Biomacromolecules Research Team, RIKEN Center for Sustainable Resource Science, Wako, Saitama, 351-0198, Japan.
Department of Applied Chemistry, Kyushu University, Nishi-ku, Fukuoka, 819-0395, Japan.
Nat Commun. 2022 May 16;13(1):2417. doi: 10.1038/s41467-022-30185-y.
The delivery of genetic material into plants has been historically challenging due to the cell wall barrier, which blocks the passage of many biomolecules. Carbon nanotube-based delivery has emerged as a promising solution to this problem and has been shown to effectively deliver DNA and RNA into intact plants. Mitochondria are important targets due to their influence on agronomic traits, but delivery into this organelle has been limited to low efficiencies, restricting their potential in genetic engineering. This work describes the use of a carbon nanotube-polymer hybrid modified with functional peptides to deliver DNA into intact plant mitochondria with almost 30 times higher efficiency than existing methods. Genetic integration of a folate pathway gene in the mitochondria displays enhanced plant growth rates, suggesting its applications in metabolic engineering and the establishment of stable transformation in mitochondrial genomes. Furthermore, the flexibility of the polymer layer will also allow for the conjugation of other peptides and cargo targeting other organelles for broad applications in plant bioengineering.
将遗传物质递送到植物中一直具有挑战性,这是由于细胞壁的屏障作用,它阻止了许多生物分子的通过。基于碳纳米管的递呈技术已经成为解决这个问题的有前途的方法,并且已经被证明可以有效地将 DNA 和 RNA 递送到完整的植物中。线粒体是重要的靶标,因为它们对农艺性状有影响,但将其递送到这个细胞器的效率一直很低,限制了它们在基因工程中的潜力。这项工作描述了使用功能肽修饰的碳纳米管-聚合物杂化物将 DNA 递送到完整的植物线粒体中,效率比现有方法高近 30 倍。在线粒体中整合叶酸途径基因显示出增强的植物生长速率,这表明其在代谢工程和稳定转化线粒体基因组中的应用。此外,聚合物层的灵活性还将允许连接其他针对其他细胞器的肽和货物,从而在植物生物工程中广泛应用。