Ullah Uzair, Mao Wenli, Abbas Waseem, Alharthi Badr, Bhanbhro Nadeem, Xiong Meng, Gul Nazish, Shalmani Abdullah
State Key Laboratory of Crop Stress Biology in Arid Areas, College of Life Sciences, Northwest A&F University, Yangling, 712100, China.
Shaanxi Changqing National Nature Reserve, Hanzhong, China.
Funct Integr Genomics. 2023 Apr 28;23(2):139. doi: 10.1007/s10142-023-01061-9.
MATH-BTB proteins are involved in a variety of cellular processes that regulate cell homeostasis and developmental processes. Previous studies reported the involvement of BTB proteins in the development of various organs in plants; however, the function of BTB proteins in salt stress is less studied. Here, we found a novel MATH-BTB domain-containing OsMBTB32 protein that was highly expressed in leaf, root, and shoot. The up-regulation of the OsMBTB32 transcript in 2-week-old seedlings under salt stress suggests the significant role of the OsMBTB32 gene in salinity. The OsMBTB32 transgenic seedlings (OE and RNAi) exhibited significant differences in various phenotypes, including plumule, radical, primary root, and shoot length, compared to WT seedlings. We further found that OsCUL1 proteins, particularly OsCUL1-1 and OsCUL1-3, interact with OsMBTB32 and may suppress the function of OsMBTB32 during salt stress. Moreover, OsWRKY42, a homolog of ZmWRKY114 which negatively regulates salt stress in rice, directly binds to the W-box of OsCUL1-1 and OsCUL1-3 promoters to promote the interaction of OsCUL1-1 and OsCUL1-3 with OsMBTB32 protein in rice. The overexpression of OsMBTB32 and OsCUL1-3 further confirmed the function of OsMBTB32 and OsCUL1s in salt tolerance in Arabidopsis. Overall, the findings of the present study provide promising knowledge regarding the MATH-BTB domain-containing proteins and their role in enhancing the growth and development of rice under salt stress.MATH-BTB proteins are involved in a variety of cellular processes that regulate cell homeostasis and developmental processes. Previous studies reported the involvement of BTB proteins in the development of various organs in plants; however, the function of BTB proteins in salt stress is less studied. Here, we found a novel MATH-BTB domain-containing OsMBTB32 protein that was highly expressed in leaf, root, and shoot. The up-regulation of the OsMBTB32 transcript in 2-week-old seedlings under salt stress suggests the significant role of the OsMBTB32 gene in salinity. The OsMBTB32 transgenic seedlings (OE and RNAi) exhibited significant differences in various phenotypes, including plumule, radical, primary root, and shoot length, compared to WT seedlings. We further found that OsCUL1 proteins, particularly OsCUL1-1 and OsCUL1-3, interact with OsMBTB32 and may suppress the function of OsMBTB32 during salt stress. Moreover, OsWRKY42, a homolog of ZmWRKY114 which negatively regulates salt stress in rice, directly binds to the W-box of OsCUL1-1 and OsCUL1-3 promoters to promote the interaction of OsCUL1-1 and OsCUL1-3 with OsMBTB32 protein in rice. The overexpression of OsMBTB32 and OsCUL1-3 further confirmed the function of OsMBTB32 and OsCUL1s in salt tolerance in Arabidopsis. Overall, the findings of the present study provide promising knowledge regarding the MATH-BTB domain-containing proteins and their role in enhancing the growth and development of rice under salt stress.
MATH-BTB蛋白参与多种调节细胞稳态和发育过程的细胞活动。先前的研究报道了BTB蛋白参与植物各种器官的发育;然而,BTB蛋白在盐胁迫中的功能研究较少。在这里,我们发现了一种新的含MATH-BTB结构域的OsMBTB32蛋白,它在叶、根和茎中高表达。盐胁迫下2周龄幼苗中OsMBTB32转录本的上调表明OsMBTB32基因在盐度方面具有重要作用。与野生型幼苗相比,OsMBTB32转基因幼苗(OE和RNAi)在各种表型上表现出显著差异,包括胚芽、胚根、主根和茎的长度。我们进一步发现,OsCUL1蛋白,特别是OsCUL1-1和OsCUL1-3,与OsMBTB32相互作用,并可能在盐胁迫期间抑制OsMBTB32的功能。此外,OsWRKY42是ZmWRKY114的同源物,在水稻中负向调节盐胁迫,它直接与OsCUL1-1和OsCUL1-3启动子的W-box结合,以促进水稻中OsCUL1-1和OsCUL1-3与OsMBTB32蛋白的相互作用。OsMBTB32和OsCUL1-3的过表达进一步证实了OsMBTB32和OsCUL1在拟南芥耐盐性中的功能。总体而言,本研究的结果为含MATH-BTB结构域的蛋白及其在盐胁迫下促进水稻生长发育中的作用提供了有价值的知识。MATH-BTB蛋白参与多种调节细胞稳态和发育过程的细胞活动。先前的研究报道了BTB蛋白参与植物各种器官的发育;然而,BTB蛋白在盐胁迫中的功能研究较少。在这里,我们发现了一种新的含MATH-BTB结构域的OsMBTB32蛋白,它在叶、根和茎中高表达。盐胁迫下2周龄幼苗中OsMBTB32转录本的上调表明OsMBTB32基因在盐度方面具有重要作用。与野生型幼苗相比,OsMBTB32转基因幼苗(OE和RNAi)在各种表型上表现出显著差异,包括胚芽、胚根、主根和茎的长度。我们进一步发现,OsCUL1蛋白,特别是OsCUL1-1和OsCUL1-3,与OsMBTB32相互作用,并可能在盐胁迫期间抑制OsMBTB32的功能。此外,OsWRKY42是ZmWRKY114的同源物,在水稻中负向调节盐胁迫,它直接与OsCUL1-1和OsCUL1-3启动子的W-box结合,以促进水稻中OsCUL1-1和OsCUL1-3与OsMBTB32蛋白的相互作用。OsMBTB32和OsCUL1-3的过表达进一步证实了OsMBTB32和OsCUL1在拟南芥耐盐性中的功能。总体而言,本研究的结果为含MATH-BTB结构域的蛋白及其在盐胁迫下促进水稻生长发育中的作用提供了有价值的知识。