Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA.
Yield10 Bioscience, Inc., Woburn, MA, USA.
Nat Nanotechnol. 2019 May;14(5):447-455. doi: 10.1038/s41565-019-0375-4. Epub 2019 Feb 25.
Plant genetic engineering is an important tool used in current efforts in crop improvement, pharmaceutical product biosynthesis and sustainable agriculture. However, conventional genetic engineering techniques target the nuclear genome, prompting concerns about the proliferation of foreign genes to weedy relatives. Chloroplast transformation does not have this limitation, since the plastid genome is maternally inherited in most plants, motivating the need for organelle-specific and selective nanocarriers. Here, we rationally designed chitosan-complexed single-walled carbon nanotubes, utilizing the lipid exchange envelope penetration mechanism. The single-walled carbon nanotubes selectively deliver plasmid DNA to chloroplasts of different plant species without external biolistic or chemical aid. We demonstrate chloroplast-targeted transgene delivery and transient expression in mature Eruca sativa, Nasturtium officinale, Nicotiana tabacum and Spinacia oleracea plants and in isolated Arabidopsis thaliana mesophyll protoplasts. This nanoparticle-mediated chloroplast transgene delivery tool provides practical advantages over current delivery techniques as a potential transformation method for mature plants to benefit plant bioengineering and biological studies.
植物基因工程是当前作物改良、药物产品生物合成和可持续农业努力中使用的重要工具。然而,传统的基因工程技术针对的是核基因组,这引发了人们对外国基因向杂草亲缘种扩散的担忧。叶绿体转化没有这种限制,因为在大多数植物中,质体基因组是母系遗传的,这促使人们需要针对细胞器的特异性和选择性纳米载体。在这里,我们合理设计了壳聚糖复合的单壁碳纳米管,利用脂质交换包膜渗透机制。单壁碳纳米管选择性地将质粒 DNA 递送到不同植物物种的叶绿体中,而无需外部弹道或化学辅助。我们证明了在成熟的芸薹属植物、豆瓣菜、烟草和菠菜植物以及分离的拟南芥叶肉原生质体中,叶绿体靶向转基因的传递和瞬时表达。与当前的传递技术相比,这种纳米颗粒介导的叶绿体转基因传递工具具有实际优势,可作为一种潜在的转化方法,用于成熟植物,以受益于植物生物工程和生物学研究。