Wang Linxi, Liu Haobin, Liu Peilan, Wu Guanwei, Shen Wentao, Cui Hongguang, Dai Zhaoji
Sanya Nanfan Research Institute, Key Laboratory of Green Prevention and Control of Tropical Plant Diseases and Pests (Ministry of Education), School of Plant Protection, Hainan University, Haikou, Hainan, China.
State Key Laboratory for Managing Biotic and Chemical Threats to the Quality and Safety of Agro-products, Institute of Plant Virology, Ningbo University, Ningbo, China.
Front Plant Sci. 2023 Aug 10;14:1236838. doi: 10.3389/fpls.2023.1236838. eCollection 2023.
Passion fruit () is a perennial evergreen vine that grows mainly in tropical and subtropical regions due to its nutritional, medicinal and ornamental values. However, the molecular biology study of passion fruit is extremely hindered by the lack of an easy and efficient method for transformation. The protoplast transformation system plays a vital role in plant regeneration, gene function analysis and genome editing. Here, we present a new method ('Cotyledon Peeling Method') for simple and efficient passion fruit protoplast isolation using cotyledon as the source tissue. A high yield (2.3 × 10 protoplasts per gram of fresh tissues) and viability (76%) of protoplasts were obtained upon incubation in the enzyme solution [1% (w/v) cellulase R10, 0.25% (w/v) macerozyme R10, 0.4 M mannitol, 10 mM CaCl, 20 mM KCl, 20 mM MES and 0.1% (w/v) BSA, pH 5.7] for 2 hours. In addition, we achieved high transfection efficiency of 83% via the polyethylene glycol (PEG)-mediated transformation with a green fluorescent protein (GFP)-tagged plasmid upon optimization. The crucial factors affecting transformation efficiency were optimized as follows: 3 μg of plasmid DNA, 5 min transfection time, PEG concentration at 40% and protoplast density of 100 × 10 cells/ml. Furthermore, the established protoplast system was successfully applied for subcellular localization analysis of multiple fluorescent organelle markers and protein-protein interaction study. Taken together, we report a simple and efficient passion fruit protoplast isolation and transformation system, and demonstrate its usage in transient gene expression for the first time in passion fruit. The protoplast system would provide essential support for various passion fruit biology studies, including genome editing, gene function analysis and whole plant regeneration.
西番莲()是一种多年生常绿藤本植物,因其具有营养、药用和观赏价值,主要生长在热带和亚热带地区。然而,由于缺乏简便高效的转化方法,西番莲的分子生物学研究受到极大阻碍。原生质体转化系统在植物再生、基因功能分析和基因组编辑中起着至关重要的作用。在此,我们提出了一种新的方法(“子叶去皮法”),以子叶为源组织,用于简便高效地分离西番莲原生质体。将其在酶溶液[1%(w/v)纤维素酶R10、0.25%(w/v)离析酶R10、0.4M甘露醇、10mM氯化钙、20mM氯化钾、20mM MES和0.1%(w/v)牛血清白蛋白,pH5.7]中孵育2小时后,获得了高产率(每克新鲜组织2.3×10个原生质体)和高活力(76%)的原生质体。此外,通过优化,我们使用绿色荧光蛋白(GFP)标记的质粒,通过聚乙二醇(PEG)介导的转化实现了83%的高转染效率。影响转化效率的关键因素优化如下:3μg质粒DNA、5分钟转染时间、40%的PEG浓度和100×10个细胞/ml的原生质体密度。此外,所建立的原生质体系统成功应用于多种荧光细胞器标记物的亚细胞定位分析和蛋白质-蛋白质相互作用研究。综上所述,我们报道了一种简便高效的西番莲原生质体分离和转化系统,并首次证明了其在西番莲瞬时基因表达中的应用。该原生质体系统将为西番莲的各种生物学研究提供重要支持,包括基因组编辑、基因功能分析和整株植物再生。