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鉴定油菜中的液泡磷酸盐输入转运蛋白。

Identification of vacuolar phosphate influx transporters in Brassica napus.

机构信息

National Key Laboratory of Crop Genetic Improvement, Huazhong Agricultural University, Wuhan, China.

Microelement Research Center, College of Resources and Environment, Huazhong Agricultural University, Wuhan, China.

出版信息

Plant Cell Environ. 2022 Nov;45(11):3338-3353. doi: 10.1111/pce.14423. Epub 2022 Sep 1.

DOI:10.1111/pce.14423
PMID:35986580
Abstract

Recent progress has shown that vacuolar Pi transporters (VPTs) are important for cellular Pi homoeostasis in Arabidopsis thaliana and Oryza sativa under fluctuating external Pi supply, but the identity and involvement of VPTs in cellular Pi homoeostasis in Brassica napus is poorly understood. Here, we identified two vacuolar Pi influx transporters B. napus, BnA09PHT5;1b and BnCnPHT5;1b, and uncovered their necessity for cellular Pi homoeostasis through functional analysis. Both Brassica proteins are homologs of Arabidopsis AtPHT5;1 with a similar sequence, structure, tonoplast localization, and VPT activity. Brassica pht5;1b double mutants had smaller shoots and larger shoot cellular Pi concentrations than wild-type B. napus, which contrasts with a previous study of the Arabidopsis pht5;1 mutant, suggesting that PHT5;1-VPTs play different roles in cellular Pi homoeostasis in seedlings of B. napus and A. thaliana. Disruption of BnPHT5;1b genes also caused Pi toxicity in floral organs, reduced seed yield and impacted seed traits, consistent with the proposed role of AtPHT5;1 in floral Pi homoeostasis in Arabidopsis. Taken together, our studies identified two vacuolar Pi influx transporters in B. napus and revealed the distinct and conserved roles of BnPHT5;1bs in cellular Pi homoeostasis in this plant species.

摘要

最近的研究进展表明,液泡 Pi 转运体(VPT)在拟南芥和水稻适应波动的外部 Pi 供应时对细胞 Pi 稳态很重要,但 VPT 在油菜中细胞 Pi 稳态中的作用和身份还知之甚少。在这里,我们鉴定了油菜中的两个液泡 Pi 输入转运体 BnA09PHT5;1b 和 BnCnPHT5;1b,并通过功能分析揭示了它们在细胞 Pi 稳态中的必要性。这两个油菜蛋白与拟南芥 AtPHT5;1 同源,具有相似的序列、结构、液泡膜定位和 VPT 活性。油菜 pht5;1b 双突变体的地上部分较小,细胞 Pi 浓度较大,而野生型油菜则相反,这与之前对拟南芥 pht5;1 突变体的研究形成对比,表明 PHT5;1-VPT 在油菜和拟南芥幼苗的细胞 Pi 稳态中发挥不同的作用。BnPHT5;1b 基因的破坏也会导致花器官的 Pi 毒性,降低种子产量并影响种子特性,这与 AtPHT5;1 在拟南芥花中 Pi 稳态中的作用一致。总之,我们的研究鉴定了油菜中的两个液泡 Pi 输入转运体,并揭示了 BnPHT5;1b 在该植物物种细胞 Pi 稳态中的独特而保守的作用。

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