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Graphene oxide coated aluminium as an efficient antibacterial surface

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TLDR
In this article , the authors have modified the aluminium surfaces by a coating of graphene oxide (GO) due to its excellent physicochemical properties, water dispersity and low cytotoxicity.
Abstract
Antimicrobial coatings on metallic surfaces are rapidly emerging to combat bacterial pathogens. The excess use of conventional antibiotics increases the number of resistant strains at an alarming rate, which in turn leads to detrimental implications in the healthcare sector. Hence, it is of great importance in developing a new class of material with inherent bactericidal activity and good biocompatibility. In the present study, we have modified the aluminium surfaces by a coating of graphene oxide (GO) due to its excellent physicochemical properties, water dispersity and low cytotoxicity. Coatings were developed through facile and enviornment-friendly transfer method. The antimicrobial properties of GO coated aluminium are investigated against Gram-negative strain E. coli through agar plate counting and ‘Live/Dead’ fluorescence staining. Further, to shed light into the mechanism of antibacterial activity of GO at the molecular level, we have performed X-ray reflectivity (XRR) study considering a phospholipid multilayer as a model system to mimic bacteria cell membrane. Results show a significant bactericidal activity of the GO coatings compared to uncoated aluminium with lower concentration showing slightly better antibacterial property due to higher roughness. The obtained results may pave the way for engineering graphene-based antimicrobial coatings on a material surface using an easy, environment-friendly, cost-effective and straight forward processing route.

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Antimicrobial Activity of Graphene Oxide Contributes to Alteration of Key Stress-Related and Membrane Bound Proteins

TL;DR: In this paper , the authors explore the mode of action of graphene oxide (GO) via an in-depth proteomic analysis of the targeted bacteria and reveal that the time-dependent bactericidal effect of GO is attributed to its wrapping/trapping ability, ROS production and due to physical disruption of the cell membrane.
Journal ArticleDOI

A Comprehensive Review on the Integration of Antimicrobial Technologies onto Various Surfaces of the Built Environment

Ling Yong, +1 more
- 13 Feb 2023 - 
TL;DR: In this article , a review of antimicrobial technologies for surfaces in the built environment is presented, where the authors assess the potential and suitability for implementation on surfaces within a building, and suggest key considerations when developing these technologies for a built environment.
References
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Journal ArticleDOI

Electric Field Effect in Atomically Thin Carbon Films

TL;DR: Monocrystalline graphitic films are found to be a two-dimensional semimetal with a tiny overlap between valence and conductance bands and they exhibit a strong ambipolar electric field effect.
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The rise of graphene

TL;DR: Owing to its unusual electronic spectrum, graphene has led to the emergence of a new paradigm of 'relativistic' condensed-matter physics, where quantum relativistic phenomena can now be mimicked and tested in table-top experiments.
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Membrane lipids: where they are and how they behave.

TL;DR: How do cells apply anabolic and catabolic enzymes, translocases and transporters, plus the intrinsic physical phase behaviour of lipids and their interactions with membrane proteins, to create the unique compositions and multiple functions of their individual membranes?
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PEGylated Nanographene Oxide for Delivery of Water-Insoluble Cancer Drugs

TL;DR: The results showed that graphene is a novel class of material promising for biological applications including future in vivo cancer treatment with various aromatic, low-solubility drugs.
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Graphene oxide, highly reduced graphene oxide, and graphene: versatile building blocks for carbon-based materials.

TL;DR: Techniques for preparing such advanced materials via stable graphene oxide, highly reduced grapheneoxide, and graphene dispersions in aqueous and organic media are summarized with a forward outlook on their applications.
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