Research and Development Center of Chinese Medicine Resources and Biotechnology, Shanghai University of Traditional Chinese Medicine, Shanghai, 201203, China.
Department of Pharmacy, Changzheng Hospital, Second Military Medical University, Shanghai, 200003, China.
Plant J. 2020 Nov;104(4):880-891. doi: 10.1111/tpj.14973. Epub 2020 Sep 23.
Plant genetic engineering, a recent technological advancement in the field of plant science, is an important tool used to improve crop quality and yield, to enhance secondary metabolite content in medicinal plants or to develop crops for sustainable agriculture. A new approach based on nanoparticle-mediated gene transformation can overcome the obstacle of the plant cell wall and accurately transfer DNA or RNA into plants to produce transient or stable transformation. In this review, several nanoparticle-based approaches are discussed, taking into account recent advances and challenges to hint at potential applications of these approaches in transgenic plant improvement programs. This review also highlights challenges in implementing the nanoparticle-based approaches used in plant genetic engineering. A new technology that improves gene transformation efficiency and overcomes difficulties in plant regeneration has been established and will be used for the de novo production of transgenic plants, and CRISPR/Cas9 genome editing has accelerated crop improvement. Therefore, we outline future perspectives based on combinations of genome editing, nanoparticle-mediated gene transformation and de novo regeneration technologies to accelerate crop improvement. The information provided here will assist an effective exploration of the technological advances in plant genetic engineering to support plant breeding and important crop improvement programs.
植物基因工程是植物科学领域的一项最新技术进步,是提高作物质量和产量、提高药用植物次生代谢产物含量或开发可持续农业作物的重要工具。一种新的基于纳米颗粒介导的基因转化方法可以克服植物细胞壁的障碍,并将 DNA 或 RNA 准确地转入植物中,以产生瞬时或稳定的转化。本文讨论了几种基于纳米颗粒的方法,考虑到最近的进展和挑战,提示这些方法在转基因植物改良计划中的潜在应用。本文还强调了在植物基因工程中实施基于纳米颗粒的方法所面临的挑战。已经建立了一种提高基因转化效率和克服植物再生困难的新技术,将用于转基因植物的从头生产,CRISPR/Cas9 基因组编辑加速了作物改良。因此,我们根据基因组编辑、纳米颗粒介导的基因转化和从头再生技术的组合,概述了未来的展望,以加速作物改良。这里提供的信息将有助于有效探索植物基因工程的技术进步,以支持植物育种和重要的作物改良计划。