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经实验室选择以在金属铜表面存活的大肠杆菌和耐甲氧西林金黄色葡萄球菌的突变株。

Mutant Strains of Escherichia coli and Methicillin-Resistant Staphylococcus aureus Obtained by Laboratory Selection To Survive on Metallic Copper Surfaces.

机构信息

Bundeswehr Institute of Microbiology, Munich, Germany.

Martin-Luther University Halle-Wittenberg, Institute of Molecular Microbiology, Halle (Saale), Germany.

出版信息

Appl Environ Microbiol. 2020 Dec 17;87(1). doi: 10.1128/AEM.01788-20.

Abstract

Artificial laboratory evolution was used to produce mutant strains of and methicillin-resistant (MRSA) able to survive on antimicrobial metallic copper surfaces. These mutants were 12- and 60-fold less susceptible to the copper-mediated contact killing process than their respective parent strains. Growth levels of the mutant and its parent in complex growth medium were similar. Tolerance to copper ions of the mutants was unchanged. The mutant phenotype remained stable over about 250 generations under nonstress conditions. The mutants and their respective parental strains accumulated copper released from the metallic surfaces to similar extents. Nevertheless, only the parental strains succumbed to copper stress when challenged on metallic copper surfaces, suffering complete destruction of the cell structure. Whole-genome sequencing and global transcriptome analysis were used to decipher the genetic alterations in the mutant strains; however, these results did not explain the copper-tolerance phenotypes on the systemic level. Instead, the mutants shared features with those of stressed bacterial subpopulations entering the early or "shallow" persister state. In contrast to the canonical persister state, however, the ability to survive on solid copper surfaces was adopted by the majority of the mutant strain population. This indicated that application of solid copper surfaces in hospitals and elsewhere has to be accompanied by strict cleaning regimens to keep the copper surfaces active and prevent evolution of tolerant mutant strains. Microbes are rapidly killed on solid copper surfaces by contact killing. Copper surfaces thus have an important role to play in preventing the spread of nosocomial infections. Bacteria adapt to challenging natural and clinical environments through evolutionary processes, for instance, by acquisition of beneficial spontaneous mutations. We wish to address the question of whether mutants can be selected that have evolved to survive contact killing on solid copper surfaces. We isolated such mutants from and methicillin-resistant (MRSA) by artificial laboratory evolution. The ability to survive on solid copper surfaces was a stable phenotype of the mutant population and not restricted to a small subpopulation. As a consequence, standard operation procedures with strict hygienic measures are extremely important to prevent the emergence and spread of copper-surface-tolerant persister-like bacterial strains if copper surfaces are to be sustainably used to limit the spread of pathogenic bacteria, e.g., to curb nosocomial infections.

摘要

人工实验室进化被用来产生能够在抗菌金属铜表面存活的 和耐甲氧西林金黄色葡萄球菌 (MRSA) 的突变株。这些突变体对铜介导的接触杀伤过程的敏感性比其各自的亲株低 12 倍和 60 倍。突变体和其亲株在复杂生长培养基中的生长水平相似。突变体对铜离子的耐受性没有改变。在非应激条件下,突变体表型在大约 250 代中保持稳定。突变体及其各自的亲株菌株从金属表面释放的铜积累到相似的程度。然而,只有亲株菌株在金属铜表面受到挑战时才会屈服于铜胁迫,其细胞结构完全被破坏。全基因组测序和全转录组分析被用来破译突变株的遗传改变;然而,这些结果并不能从系统水平上解释铜耐受性表型。相反,突变体与那些进入早期或“浅”持久状态的应激细菌亚群具有共同特征。然而,与典型的持久状态不同,在固体铜表面存活的能力被大多数突变株群体所采用。这表明,在医院和其他地方应用固体铜表面必须伴随严格的清洁方案,以保持铜表面的活性并防止耐受突变株的进化。铜表面上的微生物通过接触杀伤迅速被杀死。因此,铜表面在防止医院感染传播方面发挥着重要作用。细菌通过进化过程适应挑战性的自然和临床环境,例如,通过获得有益的自发突变。我们希望解决的问题是,是否可以选择已经进化到在固体铜表面存活的接触杀伤的突变体。我们通过人工实验室进化从 和耐甲氧西林金黄色葡萄球菌 (MRSA) 中分离出了这样的突变体。在固体铜表面存活的能力是突变体群体的稳定表型,而不限于一个小的亚群。因此,如果要可持续地使用铜表面来限制致病菌的传播,例如控制医院感染,那么严格的卫生措施的标准操作程序是极其重要的,以防止铜表面耐受的持久样细菌菌株的出现和传播。

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