Université Grenoble Alpes, CNRS, CEA, BIG, CBM, 17 avenue des Martyrs, 38054, Grenoble cedex 9, France.
Sci Rep. 2018 Feb 14;8(1):2978. doi: 10.1038/s41598-018-21402-0.
Due to the physicochemical properties of nanoparticles, the use of nanomaterials increases every year in industrial and medical processes. At the same time, the increasing number of bacteria becoming resistant to many antibiotics, mostly by a horizontal gene transfer process, is a major public health concern. We herein report, for the first time, the role of nanoparticles in the physiological induction of horizontal gene transfer in bacteria. Besides the most well-known impacts of nanoparticles on bacteria, i.e. death or oxidative stress, two nanoparticles, n-ZnO and n-TiO, significantly and oppositely impact the transformation efficiency of Bacillus subtilis in biofilm growth conditions, by modification of the physiological processes involved in the induction of competence, the first step of transformation. This effect is the consequence of a physiological adaptation rather than a physical cell injury: two oligopeptide ABC transporters, OppABCDF and AppDFABC, are differentially expressed in response to nanoparticles. Interestingly, a third tested nanoparticle, n-Ag, has no significant effect on competence in our experimental conditions. Overall, these results show that nanoparticles, by altering bacterial physiology and especially competence, may have profound influences in unsuspected areas, such as the dissemination of antibiotic resistance in bacteria.
由于纳米粒子的物理化学特性,纳米材料在工业和医疗过程中的使用逐年增加。与此同时,越来越多的细菌对许多抗生素产生了耐药性,主要是通过水平基因转移过程,这是一个主要的公共卫生关注问题。我们在此首次报道了纳米粒子在细菌水平基因转移的生理诱导中的作用。除了纳米粒子对细菌最知名的影响,即死亡或氧化应激外,两种纳米粒子,n-ZnO 和 n-TiO,在枯草芽孢杆菌生物膜生长条件下显著且相反地影响转化效率,通过改变参与转化的生理过程,即转化的第一步。这种效应是生理适应的结果,而不是物理细胞损伤:两种寡肽 ABC 转运体 OppABCDF 和 AppDFABC 对纳米粒子有不同的表达。有趣的是,在我们的实验条件下,第三种测试的纳米粒子 n-Ag 对感受态没有显著影响。总的来说,这些结果表明,纳米粒子通过改变细菌的生理特性,特别是感受态,可能在意想不到的领域产生深远的影响,例如抗生素耐药性在细菌中的传播。