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用于香蕉体内验证和无转基因基因组编辑的简化原生质体转染系统。

Streamlined protoplast transfection system for in-vivo validation and transgene-free genome editing in Banana.

作者信息

Lakhani Hiralben, Kumar Naveen, Jangra Alka, Negi Sanjana, Dholariya Thobhanbhai, Tiwari Siddharth

机构信息

Plant Tissue Culture and Genetic Engineering Lab, BRIC-National Agri-Food and Biomanufacturing Institute (BRIC-NABI) (Formerly National Agri-Food Biotechnology Institute), Department of Biotechnology, Ministry of Science and Technology (Government of India), Sector‑81, Knowledge City, S.A.S. Nagar, Mohali, Punjab, 140306, India.

Department of Biotechnology, Panjab University, Chandigarh, 160014, India.

出版信息

Transgenic Res. 2025 Jun 3;34(1):28. doi: 10.1007/s11248-025-00446-9.

Abstract

The advancement in the CRISPR/Cas system has significantly streamlined genome editing in plants, rendering it simple, reliable, and efficient. However, the development of transgene-free crops is a challenging task for vegetatively propagated plants like banana. In the present study, we established banana protoplasts-based versatile and efficient platform for genome editing to overcome this limitation. Herein, a protocol has been optimized for protoplast isolation by considering leaf and embryogenic cell suspension (ECS) of banana cultivar Grand Naine. Freshly prepared ECS was identified as the best source for protoplast isolation. The protoplast viability and competency were checked by transfection with plasmid and RNP complex. Polyethylene glycol (PEG)-mediated protoplast transfection using pCAMBIA1302 and pJL50TRBO vectors showed GFP expression with 30 and 70% efficiency, respectively, eventually proving the protocol's efficacy. Further, gRNAs targeting banana β-carotene hydroxylase gene are validated by in-vitro cleavage test and subsequently used for RNP complex formation with varied ratios (1:1, 1:2, 1:5, and 1:10) of SpCas9 to gRNA1. Among these, a 1:2 molar ratio proved best to generate indel frequency with 7%. Sequencing analysis of the target amplicon revealed mutations upstream of the PAM region, specifically with gRNA1, among the three in-vitro validated gRNAs. This study evaluated the effectiveness of gRNAs in-vitro and in-vivo, yielding inconsistent results that highlight the need for comprehensive in-vivo validation of their functionality. Conclusively, the optimized protocol for banana transfection has the potential to be harnessed for the generation of transgene-free genetically improved banana.

摘要

CRISPR/Cas系统的进步显著简化了植物基因组编辑,使其变得简单、可靠且高效。然而,对于像香蕉这样通过营养繁殖的植物来说,培育无转基因作物是一项具有挑战性的任务。在本研究中,我们建立了基于香蕉原生质体的通用且高效的基因组编辑平台,以克服这一限制。在此,通过考虑香蕉品种大麦克的叶片和胚性细胞悬浮液(ECS),优化了原生质体分离方案。新鲜制备的ECS被确定为原生质体分离的最佳来源。通过用质粒和核糖核蛋白(RNP)复合物转染来检查原生质体的活力和转化能力。使用pCAMBIA1302和pJL50TRBO载体的聚乙二醇(PEG)介导的原生质体转染分别以30%和70%的效率显示出绿色荧光蛋白(GFP)表达,最终证明了该方案的有效性。此外,靶向香蕉β-胡萝卜素羟化酶基因的引导RNA(gRNA)通过体外切割试验进行了验证,随后用于与不同比例(1:1、1:2、1:5和1:10)的化脓性链球菌Cas9(SpCas9)与gRNA1形成RNP复合物。其中,1:2的摩尔比被证明最适合产生7%的插入缺失频率。对目标扩增子的测序分析揭示了在三个体外验证的gRNA中,在原间隔序列临近基序(PAM)区域上游存在突变,特别是与gRNA1相关的突变。本研究评估了gRNA在体外和体内的有效性,结果不一致,这突出了对其功能进行全面体内验证的必要性。总之,优化后的香蕉转染方案有潜力用于培育无转基因的基因改良香蕉。

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