School of Agriculture, Food and Wine, The University of Adelaide, Adelaide, SA 5005, Australia.
Biological and Environmental Sciences and Engineering, King Abdullah University of Science and Technology, Thuwal 23955-6900, Saudi Arabia.
Trends Plant Sci. 2017 Feb;22(2):154-162. doi: 10.1016/j.tplants.2016.11.012. Epub 2016 Dec 16.
Constitutive expression of the Arabidopsis vacuolar proton-pumping pyrophosphatase (H-PPase) gene (AVP1) increases plant growth under various abiotic stress conditions and, importantly, under nonstressed conditions. Many interpretations have been proposed to explain these phenotypes, including greater vacuolar ion sequestration, increased auxin transport, enhanced heterotrophic growth, and increased transport of sucrose from source to sink tissues. In this review, we evaluate all the roles proposed for AVP1, using findings published to date from mutant plants lacking functional AVP1 and transgenic plants expressing AVP1. It is clear that AVP1 is one protein with many roles, and that one or more of these roles act to enhance plant growth. The complexity suggests that a systems biology approach to evaluate biological networks is required to investigate these intertwined roles.
拟南芥液泡质子泵焦磷酸酶(H-PPase)基因(AVP1)的组成型表达可促进植物在各种非生物胁迫条件下生长,重要的是,在非胁迫条件下也能促进植物生长。人们提出了许多解释这些表型的假说,包括液泡中离子的螯合作用增强、生长素运输增加、异养生长增强以及蔗糖从源组织向汇组织的运输增强。在这篇综述中,我们使用目前已发表的缺乏功能 AVP1 的突变体植物和表达 AVP1 的转基因植物的研究结果,对 AVP1 提出的所有作用进行了评估。显然,AVP1 是一种具有多种功能的蛋白质,其中一种或多种功能作用可促进植物生长。其复杂性表明,需要采用系统生物学方法来评估生物网络,以研究这些相互交织的作用。