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蛋白磷酸酶2A调节亚基α基因ZmPP2AA1的过表达通过重塑玉米根系结构提高低磷耐受性。

Overexpression of the protein phosphatase 2A regulatory subunit a gene ZmPP2AA1 improves low phosphate tolerance by remodeling the root system architecture of maize.

作者信息

Wang Jiemin, Pei Laming, Jin Zhe, Zhang Kewei, Zhang Juren

机构信息

School of Life Sciences, Shandong University, Ministry of Education Key Laboratory of Plant Cell Engineering and Germplasm Enhancement, Jinan, China.

Department of Biotechnology, School of Biological Science and Technology, University of Jinan, Jinan, China.

出版信息

PLoS One. 2017 Apr 27;12(4):e0176538. doi: 10.1371/journal.pone.0176538. eCollection 2017.

Abstract

Phosphate (Pi) limitation is a constraint for plant growth and development in many natural and agricultural ecosystems. In this study, a gene encoding Zea mays L. protein phosphatase 2A regulatory subunit A, designated ZmPP2AA1, was induced in roots by low Pi availability. The function of the ZmPP2AA1 gene in maize was analyzed using overexpression and RNA interference. ZmPP2AA1 modulated root gravitropism, negatively regulated primary root (PR) growth, and stimulated the development of lateral roots (LRs). A detailed characterization of the root system architecture (RSA) in response to different Pi concentrations with or without indole-3-acetic acid and 1-N-naphthylphthalamic acid revealed that auxin was involved in the RSA response to low Pi availability. Overexpression of ZmPP2AA1 enhanced tolerance to Pi starvation in transgenic maize in hydroponic and soil pot experiments. An increased dry weight (DW), root-to-shoot ratio, and total P content and concentration, along with a delayed and reduced accumulation of anthocyanin in overexpressing transgenic maize plants coincided with their highly branched root system and increased Pi uptake capability under low Pi conditions. Inflorescence development of the ZmPP2AA1 overexpressing line was less affected by low Pi stress, resulting in higher grain yield per plant under Pi deprivation. These data reveal the biological function of ZmPP2AA1, provide insights into a linkage between auxin and low Pi responses, and drive new strategies for the efficient utilization of Pi by maize.

摘要

磷(Pi)限制是许多自然和农业生态系统中植物生长发育的一个制约因素。在本研究中,一个编码玉米(Zea mays L.)蛋白磷酸酶2A调节亚基A的基因,命名为ZmPP2AA1,在低磷条件下在根中被诱导表达。利用过表达和RNA干扰分析了ZmPP2AA1基因在玉米中的功能。ZmPP2AA1调节根的向地性,负向调节主根(PR)生长,并促进侧根(LRs)的发育。对有无吲哚-3-乙酸和1-N-萘基邻苯二甲酸情况下不同磷浓度响应的根系结构(RSA)进行详细表征,结果表明生长素参与了RSA对低磷有效性的响应。在水培和土培实验中,ZmPP2AA1的过表达增强了转基因玉米对磷饥饿的耐受性。过表达转基因玉米植株干重(DW)、根冠比、总磷含量和浓度增加,同时花青素积累延迟且减少,这与其高度分支的根系以及低磷条件下增加的磷吸收能力相一致。ZmPP2AA1过表达系的花序发育受低磷胁迫的影响较小,在缺磷条件下单株籽粒产量更高。这些数据揭示了ZmPP2AA1的生物学功能,为生长素与低磷响应之间的联系提供了见解,并推动了玉米高效利用磷的新策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/87e5/5407761/5e254988b642/pone.0176538.g001.jpg

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