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异源表达黄杨锌指蛋白基因(ZxZF)增强了杨树光合作用对干旱胁迫的耐受性。

Heterologous expression of Zygophyllum xanthoxylon zinc finger protein gene (ZxZF) enhances the tolerance of poplar photosynthetic function to drought stress.

机构信息

Key Laboratory of Saline-alkali Vegetation Ecology Restoration, Ministry of Education, College of Life Sciences, Northeast Forestry University, Harbin, Heilongjiang, 150040, China.

State Key Laboratory of Tree Genetics and Breeding, Key Laboratory of Tree Breeding and Cultivation of State Forestry Administration, Research Institute of Forestry, Chinese Academy of Forestry, Beijing, 100091, China.

出版信息

Plant Physiol Biochem. 2023 Jun;199:107748. doi: 10.1016/j.plaphy.2023.107748. Epub 2023 May 9.

Abstract

The ZxZF transcription factor (TF) of Zygophyllum xanthoxylon (Bunge) Maxim, an extremely drought-resistant woody plant, is a CH zinc finger protein. Studies have shown that CH zinc finger proteins play important roles in activating stress-related genes and enhancing plant resistance. However, their function in regulating plant photosynthesis under drought stress is not well understood. Since poplar is an important greening and afforestation tree species, it is particularly important to cultivate excellent drought-tolerant varieties. The ZxZF transcription factor (TF) was heterogeneously expressed in Euroamerican poplar (Populus × euroameracana cl.'Bofengl') by genetic transformation. Based on the mechanism and potential function of poplar photosynthesis regulated by ZxZF under drought stress, transcriptomic and physiological determinations were used to reveal the important role of this gene in improving the drought resistance of poplar. The results showed that the overexpression of ZxZF TF in transgenic poplars could improve the inhibition of Calvin cycle by regulating stomatal opening and increasing the concentration of intercellular CO. The chlorophyll content, photosynthetic performance index, and photochemical efficiency of transgenic lines under drought stress were significantly higher than those of the wild type (WT). The overexpression of ZxZF TFs could alleviate the degree of photoinhibition of photosystems II and I under drought stress and maintain the efficiency of light energy capture and the photosynthetic electron transport chain. The transcriptomic data also showed that differentially expressed genes between the transgenic poplar and WT under drought stress were primarily enriched in metabolic pathways related to photosynthesis, such as photosynthesis, photosynthesis-antenna protein, porphyrin and chlorophyll metabolism, and photosynthetic carbon fixation, and the downregulation of genes related to chlorophyll synthesis, photosynthetic electron transport and Calvin cycle were alleviated. In addition, the overexpression of ZxZF TF can alleviate the inhibition of NADH dehydrogenase-like (NDH) cyclic electron flow of the poplar NDH pathway under drought stress, which plays an important role in reducing the excess pressure of electrons on the photosynthetic electron transport chain and maintaining the normal photosynthetic electron transport. In summary, the overexpression of ZxZF TFs can effectively alleviate the inhibition of drought on the assimilation of carbon in poplar and have a positive impact on light energy capture, the orderly transport of photosynthetic electron transport chain and the integrity of the photosystem, which is highly significant to acheivean in-depth understanding of the function of ZxZF TFs. This also provides an important basis for the breeding of new transgenic poplar varieties.

摘要

黄花草木樨 ZxZF 转录因子(TF)是一种极度耐旱的木本植物,它是一种 CH 锌指蛋白。研究表明,CH 锌指蛋白在激活与应激相关的基因和增强植物抗性方面发挥着重要作用。然而,它们在调节植物光合作用方面的功能在干旱胁迫下还不太清楚。由于杨树是一种重要的绿化和造林树种,培育优良的耐旱品种尤为重要。通过遗传转化,在欧美杨(Populus × euroamericana cl.'Bofengl')中异源表达 ZxZF 转录因子。基于干旱胁迫下 ZxZF 调节杨树光合作用的机制和潜在功能,通过转录组和生理学测定揭示了该基因在提高杨树抗旱性方面的重要作用。结果表明,在转基因杨树中过表达 ZxZF TF 可以通过调节气孔开度和增加胞间 CO 浓度来改善卡尔文循环的抑制。干旱胁迫下,转基因株系的叶绿素含量、光合性能指数和光化学效率均显著高于野生型(WT)。过表达 ZxZF TFs 可以减轻干旱胁迫下光系统 II 和 I 的光抑制程度,并维持光能捕获和光合作用电子传递链的效率。转录组数据还表明,干旱胁迫下转基因杨树与 WT 之间差异表达的基因主要富集在与光合作用相关的代谢途径中,如光合作用、光合作用天线蛋白、卟啉和叶绿素代谢以及光合碳固定,并且缓解了与叶绿素合成、光合电子传递和卡尔文循环相关的基因下调。此外,过表达 ZxZF TF 可以减轻干旱胁迫下杨树 NDH 途径 NADH 脱氢酶样(NDH)循环电子流的抑制,这对减轻光合作用电子传递链上电子的过剩压力和维持正常的光合作用电子传递起着重要作用。综上所述,过表达 ZxZF TFs 可以有效缓解干旱对杨树碳同化的抑制,对光能捕获、光合作用电子传递链的有序运输和光系统的完整性具有积极影响,这对于深入了解 ZxZF TFs 的功能具有重要意义。这也为新的转基因杨树品种的培育提供了重要依据。

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