Civil and Environmental Engineering, Carnegie Mellon University, Pittsburgh, PA, USA.
Botany and Plant Sciences, University of California, Riverside, Riverside, CA, USA.
Nat Nanotechnol. 2024 Sep;19(9):1255-1269. doi: 10.1038/s41565-024-01667-5. Epub 2024 Jun 6.
Nanocarriers (NCs) that can precisely deliver active agents, nutrients and genetic materials into plants will make crop agriculture more resilient to climate change and sustainable. As a research field, nano-agriculture is still developing, with significant scientific and societal barriers to overcome. In this Review, we argue that lessons can be learned from mammalian nanomedicine. In particular, it may be possible to enhance efficiency and efficacy by improving our understanding of how NC properties affect their interactions with plant surfaces and biomolecules, and their ability to carry and deliver cargo to specific locations. New tools are required to rapidly assess NC-plant interactions and to explore and verify the range of viable targeting approaches in plants. Elucidating these interactions can lead to the creation of computer-generated in silico models (digital twins) to predict the impact of different NC and plant properties, biological responses, and environmental conditions on the efficiency and efficacy of nanotechnology approaches. Finally, we highlight the need for nano-agriculture researchers and social scientists to converge in order to develop sustainable, safe and socially acceptable NCs.
纳米载体 (NCs) 能够精确地将活性物质、营养物质和遗传物质递送到植物体内,这将使作物农业更能适应气候变化并实现可持续发展。作为一个研究领域,纳米农业仍在发展之中,仍需要克服重大的科学和社会障碍。在这篇综述中,我们认为可以从哺乳动物纳米医学中吸取经验教训。特别是,通过提高对 NC 特性如何影响其与植物表面和生物分子的相互作用以及其携带和将货物递送到特定位置的能力的理解,有可能提高效率和效果。需要新的工具来快速评估 NC-植物相互作用,并探索和验证植物中可行的靶向方法的范围。阐明这些相互作用可以导致创建计算机生成的计算机模拟模型(数字孪生),以预测不同 NC 和植物特性、生物反应以及环境条件对纳米技术方法的效率和效果的影响。最后,我们强调需要纳米农业研究人员和社会科学家汇聚在一起,以开发可持续、安全和社会可接受的 NCs。