Guo Zhenhui, Zhang Chaonan, Zhao Hongyu, Liu Yu, Chen Xiyao, Zhao Hanshu, Chen Limei, Ruan Wenyuan, Chen Yifang, Yuan Lixing, Yi Keke, Xu Lei, Zhang Jingbo
State Key Laboratory of Nutrient Use and Management, College of Resources and Environmental Sciences, National Academy of Agriculture Green Development, China Agricultural University, Beijing, 100193, China.
Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing, 100101, China.
J Integr Plant Biol. 2025 Feb;67(2):311-326. doi: 10.1111/jipb.13811. Epub 2024 Dec 2.
Phosphorus (P) is an essential macronutrient for plant growth and development. Vacuoles play a crucial role in inorganic phosphate (Pi) storage and remobilization in plants. However, the physiological function of vacuolar phosphate efflux transporters in plant Pi remobilization remains obscure. Here, we identified three ZmVPE genes (ZmVPE1, ZmVPE2a, ZmVPE2b) by combining them with transcriptome and quantitative real-time polymerase chain reaction (PCR) analyses, showing a relatively higher expression in older leaves than in younger leaves in maize. Moreover, the expression of the ZmVPEs was triggered by Pi deficiency and abscisic acid. ZmVPEs were localized to the vacuolar membrane and responsible for vacuolar Pi efflux. Compared with the wild-type, Pi remobilization from older to younger leaves was enhanced in ZmVPE-overexpression lines. zmvpe2a mutants displayed an increase in the total P and Pi concentrations in older leaves, but a decrease in younger leaves. In rice, Pi remobilization was impaired in the osvpe1osvpe2 double mutant and enhanced in OsVPE-overexpression plants, suggesting conserved functions of VPEs in modulating Pi homeostasis and remobilization in crop plants. Taken together, our findings revealed a novel mechanism underlying Pi remobilization from older to younger leaves mediated by plant vacuolar Pi efflux transporters, facilitating the development of Pi-efficient crop plants.
磷(P)是植物生长发育所必需的大量营养素。液泡在植物无机磷酸盐(Pi)的储存和再利用中起着关键作用。然而,液泡磷酸盐外排转运蛋白在植物Pi再利用中的生理功能仍不清楚。在这里,我们通过转录组和定量实时聚合酶链反应(PCR)分析相结合的方法鉴定了三个ZmVPE基因(ZmVPE1、ZmVPE2a、ZmVPE2b),结果显示它们在玉米老叶中的表达相对高于幼叶。此外,ZmVPEs的表达受Pi缺乏和脱落酸的诱导。ZmVPEs定位于液泡膜,负责液泡Pi外排。与野生型相比,ZmVPE过表达系中从老叶到幼叶的Pi再利用增强。zmvpe2a突变体老叶中的总磷和Pi浓度增加,但幼叶中的总磷和Pi浓度降低。在水稻中,osvpe1osvpe2双突变体的Pi再利用受损,而OsVPE过表达植株的Pi再利用增强,这表明VPEs在调节作物Pi稳态和再利用方面具有保守功能。综上所述,我们的研究结果揭示了一种由植物液泡Pi外排转运蛋白介导的从老叶到幼叶Pi再利用的新机制,有助于培育磷高效作物。