Université Claude Bernard Lyon 1, Laboratoire d'Ecologie Microbienne (UMR CNRS 5557, INRAe 1418), Villeurbanne, France.
Université Claude Bernard Lyon 1, CNRS, LAGEPP UMR 5007, 43 boulevard du 11 novembre 1918, F-69100 Villeurbanne, France; Université Claude Bernard Lyon 1, Laboratoire de Dermopharmacie et Cosmétologie, Institut des Sciences Pharmaceutiques et Biologique, F-69373 Villeurbanne, France.
Int J Pharm. 2020 Jun 15;583:119373. doi: 10.1016/j.ijpharm.2020.119373. Epub 2020 Apr 24.
For several years, the international context is deeply affected by the use of chemical and biological weapons. The use of CBRN (Chemical Biological Radiological Nuclear) threat agents from military stockpiles or biological civilian industry demonstrate the critical need to improve capabilities of decontamination for civilians and military. Physical decontamination systems that operate only by adsorption and displacement such as Fuller's Earth, have the drawback of not neutralizing hazardous agents, giving place to cross contaminations. Consequently, the development of a formulation based on metal oxide nanoparticles attracts considerable interest, since they offer physicochemical properties that allow them to both adsorb and degrade toxic compounds. Thus, the aim of this study is to found metal oxide nanoparticles with a versatile activity on both chemical and biological toxic agents. Therefore, several metal oxides such as MgO, TiO, CeO, ZnO and ZrO were characterized and their decontamination kinetics of less-toxic surrogate of VX, paraoxon, were studied in vitro. To determine the antimicrobial activity of these nanoparticles, simulants of biological terrorist threat were used by performing a 3-hours decontamination kinetics. This proof-of-concept study showed that MgO is the only one that exhibits both chemical and antibacterial actions but without sporicidal activity.
多年来,国际形势深受化学和生物武器使用的影响。来自军事库存或民用生物工业的 CBRN(化学、生物、放射性和核)威胁剂的使用,表明必须提高平民和军队的净化能力。仅通过吸附和置换作用运行的物理净化系统,如膨润土,存在不能中和危险剂的缺点,导致交叉污染。因此,开发基于金属氧化物纳米粒子的制剂引起了相当大的兴趣,因为它们具有允许它们吸附和降解有毒化合物的物理化学性质。因此,本研究的目的是找到对化学和生物毒性剂均具有多功能活性的金属氧化物纳米粒子。因此,对几种金属氧化物(如 MgO、TiO、CeO、ZnO 和 ZrO)进行了表征,并在体外研究了它们对低毒性 VX 类似物、对氧磷的净化动力学。为了确定这些纳米粒子的抗菌活性,通过进行 3 小时的净化动力学,使用生物恐怖威胁的模拟物进行了测试。这项概念验证研究表明,只有 MgO 同时具有化学和抗菌作用,但没有杀菌活性。