Oak Ridge Institute for Science and Education, US Environmental Protection Agency, Ada, OK, USA.
School of Fisheries, Aquaculture and Aquatic Sciences, Auburn University, Auburn, AL, USA.
Nat Nanotechnol. 2022 Apr;17(4):347-360. doi: 10.1038/s41565-022-01082-8. Epub 2022 Mar 24.
Achieving sustainable agricultural productivity and global food security are two of the biggest challenges of the new millennium. Addressing these challenges requires innovative technologies that can uplift global food production, while minimizing collateral environmental damage and preserving the resilience of agroecosystems against a rapidly changing climate. Nanomaterials with the ability to encapsulate and deliver pesticidal active ingredients (AIs) in a responsive (for example, controlled, targeted and synchronized) manner offer new opportunities to increase pesticidal efficacy and efficiency when compared with conventional pesticides. Here, we provide a comprehensive analysis of the key properties of nanopesticides in controlling agricultural pests for crop enhancement compared with their non-nanoscale analogues. Our analysis shows that when compared with non-nanoscale pesticides, the overall efficacy of nanopesticides against target organisms is 31.5% higher, including an 18.9% increased efficacy in field trials. Notably, the toxicity of nanopesticides toward non-target organisms is 43.1% lower, highlighting a decrease in collateral damage to the environment. The premature loss of AIs prior to reaching target organisms is reduced by 41.4%, paired with a 22.1% lower leaching potential of AIs in soils. Nanopesticides also render other benefits, including enhanced foliar adhesion, improved crop yield and quality, and a responsive nanoscale delivery platform of AIs to mitigate various pressing biotic and abiotic stresses (for example, heat, drought and salinity). Nonetheless, the uncertainties associated with the adverse effects of some nanopesticides are not well-understood, requiring further investigations. Overall, our findings show that nanopesticides are potentially more efficient, sustainable and resilient with lower adverse environmental impacts than their conventional analogues. These benefits, if harnessed appropriately, can promote higher crop yields and thus contribute towards sustainable agriculture and global food security.
实现可持续农业生产力和全球粮食安全是新千年的两大挑战。应对这些挑战需要创新技术,这些技术能够提高全球粮食产量,同时最大限度地减少附带的环境破坏,并保持农业生态系统对快速变化的气候的弹性。具有封装和以响应方式(例如,控制、靶向和同步)传递农药活性成分(AIs)能力的纳米材料为提高农药功效和效率提供了新的机会,与传统农药相比。在这里,我们提供了纳米农药在控制农业害虫方面与传统农药相比提高作物产量的关键特性的综合分析。我们的分析表明,与非纳米农药相比,纳米农药对靶标生物的整体功效提高了 31.5%,包括田间试验中功效提高了 18.9%。值得注意的是,纳米农药对非靶标生物的毒性降低了 43.1%,这突出表明对环境的附带损害减少。在到达靶标生物之前,AIs 的过早损失减少了 41.4%,同时土壤中 AIs 的浸出潜力降低了 22.1%。纳米农药还具有其他益处,包括增强叶片附着力、提高作物产量和质量,以及对 AIs 的响应纳米级递药平台,以减轻各种紧迫的生物和非生物胁迫(例如,热、干旱和盐度)。尽管如此,一些纳米农药的不良影响相关的不确定性尚不清楚,需要进一步研究。总体而言,我们的研究结果表明,与传统农药相比,纳米农药具有更高的效率、可持续性和弹性,对环境的不利影响更低。如果这些益处得到适当利用,可以促进更高的作物产量,从而有助于可持续农业和全球粮食安全。