Pigments to precision: RUBY aiding genetic transformation and genome editing in wheat and barley.

IF 3.4 3区 生物学 Q1 PLANT SCIENCES
Manas Ranjan Prusty, Arava Shatil-Cohen, Rakesh Kumar, Davinder Sharma, Anna Minz-Dub, Smadar Ezrati, Avigail Hihinashvili, Amir Sharon
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引用次数: 0

Abstract

Genetic engineering of wheat is complex due to its large genome size, the presence of numerous genes with high sequence similarities, and a multitude of repetitive elements. In addition, genetic transformation of wheat has been difficult, mainly due to poor regeneration in tissue cultures. Recent advances in plant biotechnology, particularly the use of the regenerative genes GROWTH-REGULATING FACTOR (GRF) and GRF-INTERACTING FACTOR (GIF), have provided new tools for wheat transformation and regeneration. Another transformative tool is the RUBY system that involves genetic engineering of three betalain biosynthesis genes, providing a noninvasive, visually detectable red pigment. In this study, we used the GRF4-GIF1 chimera along with the RUBY system to advance transformation and gene editing in wheat and barley. The GRF4-GIF1 chimera significantly aided wheat regeneration; however, it had an opposite effect in barley, where it inhibited the regeneration process. Therefore, we generated RUBY transgenic barley lines using constructs that did not include the GRF4-GIF1 chimera. Additionally, we used the RUBY cassette for fast assessment of gene editing by knockingout the first betalain biosynthetic gene in RUBY- positive transgenic wheat plants, resulting in a change of leaf color from red to green. The edited RUBY wheat lines lost more than just the red color. They also lost betalain-related traits, such as being less likely to get leaf rust (Puccinia triticina) and salt stress. Importantly, the loss of RUBY did not affect plant viability, making it a useful tool for genome editing and a viable alternative to destructive methods.

Supplementary information: The online version contains supplementary material available at 10.1007/s12298-025-01591-5.

色素精确:红宝石帮助小麦和大麦的遗传转化和基因组编辑。
小麦的基因工程是复杂的,因为它的大的基因组大小,具有高序列相似性的许多基因的存在,以及大量的重复元素。此外,小麦的遗传转化一直很困难,主要是由于组织培养再生能力差。植物生物技术的最新进展,特别是再生基因生长调节因子(GRF)和GRF相互作用因子(GIF)的应用,为小麦的转化和再生提供了新的工具。另一个变革性的工具是RUBY系统,它涉及到三种甜菜素生物合成基因的基因工程,提供了一种无创的、视觉上可检测的红色色素。在本研究中,我们使用GRF4-GIF1嵌合体和RUBY系统来推进小麦和大麦的转化和基因编辑。GRF4-GIF1嵌合体显著促进小麦再生;然而,它在大麦中有相反的效果,它抑制了大麦的再生过程。因此,我们使用不含GRF4-GIF1嵌合体的构建体生成了RUBY转基因大麦系。此外,我们使用RUBY盒式基因编辑快速评估,通过敲除RUBY阳性转基因小麦植株的第一个甜菜素生物合成基因,导致叶片颜色从红色变为绿色。经过编辑的RUBY小麦线失去的不仅仅是红色。他们也失去了甜菜素相关的特征,比如不太可能患叶锈病(小麦锈病)和盐胁迫。重要的是,RUBY的缺失不会影响植物的生存能力,使其成为基因组编辑的有用工具和破坏性方法的可行替代方案。补充信息:在线版本包含补充资料,可在10.1007/s12298-025-01591-5获得。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.10
自引率
0.00%
发文量
126
期刊介绍: Founded in 1995, Physiology and Molecular Biology of Plants (PMBP) is a peer reviewed monthly journal co-published by Springer Nature. It contains research and review articles, short communications, commentaries, book reviews etc., in all areas of functional plant biology including, but not limited to plant physiology, biochemistry, molecular genetics, molecular pathology, biophysics, cell and molecular biology, genetics, genomics and bioinformatics. Its integrated and interdisciplinary approach reflects the global growth trajectories in functional plant biology, attracting authors/editors/reviewers from over 98 countries.
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