State Key Laboratory for Conservation and Utilization of Agro Bioresources, Guangxi Key Laboratory for Sugarcane Biology, Guangxi University, Nanning, 530005, China.
Nuclear Institute of Agriculture (NIA), Tando Jam, 70060, Pakistan.
BMC Genomics. 2021 Aug 18;22(1):622. doi: 10.1186/s12864-021-07689-w.
Sugarcane (Saccharum) is the most critical sugar crop worldwide. As one of the most enriched transcription factor families in plants, MYB genes display a great potential to contribute to sugarcane improvement by trait modification. We have identified the sugarcane MYB gene family at a whole-genome level through systematic evolution analyses and expression profiling. R2R3-MYB is a large subfamily involved in many plant-specific processes.
A total of 202 R2R3-MYB genes (356 alleles) were identified in the polyploid Saccharum spontaneum genomic sequence and classified into 15 subgroups by phylogenetic analysis. The sugarcane MYB family had more members by a comparative analysis in sorghum and significant advantages among most plants, especially grasses. Collinearity analysis revealed that 70% of the SsR2R3-MYB genes had experienced duplication events, logically suggesting the contributors to the MYB gene family expansion. Functional characterization was performed to identify 56 SsR2R3-MYB genes involved in various plant bioprocesses with expression profiling analysis on 60 RNA-seq databases. We identified 22 MYB genes specifically expressed in the stem, of which RT-qPCR validated MYB43, MYB53, MYB65, MYB78, and MYB99. Allelic expression dominance analysis implied the differential expression of alleles might be responsible for the high expression of MYB in the stem. MYB169, MYB181, MYB192 were identified as candidate C photosynthetic regulators by C expression pattern and robust circadian oscillations. Furthermore, stress expression analysis showed that MYB36, MYB48, MYB54, MYB61 actively responded to drought treatment; 19 and 10 MYB genes were involved in response to the sugarcane pokkah boeng and mosaic disease, respectively.
This is the first report on genome-wide analysis of the MYB gene family in sugarcane. SsMYBs probably played an essential role in stem development and the adaptation of various stress conditions. The results will provide detailed insights and rich resources to understand the functional diversity of MYB transcription factors and facilitate the breeding of essential traits in sugarcane.
甘蔗(Saccharum)是全球最重要的糖料作物。MYB 基因作为植物中最丰富的转录因子家族之一,具有通过性状改良为甘蔗改良做出贡献的巨大潜力。我们通过系统进化分析和表达谱分析,在全基因组水平上鉴定了甘蔗 MYB 基因家族。R2R3-MYB 是一个涉及许多植物特有的过程的大亚家族。
在多倍体甘蔗基因组序列中,通过系统进化分析共鉴定出 202 个 R2R3-MYB 基因(356 个等位基因),并通过系统进化分析分为 15 个亚组。通过高粱的比较分析和大多数植物,特别是禾本科植物,甘蔗 MYB 家族的成员更多。共线性分析表明,70%的 SsR2R3-MYB 基因经历了复制事件,这表明它们是 MYB 基因家族扩张的贡献者。通过对 60 个 RNA-seq 数据库的表达谱分析,对 56 个 SsR2R3-MYB 基因进行了功能表征,以鉴定参与各种植物生物过程的基因。我们鉴定了 22 个特异表达于茎中的 MYB 基因,其中 RT-qPCR 验证了 MYB43、MYB53、MYB65、MYB78 和 MYB99 的表达。等位基因表达优势分析表明,等位基因的差异表达可能是 MYB 在茎中高表达的原因。通过 C 表达模式和稳健的昼夜节律振荡,鉴定 MYB169、MYB181、MYB192 为候选 C 光合作用调节剂。此外,胁迫表达分析表明,MYB36、MYB48、MYB54、MYB61 对干旱处理有积极响应;19 和 10 个 MYB 基因分别参与对甘蔗曲叶病和嵌纹病的响应。
这是首次对甘蔗 MYB 基因家族进行全基因组分析的报告。SsMYBs 可能在茎发育和各种胁迫条件适应中发挥重要作用。研究结果将为理解 MYB 转录因子的功能多样性提供详细的见解和丰富的资源,并有助于甘蔗重要性状的选育。