2-overexpressing plants. • These data strongly demonstrate that selenite and Pi share similar uptake mechanisms and that OsPT2 is involved in selenite uptake, which provides a potential strategy for breeding Se-enriched rice varieties.
• 亚硒酸盐是植物可利用的主要硒(Se)形态,在厌氧土壤中尤为如此,但植物吸收亚硒酸盐的分子机制尚不清楚。
• ltn1是一种先前已证明具有增加的磷(Pi)吸收能力的水稻突变体,在浓度和时间依赖性亚硒酸盐吸收试验中,发现其比野生型表现出更高的亚硒酸盐吸收。呼吸抑制剂显著抑制野生型和ltn1突变体中的亚硒酸盐吸收,表明亚硒酸盐吸收与H(+)和能量相关。在Pi饥饿条件下,亚硒酸盐吸收大大增强,表明Pi转运蛋白参与亚硒酸盐吸收。
• OsPT2是根中表达最丰富的Pi转运蛋白,在ltn1中也显著上调,并由Pi饥饿显著诱导。过表达和敲低OsPT2的植物分别表现出亚硒酸盐吸收速率显著增加和降低,表明OsPT2在亚硒酸盐吸收中起关键作用。过表达OsPT2的植物水稻籽粒中的Se含量也显著增加。
• 这些数据有力地证明,亚硒酸盐和Pi具有相似的吸收机制,并且OsPT2参与亚硒酸盐吸收,这为培育富硒水稻品种提供了一种潜在策略。