State Key Laboratory of Crop Biology, College of Life Sciences, Shandong Agricultural University, Taian, Shandong, 271018, People's Republic of China.
Mol Genet Genomics. 2013 Nov;288(11):559-77. doi: 10.1007/s00438-013-0769-1. Epub 2013 Aug 9.
F-box-containing proteins, as the key components of the protein degradation machinery, are widely distributed in higher plants and are considered as one of the largest known families of regulatory proteins. The F-box protein family plays a crucial role in plant growth and development and in response to biotic and abiotic stresses. However, systematic analysis of the F-box family in maize (Zea mays) has not been reported yet. In this paper, we identified and characterised the maize F-box genes in a genome-wide scale, including phylogenetic analysis, chromosome distribution, gene structure, promoter analysis and gene expression profiles. A total of 359 F-box genes were identified and divided into 15 subgroups by phylogenetic analysis. The F-box domain was relatively conserved, whereas additional motifs outside the F-box domain may indicate the functional diversification of maize F-box genes. These genes were unevenly distributed in ten maize chromosomes, suggesting that they expanded in the maize genome because of tandem and segmental duplication events. The expression profiles suggested that the maize F-box genes had temporal and spatial expression patterns. Putative cis-acting regulatory DNA elements involved in abiotic stresses were observed in maize F-box gene promoters. The gene expression profiles under abiotic stresses also suggested that some genes participated in stress responsive pathways. Furthermore, ten genes were chosen for quantitative real-time PCR analysis under drought stress and the results were consistent with the microarray data. This study has produced a comparative genomics analysis of the maize ZmFBX gene family that can be used in further studies to uncover their roles in maize growth and development.
F-box 蛋白作为蛋白降解机器的关键组成部分,广泛分布于高等植物中,被认为是最大的已知调控蛋白家族之一。F-box 蛋白家族在植物生长发育以及应对生物和非生物胁迫中起着至关重要的作用。然而,玉米(Zea mays)中 F-box 家族的系统分析尚未见报道。在本文中,我们在全基因组范围内鉴定和分析了玉米 F-box 基因,包括系统发育分析、染色体分布、基因结构、启动子分析和基因表达谱。共鉴定到 359 个 F-box 基因,通过系统发育分析将其分为 15 个亚组。F-box 结构域相对保守,而 F-box 结构域外的其他基序可能表明玉米 F-box 基因的功能多样化。这些基因在玉米的 10 条染色体上不均匀分布,表明它们在玉米基因组中通过串联和片段重复事件扩张。表达谱表明,玉米 F-box 基因具有时空表达模式。在玉米 F-box 基因启动子中观察到与非生物胁迫相关的假定顺式作用调控 DNA 元件。非生物胁迫下的基因表达谱也表明,一些基因参与了胁迫响应途径。此外,选择 10 个基因进行干旱胁迫下的定量实时 PCR 分析,结果与微阵列数据一致。本研究对玉米 ZmFBX 基因家族进行了比较基因组学分析,可为进一步研究其在玉米生长发育中的作用提供参考。