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对拟南芥中具有SPX结构域的基因亚家族的表征揭示了它们在植物耐低磷胁迫中的多种功能。

Characterization of a sub-family of Arabidopsis genes with the SPX domain reveals their diverse functions in plant tolerance to phosphorus starvation.

作者信息

Duan Ke, Yi Keke, Dang Lei, Huang Hongjie, Wu Wei, Wu Ping

机构信息

State Key Laboratory of Plant Physiology and Biochemistry, College of Life Science, Zhejiang University, Hangzhou 310058, China.

出版信息

Plant J. 2008 Jun;54(6):965-75. doi: 10.1111/j.1365-313X.2008.03460.x. Epub 2008 Feb 26.

Abstract

Four genes of Arabidopsis (At5g20150, At2g26660, At2g45130 and At5g15330) encoding no conservative region other than an SPX domain (SYG1, Pho81 and XPR1) were named AtSPX1-AtSPX4. The various subcellular localizations of their GFP fusion proteins implied function variations for the four genes. Phosphate starvation strongly induced expression of AtSPX1 and AtSPX3 with distinct dynamic patterns, while AtSPX2 was weakly induced and AtSPX4 was suppressed. Expression of the four AtSPX genes was reduced to different extents in the Arabidopsis phr1 and siz1 mutants under phosphate starvation, indicating that they are part of the phosphate-signaling network that involves SIZ1/PHR1. Over-expression of AtSPX1 increased the transcript levels of ACP5, RNS1 and PAP2 under both phosphate-sufficient and phosphate-deficient conditions, suggesting a potential transcriptional regulation role of AtSPX1 in response to phosphate starvation. Partial repression of AtSPX3 by RNA interference led to aggravated phosphate-deficiency symptoms, altered P allocation and enhanced expression of a subset od phosphate-responsive genes including AtSPX1. Our results indicate that both AtSPX1 and AtSPX3 play positive roles in plant adaptation to phosphate starvation, and AtSPX3 may have a negative feedback regulatory role in AtSPX1 response to phosphate starvation.

摘要

拟南芥的四个基因(At5g20150、At2g26660、At2g45130和At5g15330)除了一个SPX结构域(SYG1、Pho81和XPR1)外不编码保守区域,它们被命名为AtSPX1 - AtSPX4。其绿色荧光蛋白融合蛋白的各种亚细胞定位暗示了这四个基因的功能差异。磷饥饿强烈诱导AtSPX1和AtSPX3的表达,且具有不同的动态模式,而AtSPX2诱导较弱,AtSPX4受到抑制。在磷饥饿条件下,拟南芥phr1和siz1突变体中四个AtSPX基因的表达在不同程度上降低,表明它们是涉及SIZ1/PHR1的磷信号网络的一部分。在磷充足和磷缺乏条件下,AtSPX1的过表达均增加了ACP5、RNS1和PAP2的转录水平,表明AtSPX1在响应磷饥饿时可能具有潜在的转录调控作用。通过RNA干扰部分抑制AtSPX3会导致磷缺乏症状加重、磷分配改变以及包括AtSPX1在内的一组磷响应基因的表达增强。我们的结果表明,AtSPX1和AtSPX3在植物适应磷饥饿中均发挥积极作用,并且AtSPX3可能在AtSPX1对磷饥饿的响应中具有负反馈调节作用。

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