Wheat PHT1;9 acts as one candidate arsenate absorption transporter for phytoremediation

砷酸盐 植物修复 异位表达 基因沉默 转基因作物 磷酸盐 化学 突变体 吸收(声学) 转基因水稻 植物 转基因 园艺 生物 环境化学 生物化学 基因 重金属 材料科学 复合材料 有机化学
作者
Pengfei Wang,Zedong Chen,Yanjun Meng,Huanting Shi,Chuang Lou,Zheng Xu,Gezi Li,Xiangnan Li,Wanxi Peng,Guozhang Kang
出处
期刊:Journal of Hazardous Materials [Elsevier BV]
卷期号:452: 131219-131219 被引量:20
标识
DOI:10.1016/j.jhazmat.2023.131219
摘要

Arsenate (AsV) is one of the most common forms of arsenic (As) in environment and plant high-affinity phosphate transporters (PHT1s) are the primary plant AsV transporters. However, few PHT1s involved in AsV absorption have been identified in crops. In our previous study, TaPHT1;3, TaPHT1;6 and TaPHT1;9 were identified to function in phosphate absorption. Here, their AsV absorption capacities were evaluated using several experiments. Ectopic expression in yeast mutants indicated that TaPHT1;9 had the highest AsV absorption rates, followed by TaPHT1;6, while not for TaPHT1;3. Under AsV stress, further, BSMV-VIGS-mediated TaPHT1;9-silencing wheat plants exhibited higher AsV tolerance and lower As concentrations than TaPHT1;6-silenced plants, whereas TaPHT1;3-silencing plants had similar phenotype and AsV concentrations to control. These suggested that TaPHT1;9 and TaPHT1;6 possessed AsV absorption capacity with the former showing higher activities. Under hydroponic condition, furthermore, CRISPR-edited TaPHT1;9 wheat mutants showed the enhanced tolerance to AsV with decreased As distributions and concentrations, whereas TaPHT1;9 ectopic expression transgenic rice plants had the opposite results. Also, under AsV-contaminated soil condition, TaPHT1;9 transgenic rice plants exhibited depressed AsV tolerance with increased As concentrations in roots, straws and grains. Moreover, Pi addition alleviated the AsV toxicity. These suggested that TaPHT1;9 should be a candidate target gene for AsV phytoremediation.
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