Département de Biologie Moléculaire Végétale, Biophore, Université de Lausanne, CH-1015 Lausanne, Switzerland.
J Exp Bot. 2014 Mar;65(3):871-84. doi: 10.1093/jxb/ert444. Epub 2014 Jan 13.
Interactions between zinc (Zn) and phosphate (Pi) nutrition in plants have long been recognized, but little information is available on their molecular bases and biological significance. This work aimed at examining the effects of Zn deficiency on Pi accumulation in Arabidopsis thaliana and uncovering genes involved in the Zn-Pi synergy. Wild-type plants as well as mutants affected in Pi signalling and transport genes, namely the transcription factor PHR1, the E2-conjugase PHO2, and the Pi exporter PHO1, were examined. Zn deficiency caused an increase in shoot Pi content in the wild type as well as in the pho2 mutant, but not in the phr1 or pho1 mutants. This indicated that PHR1 and PHO1 participate in the coregulation of Zn and Pi homeostasis. Zn deprivation had a very limited effect on transcript levels of Pi-starvation-responsive genes such as AT4, IPS1, and microRNA399, or on of members of the high-affinity Pi transporter family PHT1. Interestingly, one of the PHO1 homologues, PHO1;H3, was upregulated in response to Zn deficiency. The expression pattern of PHO1 and PHO1;H3 were similar, both being expressed in cells of the root vascular cylinder and both localized to the Golgi when expressed transiently in tobacco cells. When grown in Zn-free medium, pho1;h3 mutant plants displayed higher Pi contents in the shoots than wild-type plants. This was, however, not observed in a pho1 pho1;h3 double mutant, suggesting that PHO1;H3 restricts root-to-shoot Pi transfer requiring PHO1 function for Pi homeostasis in response to Zn deficiency.
植物中锌(Zn)和磷酸盐(Pi)营养之间的相互作用早已被认识到,但关于它们的分子基础和生物学意义的信息却很少。这项工作旨在研究 Zn 缺乏对拟南芥 Pi 积累的影响,并揭示参与 Zn-Pi 协同作用的基因。研究了野生型植物以及受 Pi 信号转导和转运基因影响的突变体,即转录因子 PHR1、E2 连接酶 PHO2 和 Pi 外排泵 PHO1。Zn 缺乏导致野生型和 pho2 突变体的地上部 Pi 含量增加,但 phr1 或 pho1 突变体则没有。这表明 PHR1 和 PHO1 参与了 Zn 和 Pi 稳态的共同调节。Zn 剥夺对 Pi 饥饿反应基因如 AT4、IPS1 和 microRNA399 的转录水平或高亲和力 Pi 转运体家族 PHT1 的成员的影响非常有限。有趣的是,PHO1 同源物之一 PHO1;H3 对 Zn 缺乏有上调反应。PHO1 和 PHO1;H3 的表达模式相似,均在根维管束细胞中表达,当在烟草细胞中瞬时表达时,均定位于高尔基体。在无 Zn 培养基中生长时, pho1;h3 突变体植物的地上部 Pi 含量高于野生型植物。然而,在 pho1 pho1;h3 双突变体中没有观察到这种情况,这表明 PHO1;H3 限制了根到地上部的 Pi 转移,需要 PHO1 功能来维持 Pi 稳态以响应 Zn 缺乏。