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通过促进转基因烟草中黄酮类化合物的积累,[具体基因或蛋白名称缺失]的过表达有助于木质素沉积和耐旱性。

Overexpression of Contributes to Lignin Deposition and Drought Tolerance by Promoting the Accumulation of Flavonoids in Transgenic Tobacco.

作者信息

Song Jian-Ling, Wang Ze-Yu, Wang Yin-Hua, Du Juan, Wang Chen-Yu, Zhang Xiang-Qian, Chen Shu, Huang Xiao-Ling, Xie Xin-Ming, Zhong Tian-Xiu

机构信息

Office of Academic Research, Xingyi Normal University for Nationalities, Xingyi, China.

Department of Grassland Science, College of Forestry and Landscape Architecture, South China Agricultural University, Guangzhou, China.

出版信息

Front Plant Sci. 2022 May 10;13:884456. doi: 10.3389/fpls.2022.884456. eCollection 2022.

Abstract

Elephant grass () is a fast-growing and low-nutrient demand plant that is widely used as a forage grass and potential energy crop in tropical and subtropical regions of Asia, Africa, and the United States. Transgenic tobacco with the gene from produces high lignin content that is associated with drought tolerance in relation to lower accumulation of reactive oxygen species (ROS), along with higher antioxidant enzyme activities and osmotic adjustment. In this study, transgenic tobacco plants revealed no obvious cost to plant growth when expressing the gene. Metabolomic studies demonstrated that tobacco plants tolerant to drought stress accumulated flavonoids under normal and drought conditions, which likely explains the observed tolerance phenotype in wild-type tobacco. Our results suggest that plants overexpressing were better able to cope with water deficit than were wild-type controls; metabolic flux was redirected within primary and specialized metabolism to induce metabolites related to defense to drought stress. These results could help to develop drought-resistant plants for agriculture in the future.

摘要

象草()是一种生长迅速且对养分需求较低的植物,在亚洲、非洲和美国的热带及亚热带地区广泛用作饲草和潜在的能源作物。携带来自象草基因的转基因烟草产生高含量木质素,这与较低的活性氧(ROS)积累、较高的抗氧化酶活性和渗透调节相关联,从而具有耐旱性。在本研究中,转基因烟草植株在表达该基因时未显示出对植物生长有明显代价。代谢组学研究表明,耐旱胁迫的烟草植株在正常和干旱条件下均积累黄酮类化合物,这可能解释了野生型烟草中观察到的耐受表型。我们的结果表明,过表达该基因的植株比野生型对照更能应对水分亏缺;代谢通量在初级代谢和特殊代谢中被重新定向,以诱导与干旱胁迫防御相关的代谢物。这些结果有助于未来开发农业抗旱植物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5b5a/9129916/712ffbc99e51/fpls-13-884456-g009.jpg

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