Ansari Mohammad Azam
Department of Epidemic Disease Research, Institute for Research and Medical Consultations (IRMC), Imam Abdulrahman Bin Faisal University, P.O. Box 1982, Dammam 31441, Saudi Arabia.
Plants (Basel). 2023 Jul 6;12(13):2565. doi: 10.3390/plants12132565.
Globally, food safety and security are receiving a lot of attention to ensure a steady supply of nutrient-rich and safe food. Nanotechnology is used in a wide range of technical processes, including the development of new materials and the enhancement of food safety and security. Nanomaterials are used to improve the protective effects of food and help detect microbial contamination, hazardous chemicals, and pesticides. Nanosensors are used to detect pathogens and allergens in food. Food processing is enhanced further by nanocapsulation, which allows for the delivery of bioactive compounds, increases food bioavailability, and extends food shelf life. Various forms of nanomaterials have been developed to improve food safety and enhance agricultural productivity, including nanometals, nanorods, nanofilms, nanotubes, nanofibers, nanolayers, and nanosheets. Such materials are used for developing nanofertilizers, nanopesticides, and nanomaterials to induce plant growth, genome modification, and transgene expression in plants. Nanomaterials have antimicrobial properties, promote plants' innate immunity, and act as delivery agents for active ingredients. Nanocomposites offer good acid-resistance capabilities, effective recyclability, significant thermostability, and enhanced storage stability. Nanomaterials have been extensively used for the targeted delivery and release of genes and proteins into plant cells. In this review article, we discuss the role of nanotechnology in food safety and security. Furthermore, we include a partial literature survey on the use of nanotechnology in food packaging, food safety, food preservation using smart nanocarriers, the detection of food-borne pathogens and allergens using nanosensors, and crop growth and yield improvement; however, extensive research on nanotechnology is warranted.
在全球范围内,食品安全与保障受到了广泛关注,以确保营养丰富且安全的食品能够稳定供应。纳米技术被应用于众多技术流程,包括新材料的研发以及食品安全与保障的提升。纳米材料被用于增强食品的保护效果,并有助于检测微生物污染、有害化学物质和农药。纳米传感器则用于检测食品中的病原体和过敏原。纳米包封进一步提升了食品加工水平,它能够实现生物活性化合物的递送,提高食品的生物利用度,并延长食品的保质期。为了提高食品安全和增强农业生产力,人们开发了各种形式的纳米材料,包括纳米金属、纳米棒、纳米薄膜、纳米管、纳米纤维、纳米层和纳米片。这些材料被用于开发纳米肥料、纳米农药以及用于诱导植物生长、基因组修饰和植物中转基因表达的纳米材料。纳米材料具有抗菌特性,能促进植物的先天免疫,并作为活性成分的递送载体。纳米复合材料具有良好的耐酸性、有效的可回收性、显著的热稳定性以及增强的储存稳定性。纳米材料已被广泛用于将基因和蛋白质靶向递送至植物细胞并实现释放。在这篇综述文章中,我们讨论了纳米技术在食品安全与保障方面的作用。此外,我们还对纳米技术在食品包装、食品安全、使用智能纳米载体进行食品保鲜、使用纳米传感器检测食源性病原体和过敏原以及作物生长与产量提升方面的应用进行了部分文献综述;然而,对纳米技术仍需进行广泛研究。