Shandong Institute of Pomology, Tai'an, 271000, Shandong, China.
School of Biological Science and Technology, University of Jinan, Jinan, 250022, China.
BMC Genomics. 2024 May 16;25(1):488. doi: 10.1186/s12864-024-10402-2.
Phosphorus plays a key role in plant adaptation to adversity and plays a positive role in the yield and quality formation of apples. Genes of the SPX domain-containing family are widely involved in the regulation of phosphorus signalling networks. However, the mechanisms controlling phosphorus deficiency are not completely understood in self-rooted apple stock.
In this study, 26 members of the apple SPX gene family were identified by genome-wide analysis, and further divided into four subfamilies (SPX, SPX-MFS, SPX-EXS, and SPX-RING) based on their structural features. The chromosome distribution and gene duplications of MdSPXs were also examined. The promoter regions of MdSPXs were enriched for multiple biotic/abiotic stresses, hormone responses and typical P1BS-related elements. Analysis of the expression levels of 26 MdSPXs showed that some members were remarkably induced when subjected to low phosphate (Pi) stress, and in particular MdSPX2, MdSPX3, and MdPHO1.5 exhibited an intense response to low Pi stress. MdSPX2 and MdSPX3 showed significantly divergent expression levels in low Pi sensitive and insensitive apple species. Protein interaction networks were predicted for 26 MdSPX proteins. The interaction of MdPHR1 with MdSPX2, MdSPX3, MdSPX4, and MdSPX6 was demonstrated by yeast two-hybrid assay, suggesting that these proteins might be involved in the Pi-signaling pathway by interacting with MdPHR1.
This research improved the understanding of the apple SPX gene family and contribute to future biological studies of MdSPX genes in self-rooted apple stock.
磷在植物适应逆境方面起着关键作用,对苹果的产量和品质形成有积极作用。SPX 结构域家族的基因广泛参与磷信号网络的调控。然而,自根砧苹果砧木中磷缺乏的调控机制尚不完全清楚。
本研究通过全基因组分析鉴定了 26 个苹果 SPX 基因家族成员,并根据其结构特征进一步分为四个亚家族(SPX、SPX-MFS、SPX-EXS 和 SPX-RING)。还检测了 MdSPXs 的染色体分布和基因复制。MdSPXs 启动子区域富含多种生物/非生物胁迫、激素响应和典型 P1BS 相关元件。对 26 个 MdSPXs 的表达水平分析表明,一些成员在低磷(Pi)胁迫下显著诱导,特别是 MdSPX2、MdSPX3 和 MdPHO1.5 对低 Pi 胁迫有强烈反应。MdSPX2 和 MdSPX3 在低 Pi 敏感和不敏感的苹果物种中表现出显著不同的表达水平。预测了 26 个 MdSPX 蛋白的蛋白质相互作用网络。酵母双杂交试验证明 MdPHR1 与 MdSPX2、MdSPX3、MdSPX4 和 MdSPX6 相互作用,表明这些蛋白可能通过与 MdPHR1 相互作用参与 Pi 信号通路。
本研究提高了对苹果 SPX 基因家族的认识,为今后自根砧苹果砧木中 MdSPX 基因的生物学研究提供了参考。