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EPSPS 基因座的等位基因交换赋予了木薯对草甘膦的耐受性。

Allele exchange at the EPSPS locus confers glyphosate tolerance in cassava.

机构信息

Department of Genetics, Cell Biology, & Development and Center for Genome Engineering, University of Minnesota, Minneapolis, MN, USA.

Donald Danforth Plant Science Center, St. Louis, MO, USA.

出版信息

Plant Biotechnol J. 2018 Jul;16(7):1275-1282. doi: 10.1111/pbi.12868. Epub 2018 Jan 22.

Abstract

Effective weed control can protect yields of cassava (Manihot esculenta) storage roots. Farmers could benefit from using herbicide with a tolerant cultivar. We applied traditional transgenesis and gene editing to generate robust glyphosate tolerance in cassava. By comparing promoters regulating expression of transformed 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS) genes with various paired amino acid substitutions, we found that strong constitutive expression is required to achieve glyphosate tolerance during in vitro selection and in whole cassava plants. Using strategies that exploit homologous recombination (HR) and nonhomologous end-joining (NHEJ) DNA repair pathways, we precisely introduced the best-performing allele into the cassava genome, simultaneously creating a promoter swap and dual amino acid substitutions at the endogenous EPSPS locus. Primary EPSPS-edited plants were phenotypically normal, tolerant to high doses of glyphosate, with some free of detectable T-DNA integrations. Our methods demonstrate an editing strategy for creating glyphosate tolerance in crop plants and demonstrate the potential of gene editing for further improvement of cassava.

摘要

有效的杂草控制可以保护木薯(Manihot esculenta)贮藏根的产量。农民可以从使用具有耐除草剂的品种中受益。我们应用传统的转基因和基因编辑技术,使木薯具有强大的草甘膦耐受性。通过比较调控转化的 5-烯醇丙酮酰莽草酸-3-磷酸合酶(EPSPS)基因表达的启动子与各种配对的氨基酸替换,我们发现,在体外选择和整个木薯植株中,需要强组成型表达才能实现草甘膦耐受性。我们利用同源重组(HR)和非同源末端连接(NHEJ)DNA 修复途径的策略,将表现最佳的等位基因精确地引入木薯基因组,同时在内源性 EPSPS 基因座上进行启动子替换和双氨基酸替换。初级 EPSPS 编辑植株表型正常,对高剂量草甘膦具有耐受性,有些植株没有检测到 T-DNA 整合。我们的方法展示了在作物植物中创建草甘膦耐受性的编辑策略,并展示了基因编辑在进一步改良木薯方面的潜力。

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