Institut Catala de Nanociencia i Nanotecnologia (ICN2), CSIC and The Barcelona Institute of Science and Technology (BIST), Campus UAB, 08193, Bellaterra, Barcelona, Spain.
Institució Catalana de Recerca i Estudis Avançats (ICREA), P. Lluís Companys 23, 08010 Barcelona, Spain.
Curr Med Chem. 2018;25(35):4587-4601. doi: 10.2174/0929867324666170413124915.
Nanosafety aims for a solution through the safer design (and re-design) of nanostructured materials, optimizing both performance and safety, by resolving which structural features lead to the desired properties and modifying them to avoid their detrimental effects without losing their desired nanoscale properties in the process. Starting with known toxic NPs, the final aim should be the re-design of such detrimental specific NP characteristics and to redefine the way they should be manipulated from the beginning to the end of their life cycle.
The researchers reviewed literature in the area of novel nanosafety strategies addressing the "safe-by-design" paradigm.
The potential hazards of engineered NPs are not only determined by the physicochemical properties of the engineered NPs per se but also on the interactions of these NPs with immediate surrounding environments. The aim of promoting the timely and safe development of NPs cannot be achieved via traditional studies as they address one material at one time. The development of a safer design strategy of engineered NPs requires an understanding of both intrinsic (synthetic) properties together with their extrinsic responses to external stimuli.
We have summarized recent developments of novel nanosafety strategies addressing the "safe-by-design" paradigm for optimizing both performance and safety, allowing the comparison of results of different studies and ultimately providing guidelines for the re-design of safer NPs. The resulting discussion is intended to provide guidelines for synthetic nanochemists on how to design NPs to be safe during their full life cycle while maintaining their parental desired properties.
纳米安全旨在通过更安全的设计(和重新设计)来解决问题,通过解决哪些结构特征导致所需的性能并修改它们以避免其有害影响,同时在不丢失所需纳米级特性的情况下优化结构特性,从而实现纳米结构材料的更安全设计。从已知的有毒纳米颗粒开始,最终目标应该是重新设计这些有害的特定纳米颗粒特性,并重新定义从纳米颗粒生命周期开始到结束应该如何操作它们的方式。
研究人员综述了新型纳米安全策略领域的文献,这些策略涉及“设计安全”范式。
工程纳米颗粒的潜在危害不仅取决于工程纳米颗粒本身的物理化学特性,还取决于这些纳米颗粒与周围环境的相互作用。通过传统研究来促进工程纳米颗粒的及时和安全发展是不可能的,因为它们一次只处理一种材料。更安全的工程纳米颗粒设计策略的发展需要了解内在(合成)特性以及它们对外界刺激的外在响应。
我们总结了针对“设计安全”范式的新型纳米安全策略的最新进展,这些策略优化了性能和安全性,允许比较不同研究的结果,并最终为更安全的纳米颗粒的重新设计提供指导。由此产生的讨论旨在为合成纳米化学家提供指导,说明如何在保持所需特性的同时,设计在整个生命周期内都安全的纳米颗粒。