Department of Biotechnology, Quaid-i-Azam University, Islamabad, 45320, Pakistan.
School of Science and the Environment, Grenfell Campus, Memorial University of Newfoundland and Labrador, Corner Brook, Newfoundland, A2H 5G4, Canada.
Environ Sci Pollut Res Int. 2023 Sep;30(41):93323-93344. doi: 10.1007/s11356-023-29150-z. Epub 2023 Aug 7.
Nanotechnology is rapidly emerging and innovative interdisciplinary field of science. The application of nanomaterials in agricultural biotechnology has been exponentially increased over the years that could be attributed to their uniqueness, versatility, and flexibility. The overuse of nanomaterials makes it crucial to determine their fate and distribution in the in vitro (in cell and tissue cultures) and in vivo (in living species) biological environments by investigating the nano-biointerface. The literature states that the beneficial effects of nanoparticles come along with their adverse effects, subsequently leading to an array of short-term and long-term toxicities. It has been evident that the interplay of nanoparticles with abiotic and biotic communities produces several eco-toxicological effects, and the physiology and biochemistry of crops are greatly influenced by the metabolic alterations taking place at cellular, sub-cellular, and molecular levels. Numerous risk factors affect nanoparticle's accumulation, translocation, and associated cytogenotoxicity. This review article summarizes the contributing factors, possible mechanisms, and risk assessment of hazardous effects of various types of nanoparticles to plant health. The methods for evaluating the plant nanotoxicity parameters have been elaborated. Conclusively, few recommendations are put forward for designing safer, high-quality nanomaterials to protect and maintain environmental safety for smarter agriculture demanded by researchers and industrialists.
纳米技术是一个迅速崛起的创新型跨学科科学领域。近年来,纳米材料在农业生物技术中的应用呈指数级增长,这归因于它们的独特性、多功能性和灵活性。纳米材料的过度使用使得确定它们在体外(细胞和组织培养物中)和体内(活体物种中)生物环境中的命运和分布变得至关重要,这可以通过研究纳米-生物界面来实现。文献表明,纳米颗粒的有益作用伴随着其不良作用,进而导致一系列短期和长期毒性。显然,纳米颗粒与非生物和生物群落的相互作用会产生多种生态毒理学效应,并且作物的生理学和生物化学会受到细胞、亚细胞和分子水平上发生的代谢改变的极大影响。许多风险因素会影响纳米颗粒的积累、迁移和相关的细胞遗传毒性。本文综述了不同类型的纳米颗粒对植物健康产生的有害影响的促成因素、可能的机制和风险评估。本文还详细阐述了评估植物纳米毒性参数的方法。最后,为了设计更安全、高质量的纳米材料,以保护和维护研究人员和工业界所要求的智能农业的环境安全,提出了一些建议。