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利用胚胎轴外植体开发快速高效的豇豆再生、转化和基因组编辑系统。

Developing a rapid and highly efficient cowpea regeneration, transformation and genome editing system using embryonic axis explants.

机构信息

Corteva Agriscience, Johnston, Iowa, 50131, USA.

Department of Horticulture and Institute of Plant Breeding, Genetics & Genomics, University of Georgia Tifton Campus, Tifton, GA, 31973, USA.

出版信息

Plant J. 2021 May;106(3):817-830. doi: 10.1111/tpj.15202. Epub 2021 Mar 16.

Abstract

Cowpea (Vigna unguiculata (L.) Walp.) is one of the most important legume crops planted worldwide, but despite decades of effort, cowpea transformation is still challenging due to inefficient Agrobacterium-mediated transfer DNA delivery, transgenic selection and in vitro shoot regeneration. Here, we report a highly efficient transformation system using embryonic axis explants isolated from imbibed mature seeds. We found that removal of the shoot apical meristem from the explants stimulated direct multiple shoot organogenesis from the cotyledonary node tissue. The application of a previously reported ternary transformation vector system provided efficient Agrobacterium-mediated gene delivery, while the utilization of spcN as selectable marker enabled more robust transgenic selection, plant recovery and transgenic plant generation without escapes and chimera formation. Transgenic cowpea plantlets developed exclusively from the cotyledonary nodes at frequencies of 4% to 37% across a wide range of cowpea genotypes. CRISPR/Cas-mediated gene editing was successfully demonstrated. The transformation principles established here could also be applied to other legumes to increase transformation efficiencies.

摘要

豇豆(Vigna unguiculata (L.) Walp.)是世界上最重要的豆类作物之一,但尽管经过几十年的努力,由于农杆菌介导的转移 DNA 传递、转基因选择和体外芽再生效率低下,豇豆转化仍然具有挑战性。在这里,我们报告了一种使用从吸胀成熟种子中分离的胚胎轴外植体的高效转化系统。我们发现,从外植体中去除茎尖分生组织刺激了从子叶节组织直接产生多个芽器官。应用先前报道的三元转化载体系统提供了高效的农杆菌介导的基因传递,而利用 spcN 作为选择标记使得更稳健的转基因选择、植物恢复和转基因植物的产生成为可能,而不会发生逃逸和嵌合体形成。转基因豇豆苗仅从子叶节发育而来,频率为 4%至 37%,涵盖了广泛的豇豆基因型。成功证明了 CRISPR/Cas 介导的基因编辑。这里建立的转化原则也可应用于其他豆科植物,以提高转化效率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fe1c/8252785/b3e9547638ba/TPJ-106-817-g003.jpg

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