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OsPHR2,中央 Pi 信号调节剂,是否调节植物生长的一些未知关键因素?

Does OsPHR2, central pi-signaling regulator, regulate some unknown factors crucial for plant growth?

机构信息

State Key Laboratory of Plant Physiology and Biochemistry, College of Life Science, Zhejiang University, Hangzhou, China.

出版信息

Plant Signal Behav. 2010 Jun;5(6):712-4. doi: 10.4161/psb.5.6.11645. Epub 2010 Jun 1.

Abstract

OsPHR2, the homolog of AtPHR1, is a central Pi-signaling regulator. The Pi-signaling pathway downstream of AtPHR1, similarly of OsPHR2,1,2 involves a noncoding RNA which targets mimicry of miR399. miRNA399 mediates cleavage of PHO2. (3,4) The regulating pathway downstream of OsPHR2 is negatively regulated by the Pi-signaling responsive gene OsSPX1. (5,6) Overexpression of AtPHR1 and OsPHR2 leads to an increased concentration of Pi in the shoot tissues with leaf toxic symptom and growth retardation similar as the phenotype of pho2 mutant, especially under Pi abundant conditions. (7,2,6) It has been known that the low affinity Pi transporter OsPT2 mainly contributes to the shoot Pi accumulation mediated by OsPHR2, and overexpression of OsPT2 results in shoot Pi accumulation and leaf toxic symptom and growth retardation under Pi abundant conditions. (6) Two curious questions are emerging from the reported results: How Os SPX1 functions on the negative regulation of the pathway and what mechanism of the growth retardation mediated by OsPHR2. For the second question, our favored hypothesis is that the growth inhibition mediated by overexpression of OsPHR2 is caused by toxic physiological effects due to excessive Pi accumulation in shoots (Pi toxicity). In fact, the toxic symptoms become diminished with decreased Pi levels in growth medium. However, the plant growth retardation mediated by overexpression of OsPHR2 may be caused by some unknown genetic factor(s) regulated by OsPHR2.

摘要

OsPHR2 是 AtPHR1 的同源物,是中央 Pi 信号调节剂。AtPHR1 和 OsPHR2 的下游 Pi 信号通路涉及一种非编码 RNA,该 RNA 靶向 miR399 的模拟物。miR399 介导 PHO2 的切割。(3,4) OsPHR2 下游的调节途径受 Pi 信号响应基因 OsSPX1 的负调控。(5,6) AtPHR1 和 OsPHR2 的过表达导致叶片有毒症状和生长迟缓的 shoot 组织中 Pi 浓度增加,类似于 pho2 突变体的表型,特别是在 Pi 丰富的条件下。(7,2,6) 已知低亲和力 Pi 转运蛋白 OsPT2 主要有助于 OsPHR2 介导的 shoot Pi 积累,过表达 OsPT2 导致 Pi 丰富条件下的 shoot Pi 积累、叶片有毒症状和生长迟缓。(6) 从报道的结果中出现了两个有趣的问题:OsSPX1 如何在该途径的负调控中发挥作用,以及 OsPHR2 介导生长迟缓的机制是什么。对于第二个问题,我们倾向的假设是,过量表达 OsPHR2 介导的生长抑制是由于 shoots 中过量 Pi 积累引起的有毒生理效应( Pi 毒性)。事实上,随着生长培养基中 Pi 水平的降低,毒性症状会减轻。然而,过量表达 OsPHR2 介导的植物生长迟缓可能是由 OsPHR2 调节的一些未知遗传因素引起的。

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