GmAP2 enhances plant tolerance to aluminum toxicity and phosphorus deficiency in Arabidopsis.

IF 4.5 2区 生物学 Q1 PLANT SCIENCES
Cheng Li, Pengxin Du, Lidan Wang, Xin Xu, Hongying Zhong, Yanbo Cheng, Tengxiang Lian, Lu Li, Qibin Ma
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引用次数: 0

Abstract

Key message: Overexpression of the GmAP2 gene regulates several aspects of gene expression in Arabidopsis, including acid-aluminum stress, low-phosphorus stress, ERF family transcription factors, ABA signaling, and genes related to lateral root development. The overexpression of GmAP2 can help plants mitigate the effects of aluminum toxicity and increase their tolerance to low-phosphorus stress. Ethylene response factors (ERFs) represent one of the largest transcription factor families in plants and are involved in regulating biotic and abiotic stresses, as well as growth and development in higher plants. In this study, the soybean GmAP2 gene, encoding the AP2/ERF transcription factor, is a downstream gene of GsMYB7, which enhances soybean tolerance to aluminum toxicity under acidic conditions, referred to as acid-aluminum stress. The expression pattern of GmAP2, which is constitutive and rich in roots, was upregulated under acid-aluminum and low-phosphorus stress. The resistance phenotypes of the wild-type and GmAP2-overexpressing lines were investigated by treatment with acid-aluminum plates and low-phosphorus plates, respectively. The results revealed significant differences between the GmAP2 transgenic lines and the wild type, and compared with the wild-type plants, the genetically modified plants presented significantly better physiological indicators, such as fresh weight, root length, and number of lateral roots. Under acid-aluminum stress, changes in weight, MDA content, and proline content in Arabidopsis thaliana were evaluated. The genes associated with these pathways, including genes related to the acid-aluminum response (AtALMT, AtALS3, AtSTOP1, and AtMATE), ERF family (AtERF6, AtERF15, AtERF5, and AtERF109), and/or ABA response (AtABI5, AtRD29A, AtRAP2.6, AtABI1, and AtABI2), are significantly regulated. In the context of low-phosphorus stress, a comprehensive analysis of the regulatory landscape revealed significant alterations in genes involved in these pathways, including low phosphorus-responsive genes (AtPHT1; 1, AtPHO1, AtPHR1, and AtMGD2), ERF family genes (AtERF1, AtERF6, AtERF13, and AtERF109), and/or genes associated with lateral root development (AtKCS16). These regulatory changes occurred in response to low-phosphorus stress. These results provide a basis for breeding soybean varieties that can increase their tolerance to the stresses of aluminum toxicity and low phosphorus.

GmAP2增强拟南芥对铝毒性和缺磷的耐受性。
关键信息:GmAP2基因的过表达调控拟南芥几个方面的基因表达,包括酸铝胁迫、低磷胁迫、ERF家族转录因子、ABA信号和侧根发育相关基因。GmAP2的过表达可以帮助植物减轻铝毒的影响,提高其对低磷胁迫的耐受性。乙烯响应因子(ERFs)是植物中最大的转录因子家族之一,参与调控生物和非生物胁迫以及高等植物的生长发育。在本研究中,大豆GmAP2基因编码AP2/ERF转录因子,是GsMYB7的下游基因,在酸性条件下增强大豆对铝毒性的耐受性,即酸铝胁迫。在酸铝和低磷胁迫下,GmAP2的表达模式上调,而GmAP2是根中丰富的组成部分。采用酸铝板和低磷板分别对野生型和gmap2过表达系的抗性表型进行了研究。结果表明,GmAP2转基因品系与野生型之间存在显著差异,与野生型相比,转基因植株鲜重、根长、侧根数等生理指标明显优于野生型。研究了酸铝胁迫下拟南芥重、丙二醛含量和脯氨酸含量的变化。与这些途径相关的基因,包括与酸铝反应相关的基因(AtALMT、AtALS3、AtSTOP1和AtMATE)、ERF家族(AtERF6、AtERF15、AtERF5和AtERF109)和/或ABA反应(AtABI5、AtRD29A、AtRAP2.6、AtABI1和AtABI2),都受到显著调控。在低磷胁迫下,对调控格局的综合分析显示,参与这些途径的基因发生了显著变化,包括低磷响应基因(AtPHT1; 1、AtPHO1、AtPHR1和AtMGD2)、ERF家族基因(AtERF1、AtERF6、AtERF13和AtERF109)和/或与侧根发育相关的基因(AtKCS16)。这些调控变化发生在低磷胁迫下。这些结果为选育提高大豆耐铝毒性和低磷胁迫能力的品种提供了依据。
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来源期刊
Plant Cell Reports
Plant Cell Reports 生物-植物科学
CiteScore
10.80
自引率
1.60%
发文量
135
审稿时长
3.2 months
期刊介绍: Plant Cell Reports publishes original, peer-reviewed articles on new advances in all aspects of plant cell science, plant genetics and molecular biology. Papers selected for publication contribute significant new advances to clearly identified technological problems and/or biological questions. The articles will prove relevant beyond the narrow topic of interest to a readership with broad scientific background. The coverage includes such topics as: - genomics and genetics - metabolism - cell biology - abiotic and biotic stress - phytopathology - gene transfer and expression - molecular pharming - systems biology - nanobiotechnology - genome editing - phenomics and synthetic biology The journal also publishes opinion papers, review and focus articles on the latest developments and new advances in research and technology in plant molecular biology and biotechnology.
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