Alsamman Alsamman M, Abdelsattar Mohamed, El Allali Achraf, Radwan Khaled H, Nassar Ahmed E, Mousa Khaled H, Hussein Ahmed, Mokhtar Morad M, Abd El-Maksoud Mamdouh M, Istanbuli Tawffiq, Kehel Zakaria, Hamwieh Aladdin
Agricultural Genetic Engineering Research Institute (AGERI), Agricultural Research Center (ARC), Giza, Egypt.
African Genome Center, Mohammed VI Polytechnic University, Ben Guerir, Morocco.
Front Genet. 2023 Mar 20;14:1128992. doi: 10.3389/fgene.2023.1128992. eCollection 2023.
The basic helix-loop-helix (bHLH) transcription factor is a vital component in plant biology, with a significant impact on various aspects of plant growth, cell development, and physiological processes. Grass pea is a vital agricultural crop that plays a crucial role in food security. However, the lack of genomic information presents a major challenge to its improvement and development. This highlights the urgency for deeper investigation into the function of bHLH genes in grass pea to improve our understanding of this important crop. The identification of bHLH genes in grass pea was performed on a genome-wide scale using genomic and transcriptomic screening. A total of 122 genes were identified as having conserved bHLH domains and were functionally and fully annotated. The LsbHLH proteins could be classified into 18 subfamilies. There were variations in intron-exon distribution, with some genes lacking introns. The cis-element and gene enrichment analyses showed that the LsbHLHs were involved in various plant functions, including response to phytohormones, flower and fruit development, and anthocyanin synthesis. A total of 28 LsbHLHs were found to have cis-elements associated with light response and endosperm expression biosynthesis. Ten conserved motifs were identified across the LsbHLH proteins. The protein-protein interaction analysis showed that all LsbHLH proteins interacted with each other, and nine of them displayed high levels of interaction. RNA-seq analysis of four Sequence Read Archive (SRA) experiments showed high expression levels of LsbHLHs across a range of environmental conditions. Seven highly expressed genes were selected for qPCR validation, and their expression patterns in response to salt stress showed that , and were all expressed in response to salt stress. The study provides an overview of the bHLH family in the grass pea genome and sheds light on the molecular mechanisms underlying the growth and evolution of this crop. The report covers the diversity in gene structure, expression patterns, and potential roles in regulating plant growth and response to environmental stress factors in grass pea. The identified candidate LsbHLHs could be utilized as a tool to enhance the resilience and adaptation of grass pea to environmental stress.
基本螺旋-环-螺旋(bHLH)转录因子是植物生物学中的重要组成部分,对植物生长、细胞发育和生理过程的各个方面都有重大影响。草豌豆是一种重要的农作物,对粮食安全起着至关重要的作用。然而,缺乏基因组信息对其改良和发展构成了重大挑战。这凸显了深入研究草豌豆中bHLH基因功能以增进我们对这种重要作物理解的紧迫性。利用基因组和转录组筛选在全基因组范围内对草豌豆中的bHLH基因进行了鉴定。共鉴定出122个具有保守bHLH结构域的基因,并对其进行了功能和全面注释。LsbHLH蛋白可分为18个亚家族。内含子-外显子分布存在差异,一些基因没有内含子。顺式元件和基因富集分析表明,LsbHLHs参与了多种植物功能,包括对植物激素的反应、花和果实发育以及花青素合成。共发现28个LsbHLHs具有与光反应和胚乳表达生物合成相关的顺式元件。在LsbHLH蛋白中鉴定出10个保守基序。蛋白质-蛋白质相互作用分析表明,所有LsbHLH蛋白都相互作用,其中9个表现出高水平的相互作用。对四个序列读取存档(SRA)实验的RNA-seq分析表明,在一系列环境条件下LsbHLHs都有高表达水平。选择了7个高表达基因进行qPCR验证,它们对盐胁迫的表达模式表明, 、 和 都对盐胁迫有表达响应。该研究概述了草豌豆基因组中的bHLH家族,并揭示了这种作物生长和进化的分子机制。该报告涵盖了草豌豆基因结构的多样性、表达模式以及在调节植物生长和对环境胁迫因子反应中的潜在作用。鉴定出的候选LsbHLHs可作为增强草豌豆对环境胁迫的恢复力和适应性的工具。