Kavas Musa, Yıldırım Kubilay, Seçgin Zafer, Abdulla Mohamed Farah, Gökdemir Gökhan
Department of Agricultural Biotechnology, Faculty of Agriculture, Ondokuz Mayıs University, Samsun, Turkey.
Department of Molecular Biology and Genetics, Faculty of Arts and Sciences, Ondokuz Mayıs University, Samsun, Turkey.
Physiol Mol Biol Plants. 2021 Sep;27(9):1885-1902. doi: 10.1007/s12298-021-01052-9. Epub 2021 Sep 7.
Plant-specific BURP domain-containing proteins have an essential role in the plant's development and stress responses. Although BURP domain-containing proteins have been identified in several plant species, genome-wide analysis of the BURP gene family has not been investigated in the common bean. In the present study, we identified 11 BURP family members in the common bean () genome with a comprehensive in silico analysis. Pairwise alignment and phylogenetic analyses grouped members into four subfamilies [RD-22 like (3), PG1β-like (4), BNM2-like (3), and USP-like (1)] according to their amino acid motifs, protein domains and intron-exon structure. The physical and biochemical characteristics of amino acids, motif and intron-exon structure, and -regulatory elements of BURPs members were determined. Promoter regions of BURP members included stress, light, and hormone response-related cis-elements. Therefore, expression profiles of genes were identified with in silico tools and qRT-PCR analyses under stress (salt and drought) and hormone treatment (ABA, IAA) in the current study. While significant activity changes were not observed in BURP genes in RNA-seq data sets related to salt stress, it was determined that some BURP genes were expressed differently in those with drought stress. We identified 12 different miRNA, including miRNA395, miRNA156, miRNA169, miRNA171, miRNA319, and miRNA390, targeting the nine genes using two different in silico tools based on perfect or near-perfect complementarity to their targets. Here we present the first study to identify and characterize the genes in common bean using whole-genome analysis, and the findings may serve as a reference for future functional research in common bean.
The online version contains supplementary material available at 10.1007/s12298-021-01052-9.
植物特有的含BURP结构域蛋白在植物发育和胁迫响应中起重要作用。虽然在几种植物物种中已鉴定出含BURP结构域蛋白,但尚未对菜豆的BURP基因家族进行全基因组分析。在本研究中,我们通过全面的计算机分析在菜豆()基因组中鉴定出11个BURP家族成员。根据其氨基酸基序、蛋白质结构域和内含子-外显子结构,成对比对和系统发育分析将成员分为四个亚家族[RD-22样(3个)、PG1β样(4个)、BNM2样(3个)和USP样(1个)]。确定了BURP成员的氨基酸物理和生化特性、基序和内含子-外显子结构以及调控元件。BURP成员的启动子区域包含与胁迫、光和激素响应相关的顺式元件。因此,在本研究中,利用计算机工具和qRT-PCR分析确定了基因在胁迫(盐和干旱)和激素处理(ABA、IAA)下的表达谱。虽然在与盐胁迫相关的RNA-seq数据集中未观察到BURP基因的显著活性变化,但确定一些BURP基因在干旱胁迫数据集中表达不同。我们使用两种基于与靶标完美或近乎完美互补的不同计算机工具,鉴定出12种不同的miRNA,包括miRNA395、miRNA156、miRNA169、miRNA171、miRNA319和miRNA390,靶向9个基因。在此,我们首次利用全基因组分析对菜豆中的基因进行鉴定和表征,这些发现可为菜豆未来的功能研究提供参考。
在线版本包含可在10.1007/s12298-021-01052-9获取的补充材料。