Yang Zhongfu, Nie Gang, Feng Guangyan, Xu Xiaoheng, Li Dandan, Wang Xia, Huang Linkai, Zhang Xinquan
College of Grassland Science and Technology, Sichuan Agricultural University, Chengdu 611130, China.
College of Grassland Science and Technology, Sichuan Agricultural University, Chengdu 611130, China.
Int J Biol Macromol. 2022 Dec 31;223(Pt A):129-142. doi: 10.1016/j.ijbiomac.2022.11.027. Epub 2022 Nov 8.
Abiotic stress, a major factor limit growth and productivity of major crops. Orchardgrass is one of the most important cool-season forage grasses in the world, and it is highly tolerant to abiotic stress. The MADS-box transcription factor family is one of the largest families in plants, and it plays vital roles in multiple biological processes. However, MADS-box transcription factors in orchardgrass, especially those involved in abiotic stress, have not yet been elucidated. Here, 123 DgMADS-box members were identified in orchardgrass and a detailed overview has been presented. Syntenic analysis indicated that the expansion of the DgMADS-box genes in orchardgrass is mainly dependent on tandem duplication events. Some DgMADS-box genes were induced by multiple abiotic stresses, indicating that these genes may play critical regulatory roles in orchardgrass response to various abiotic stresses. Heterologous expression showed that DgMADS114 and DgMADS115 could enhance stress tolerance of transgenic Arabidopsis, as revealed by longer root length or higher survival rates under PEG, NaCl, ABA, and heat stress. The results of this study provide a scientific basis for clarifying the functional characterization of MADS-box genes in orchardgrass in response to environmental stress can be further used to improve forages and crops via breeding programs.
非生物胁迫是限制主要农作物生长和生产力的主要因素。鸭茅是世界上最重要的冷季型牧草之一,对非生物胁迫具有高度耐受性。MADS-box转录因子家族是植物中最大的家族之一,在多个生物学过程中发挥着至关重要的作用。然而,鸭茅中的MADS-box转录因子,尤其是那些参与非生物胁迫的转录因子,尚未得到阐明。在此,在鸭茅中鉴定出123个DgMADS-box成员,并进行了详细概述。共线性分析表明,鸭茅中DgMADS-box基因的扩增主要依赖于串联重复事件。一些DgMADS-box基因受多种非生物胁迫诱导,表明这些基因可能在鸭茅对各种非生物胁迫的响应中发挥关键调控作用。异源表达表明,DgMADS114和DgMADS115可以增强转基因拟南芥的胁迫耐受性,这在PEG、NaCl、ABA和热胁迫下根长更长或存活率更高得到了体现。本研究结果为阐明鸭茅中MADS-box基因在响应环境胁迫中的功能特性提供了科学依据,可进一步用于通过育种计划改良牧草和作物。