4.8 Article

Antibacterial activity of two-dimensional MoS2 sheets

期刊

NANOSCALE
卷 6, 期 17, 页码 10126-10133

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c4nr01965b

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资金

  1. Zhejiang Provincial Natural Science Foundation of China (Youth Talent Program) [R4110030]
  2. Science and Technology Department of Zhejiang Province (Qianjiang Talent Program) [2011R10077]
  3. Program for New Century Excellent Talents in University [NCET-12-0494]
  4. Research Fund for the Doctoral Program of Higher Education [20130101110123]
  5. Program for 14th China-Japan ST Cooperation [2013DFG52800]
  6. Interdisciplinary Laboratory for Nanoscale Science and Technology of the National Institute for Materials Science (NIMS), Japan

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Graphene-like two-dimensional materials (2DMats) show application potential in optoelectronics and biomedicine due to their unique properties. However, environmental and biological influences of these 2DMats remain to be unveiled. Here we reported the antibacterial activity of two-dimensional (2D) chemically exfoliated MoS2 (ce-MoS2) sheets. We found that the antibacterial activity of ce-MoS2 sheets was much more potent than that of the raw MoS2 powders used for the synthesis of ce-MoS2 sheets possibly due to the 2D planar structure (high specific surface area) and higher conductivity of the ce-MoS2. We investigated the antibacterial mechanisms of the ce-MoS2 sheets and proposed their antibacterial pathways. We found that the ce-MoS2 sheets could produce reactive oxygen species (ROS), different from a previous report on graphene-based materials. Particularly, the oxidation capacity of the ce-MoS2 sheets toward glutathione oxidation showed a time and concentration dependent trend, which is fully consistent with the antibacterial behaviour of the ce-MoS2 sheets. The results suggest that antimicrobial behaviors were attributable to both membrane and oxidation stress. The antibacterial pathways include MoS2-bacteria contact induced membrane stress, superoxide anion (O-2(center dot-)) induced ROS production by the ce-MoS2, and the ensuing superoxide anion-independent oxidation. Our study thus indicates that the tailoring of the dimension of nanomaterials and their electronic properties would manipulate antibacterial activity.

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