Ullah Uzair, Shalmani Abdullah, Ilyas Mohammad, Raza Ali, Ahmad Sheraz, Shah Amir Zaman, Khan Fahim Ullah, Bibi Ayesha, Rehman Shafee Ur, Abbas Zaheer, Buttar Zeeshan Ali
Department of Biotechnology and Genetic Engineering, Hazara University Manshera, Manshera, KPK, Pakistan.
College of Life Sciences, Northwest A and F University, Yangling, Shaanxi, China.
Mol Biol Rep. 2022 Dec;49(12):12039-12053. doi: 10.1007/s11033-022-07814-2. Epub 2022 Oct 29.
The BRASSINAZOLE-RESISTANT (BZR) family of transcription factors affects a variety of developmental and physiological processes and plays a key role in multiple stress-resistance functions in plants. However, the evolutionary relationship and individual expression patterns of the BZR genes are unknown in various crop plants.
In this study, we performed a genome-wide analysis of the BZR genes family in wheat and rice. Here, we found a total of 16 and 6 proteins containing the BZR domain in wheat and rice respectively. The phylogenetic analysis divided the identified BZR proteins from several plants into five subfamilies. The intron/exon structural patterns and conserved motifs distribution revealed that BZR proteins exhibite high specificities in each subfamily. Moreover, the co-expression and protein-protein interaction analysis suggested that BZR proteins may interact/co-expressed with several other proteins to perform various functions in plants. The presence of different stresses, hormones and light-responsive cis-elements in promoter regions of BZR genes imply its diverse functions in plants. The expression patterns indicated that many BZR genes regulate organ development and differentiation. BZR genes significantly respond to exogenous application of brassinosteroids, melatonin and abiotic stresses, demonstrating its key role in various developmental and physiological processes.
The present study establishes the foundation for future functional genomics studies of BZR genes through reverse genetics and to further explore the potential of BZR genes in mitigating the stress tolerance in crop plants.
转录因子的抗油菜素唑(BZR)家族影响多种发育和生理过程,在植物的多重抗逆功能中起关键作用。然而,不同作物中BZR基因的进化关系和个体表达模式尚不清楚。
在本研究中,我们对小麦和水稻中的BZR基因家族进行了全基因组分析。在此,我们分别在小麦和水稻中发现了总共16种和6种含有BZR结构域的蛋白质。系统发育分析将从几种植物中鉴定出的BZR蛋白分为五个亚家族。内含子/外显子结构模式和保守基序分布表明,BZR蛋白在每个亚家族中表现出高度特异性。此外,共表达和蛋白质-蛋白质相互作用分析表明,BZR蛋白可能与其他几种蛋白质相互作用/共表达,以在植物中发挥各种功能。BZR基因启动子区域存在不同的胁迫、激素和光响应顺式元件,暗示其在植物中的多种功能。表达模式表明,许多BZR基因调节器官的发育和分化。BZR基因对外源油菜素内酯、褪黑素和非生物胁迫有显著响应,证明其在各种发育和生理过程中的关键作用。
本研究通过反向遗传学为未来BZR基因的功能基因组学研究奠定了基础,并进一步探索了BZR基因在提高作物植物抗逆性方面的潜力。