Literature DB >> 24068175

Photons and particles emitted from cold atmospheric-pressure plasma inactivate bacteria and biomolecules independently and synergistically.

Jan-Wilm Lackmann1, Simon Schneider, Eugen Edengeiser, Fabian Jarzina, Steffen Brinckmann, Elena Steinborn, Martina Havenith, Jan Benedikt, Julia E Bandow.   

Abstract

Cold atmospheric-pressure plasmas are currently in use in medicine as surgical tools and are being evaluated for new applications, including wound treatment and cosmetic care. The disinfecting properties of plasmas are of particular interest, given the threat of antibiotic resistance to modern medicine. Plasma effluents comprise (V)UV photons and various reactive particles, such as accelerated ions and radicals, that modify biomolecules; however, a full understanding of the molecular mechanisms that underlie plasma-based disinfection has been lacking. Here, we investigate the antibacterial mechanisms of plasma, including the separate, additive and synergistic effects of plasma-generated (V)UV photons and particles at the cellular and molecular levels. Using scanning electron microscopy, we show that plasma-emitted particles cause physical damage to the cell envelope, whereas UV radiation does not. The lethal effects of the plasma effluent exceed the zone of physical damage. We demonstrate that both plasma-generated particles and (V)UV photons modify DNA nucleobases. The particles also induce breaks in the DNA backbone. The plasma effluent, and particularly the plasma-generated particles, also rapidly inactivate proteins in the cellular milieu. Thus, in addition to physical damage to the cellular envelope, modifications to DNA and proteins contribute to the bactericidal properties of cold atmospheric-pressure plasma.

Keywords:  UV; antibacterial mechanisms; atmospheric-pressure plasma; biomacromolecules; plasma medicine; reactive oxygen species

Mesh:

Substances:

Year:  2013        PMID: 24068175      PMCID: PMC3808546          DOI: 10.1098/rsif.2013.0591

Source DB:  PubMed          Journal:  J R Soc Interface        ISSN: 1742-5662            Impact factor:   4.118


  27 in total

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  28 in total

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2.  Role of Ambient Gas Composition on Cold Physical Plasma-Elicited Cell Signaling in Keratinocytes.

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3.  The molecular chaperone Hsp33 is activated by atmospheric-pressure plasma protecting proteins from aggregation.

Authors:  Marco Krewing; Jennifer Janina Stepanek; Claudia Cremers; Jan-Wilm Lackmann; Britta Schubert; Alexandra Müller; Peter Awakowicz; Lars I O Leichert; Ursula Jakob; Julia E Bandow
Journal:  J R Soc Interface       Date:  2019-06-19       Impact factor: 4.118

4.  Plasma-sensitive Escherichia coli mutants reveal plasma resistance mechanisms.

Authors:  Marco Krewing; Fabian Jarzina; Tim Dirks; Britta Schubert; Jan Benedikt; Jan-Wilm Lackmann; Julia E Bandow
Journal:  J R Soc Interface       Date:  2019-03-29       Impact factor: 4.118

5.  Nontarget Biomolecules Alter Macromolecular Changes Induced by Bactericidal Low-Temperature Plasma.

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Journal:  IEEE Trans Radiat Plasma Med Sci       Date:  2017-10-11

6.  Atmospheric-Pressure Cold Plasma Induces Transcriptional Changes in Ex Vivo Human Corneas.

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7.  EPR-Spin Trapping and Flow Cytometric Studies of Free Radicals Generated Using Cold Atmospheric Argon Plasma and X-Ray Irradiation in Aqueous Solutions and Intracellular Milieu.

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Journal:  PLoS One       Date:  2015-08-28       Impact factor: 3.240

8.  The Effect of Non-Thermal Plasma on the Structural and Functional Characteristics of Human Spermatozoa.

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9.  Reproducibility of 'COST reference microplasma jets'.

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10.  A Cold Atmospheric Pressure Plasma Discharge Device Exerts Antimicrobial Effects.

Authors:  Kenneth A Cornell; Kate Benfield; Tiffany Berntsen; Jenna Clingerman; Adam Croteau; Spencer Goering; Daniel Moyer; Mariah Provost; Amanda White; Don Plumlee; Julia T Oxford; Jim Browning
Journal:  Int J Latest Trends Eng Technol       Date:  2020-01
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