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来自拟南芥的Tpo1同源物的异源表达赋予酵母对除草剂2,4-D和其他化学胁迫的抗性。

Heterologous expression of a Tpo1 homolog from Arabidopsis thaliana confers resistance to the herbicide 2,4-D and other chemical stresses in yeast.

作者信息

Cabrito Tânia R, Teixeira Miguel C, Duarte Alexandra A, Duque Paula, Sá-Correia Isabel

机构信息

Institute for Biotechnology and BioEngineering, Centre for Biological and Chemical Engineering, Instituto Superior Técnico, Av. Rovisco Pais, 1049-001 Lisbon, Portugal.

出版信息

Appl Microbiol Biotechnol. 2009 Oct;84(5):927-36. doi: 10.1007/s00253-009-2025-5. Epub 2009 May 14.

DOI:10.1007/s00253-009-2025-5
PMID:19440702
Abstract

The understanding of the molecular mechanisms underlying acquired herbicide resistance is crucial in dealing with the emergence of resistant weeds. Saccharomyces cerevisiae has been used as a model system to gain insights into the mechanisms underlying resistance to the herbicide 2,4-dichlorophenoxyacetic acid (2,4-D). The TPO1 gene, encoding a multidrug resistance (MDR) plasma membrane transporter of the major facilitator superfamily (MFS), was previously found to confer resistance to 2,4-D in yeast and to be transcriptionally activated in response to the herbicide. In this work, we demonstrate that Tpo1p is required to reduce the intracellular concentration of 2,4-D. ScTpo1p homologs encoding putative plasma membrane MFS transporters from the plant model Arabidopsis thaliana were analyzed for a possible role in 2,4-D resistance. At5g13750 was chosen for further analysis, as its transcript levels were found to increase in 2,4-D stressed plants. The functional heterologous expression of this plant open reading frame in yeast was found to confer increased resistance to the herbicide in Deltatpo1 and wild-type cells, through the reduction of the intracellular concentration of 2,4-D. Heterologous expression of At5g13750 in yeast also leads to increased resistance to indole-3-acetic acid (IAA), Al(3+) and Tl(3+). At5g13750 is the first plant putative MFS transporter to be suggested as possibly involved in MDR.

摘要

了解获得性除草剂抗性的分子机制对于应对抗性杂草的出现至关重要。酿酒酵母已被用作模型系统,以深入了解对除草剂2,4-二氯苯氧乙酸(2,4-D)抗性的潜在机制。先前发现,编码主要易化子超家族(MFS)的多药抗性(MDR)质膜转运蛋白的TPO1基因可赋予酵母对2,4-D的抗性,并在响应除草剂时被转录激活。在这项工作中,我们证明Tpo1p是降低细胞内2,4-D浓度所必需的。分析了来自植物模型拟南芥的编码假定质膜MFS转运蛋白的ScTpo1p同源物在2,4-D抗性中的可能作用。选择At5g13750进行进一步分析,因为发现其转录水平在2,4-D胁迫的植物中增加。通过降低细胞内2,4-D浓度,发现该植物开放阅读框在酵母中的功能性异源表达赋予Deltatpo1和野生型细胞对除草剂的抗性增加。At5g13750在酵母中的异源表达也导致对吲哚-3-乙酸(IAA)、Al(3+)和Tl(3+)的抗性增加。At5g13750是第一个被认为可能参与多药抗性的植物假定MFS转运蛋白。

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