Tripathi Durgesh Kumar, Singh Shweta, Singh Swati, Pandey Rishikesh, Singh Vijay Pratap, Sharma Nilesh C, Prasad Sheo Mohan, Dubey Nawal Kishore, Chauhan Devendra Kumar
Centre of Advanced Study in Botany, Banaras Hindu University, Varanasi, India.
D D Pant Interdisciplinary Research Laboratory, Department of Botany, University of Allahabad, Allahabad, India.
Plant Physiol Biochem. 2017 Jan;110:2-12. doi: 10.1016/j.plaphy.2016.07.030. Epub 2016 Aug 2.
The unprecedented capability to control and characterize materials on the nanometer scale has led to the rapid expansion of nanostructured materials. The expansion of nanotechnology, resulting into myriads of consumer and industrial products, causes a concern among the scientific community regarding risk associated with the release of nanomaterials in the environment. Bioavailability of excess nanomaterials ultimately threatens ecosystem and human health. Over the past few years, the field of nanotoxicology dealing with adverse effects and the probable risk associated with particulate structures <100 nm in size has emerged from the recognized understanding of toxic effects of fibrous and non-fibrous particles and their interactions with plants. The present review summarizes uptake, translocation and accumulation of nanomaterials and their recognized ways of phytotoxicity on morpho-anatomical, physiological, biochemical and molecular traits of plants. Besides this, the present review also examines the intrinsic detoxification mechanisms in plants in light of nanomaterial accumulation within plant cells or parts.
在纳米尺度上控制和表征材料的前所未有的能力,导致了纳米结构材料的迅速扩展。纳米技术的扩展产生了无数的消费品和工业产品,这引起了科学界对纳米材料释放到环境中所带来风险的关注。过量纳米材料的生物可利用性最终会威胁生态系统和人类健康。在过去几年中,纳米毒理学领域从对纤维状和非纤维状颗粒的毒性效应及其与植物相互作用的公认认识中发展而来,该领域主要研究尺寸小于100纳米的颗粒结构所产生的不利影响以及可能的风险。本综述总结了纳米材料在植物形态解剖学、生理学、生物化学和分子特征方面的吸收、转运和积累情况,以及它们公认的植物毒性方式。除此之外,本综述还根据纳米材料在植物细胞或组织内的积累情况,研究了植物内在的解毒机制。