Li Qinxue, Zhao Xiaoyu, Wu Jiajie, Shou Huixia, Wang Wei
The Provincial International Science and Technology Cooperation Base on Engineering Biology, International Campus of Zhejiang University, Haining 314400, China.
National Key Laboratory of Wheat Improvement, Shandong Agricultural University, Tai'an 271018, China.
Plants (Basel). 2024 Sep 16;13(18):2588. doi: 10.3390/plants13182588.
Environmental stresses, including drought stress, seriously threaten food security. Previous studies reported that wheat F-box protein, TaFBA1, responds to abiotic stresses in tobacco. Here, we generated transgenic wheat with enhanced (overexpression, OE) or suppressed (RNA interference, RNAi) expression of . The -OE seedlings showed enhanced drought tolerance, as measured by survival rate and fresh weight under severe drought stress, whereas the RNAi plants showed the opposite phenotype. Furthermore, the OE plants had stronger antioxidant capacity compared to WT and RNAi plants and maintained stomatal opening, which resulted in higher water loss under drought stress. However, stronger water absorption capacity in OE roots contributed to higher relative water contents in leaves under drought stress. Moreover, the postponed stomatal closure in OE lines helped to maintain photosynthesis machinery to produce more photoassimilate and ultimately larger seed size. Transcriptomic analyses conducted on WT and OE plants showed that genes involved in antioxidant, fatty acid and lipid metabolism and cellulose synthesis were significantly induced by drought stress in the leaves of OE lines. Together, our studies determined that the F-box protein TaFBA1 modulated drought tolerance and affected yield in wheat and the gene could provide a desirable target for further breeding of wheat.
包括干旱胁迫在内的环境压力严重威胁粮食安全。先前的研究报道,小麦F-box蛋白TaFBA1在烟草中响应非生物胁迫。在此,我们构建了TaFBA1表达增强(过表达,OE)或受抑制(RNA干扰,RNAi)的转基因小麦。TaFBA1-OE幼苗在严重干旱胁迫下的存活率和鲜重测定结果表明其耐旱性增强,而RNAi植株表现出相反的表型。此外,与野生型和RNAi植株相比,OE植株具有更强的抗氧化能力,并维持气孔开放,这导致在干旱胁迫下水分损失更高。然而,OE根系更强的吸水能力有助于在干旱胁迫下叶片保持更高的相对含水量。此外,OE株系中气孔关闭的延迟有助于维持光合作用机制以产生更多的光合产物,并最终使种子更大。对野生型和OE植株进行的转录组分析表明,参与抗氧化、脂肪酸和脂质代谢以及纤维素合成的基因在OE株系叶片中受干旱胁迫显著诱导。总之,我们的研究确定F-box蛋白TaFBA1调节小麦的耐旱性并影响产量,TaFBA1基因可为小麦进一步育种提供理想靶点。