Chongqing Engineering Research Center for Horticultural Plant, College of Smart Agriculture, Chongqing University of Arts and Sciences, Chongqing, 402160, China.
Chongqing Key Laboratory for Germplasm Innovation of Special Aromatic Spice Plants, College of Smart Agriculture, Chongqing University of Arts and Sciences, Chongqing, 402160, China.
BMC Genomics. 2024 Aug 31;25(1):820. doi: 10.1186/s12864-024-10588-5.
Nuclear factor Y (NF-Y) plays a vital role in numerous biological processes as well as responses to biotic and abiotic stresses. However, its function in ginger (Zingiber officinale Roscoe), a significant medicinal and dietary vegetable, remains largely unexplored. Although the NF-Y family has been thoroughly identified in many plant species, and the function of individual NF-Y TFs has been characterized, there is a paucity of knowledge concerning this family in ginger.
We identified the largest number of NF-Y genes in the ginger genome using two BLASTP methods as part of our ginger genome research project. The conserved motifs of NF-Y proteins were analyzed through this process. To examine gene duplication events, we employed the Multiple Collinearity Scan toolkit (MCScanX). Syntenic relationships of NF-Y genes were mapped using the Dual Synteny Plotter software. Multiple sequence alignments were performed with MUSCLE under default parameters, and the resulting alignments were used to generate a maximum likelihood (ML) phylogenetic tree with the MEGA X program. RNA-seq analysis was conducted on collected samples, and statistical analyses were performed using Sigma Plot v14.0 (SYSTAT Software, USA).
In this study, the ginger genome was utilized to identify 36 NF-Y genes (10 ZoNF-YAs, 16 ZoNF-YBs, and 10 ZoNF-YCs), which were renamed based on their chromosomal distribution. Ten distinct motifs were identified within the ZoNF-Y genes, with certain unique motifs being vital for gene function. By analyzing their chromosomal location, gene structure, conserved protein motifs, and gene duplication events, we gained a deeper understanding of the evolutionary characteristics of these ZoNF-Y genes. Detailed analysis of ZoNF-Y gene expression patterns across various tissues, performed through RNA-seq and qRT-PCR, revealed their significant role in regulating ginger rhizome and flower growth and development. Additionally, we identified the ZoNF-Y family genes that responded to abiotic stresses.
This study represents the first identification of the ZoNF-Y family in ginger. Our findings contribute to research on evolutionary characteristics and provide a better understanding of the molecular basis for development and abiotic stress response. Furthermore, it lays the foundation for further functional characterization of ZoNF-Y genes with an aim of ginger crop improvement.
核因子 Y(NF-Y)在许多生物过程以及生物和非生物胁迫的反应中发挥着至关重要的作用。然而,它在姜(Zingiber officinale Roscoe)中的功能,作为一种重要的药用和食用蔬菜,在很大程度上尚未被探索。尽管 NF-Y 家族在许多植物物种中已经被彻底鉴定,并且个别 NF-Y TF 的功能已经被描述,但在姜中,关于这个家族的知识却很少。
我们使用两种 BLASTP 方法,作为我们的姜基因组研究项目的一部分,在姜基因组中鉴定了数量最多的 NF-Y 基因。通过这个过程,分析了 NF-Y 蛋白的保守基序。为了研究基因复制事件,我们使用了多共线性扫描工具包(MCScanX)。使用双共线性绘图器软件映射 NF-Y 基因的共线性关系。使用默认参数的 MUSCLE 进行多序列比对,并用 MEGA X 程序生成最大似然(ML)系统发育树。对收集的样本进行 RNA-seq 分析,并使用 Sigma Plot v14.0(SYSTAT Software,USA)进行统计分析。
在这项研究中,利用姜基因组鉴定了 36 个 NF-Y 基因(10 个 ZoNF-YAs、16 个 ZoNF-YBs 和 10 个 ZoNF-YCs),并根据它们的染色体分布进行了重新命名。在 ZoNF-Y 基因中发现了 10 个不同的基序,某些独特的基序对于基因功能至关重要。通过分析它们的染色体位置、基因结构、保守蛋白基序和基因复制事件,我们深入了解了这些 ZoNF-Y 基因的进化特征。通过 RNA-seq 和 qRT-PCR 对不同组织中 ZoNF-Y 基因表达模式的详细分析表明,它们在调节姜根茎和花的生长和发育方面发挥着重要作用。此外,我们还鉴定了对非生物胁迫作出反应的 ZoNF-Y 家族基因。
本研究首次在姜中鉴定了 ZoNF-Y 家族。我们的研究结果有助于研究进化特征,并为发育和非生物胁迫反应的分子基础提供了更好的理解。此外,它为进一步功能表征 ZoNF-Y 基因奠定了基础,目的是改善姜作物。