Singh Jaspreet, Vishwakarma Kanchan, Ramawat Naleeni, Rai Padmaja, Singh Vivek Kumar, Mishra Rohit Kumar, Kumar Vivek, Tripathi Durgesh Kumar, Sharma Shivesh
1Department of Biotechnology, Motilal Nehru National Institute of Technology Allahabad, Prayagraj, Uttar Pradesh 211004 India.
2Amity Institute of Organic Agriculture, Amity University Uttar Pradesh, I 2 Block, 5th Floor, AUUP Campus Sector-125, Noida, 201313 India.
3 Biotech. 2019 Mar;9(3):68. doi: 10.1007/s13205-019-1576-0. Epub 2019 Feb 5.
Use of nanomaterials in the field of science and technology includes different fields in food industry, medicine, agriculture and cosmetics. Nanoparticle-based sensors have wide range of applications in food industry for identification and detection of chemical contaminants, pathogenic bacteria, toxins and fungal toxins from food materials with high specificity and sensitivity. Nanoparticle-microbe interactions play a significant role in disease treatment in the form of antimicrobial agents. The inhibitory mechanism of nanoparticles against different bacteria and fungi includes release of metal ions that interacts with cellular components through various pathways including reactive oxygen species (ROS) generation, pore formation in cell membranes, cell wall damage, DNA damage, and cell cycle arrest and ultimately inhibits the growth of cells. Nanoparticle-based therapies are growing to study the therapeutic treatments of plant diseases and to prevent the growth of phytopathogens leading to the growing utilization of engineered nanomaterials. Hence, with this background, the present review focuses thoroughly on detailed actions and responses of nanomaterials against different bacteria and fungi as well as food sensing and storage.
纳米材料在科学技术领域的应用涵盖食品工业、医学、农业和化妆品等不同领域。基于纳米颗粒的传感器在食品工业中具有广泛应用,可用于以高特异性和灵敏度识别和检测食品原料中的化学污染物、病原菌、毒素和真菌毒素。纳米颗粒与微生物的相互作用在疾病治疗中以抗菌剂的形式发挥着重要作用。纳米颗粒对不同细菌和真菌的抑制机制包括释放金属离子,这些金属离子通过各种途径与细胞成分相互作用,包括产生活性氧(ROS)、在细胞膜上形成孔隙、细胞壁损伤、DNA损伤和细胞周期停滞,最终抑制细胞生长。基于纳米颗粒的疗法正在不断发展,用于研究植物疾病的治疗方法以及防止植物病原体的生长,这导致工程纳米材料的使用越来越多。因此,在此背景下,本综述全面聚焦于纳米材料对不同细菌和真菌的详细作用和反应以及食品传感和储存。