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Destructive extraction of phospholipids from Escherichia coli membranes by graphene nanosheets

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TLDR
Graphene nanosheets can penetrate into and extract large amounts of phospholipids from the cell membranes because of the strong dispersion interactions between graphene and lipid molecules as mentioned in this paper.
Abstract
Understanding how nanomaterials interact with cell membranes is related to how they cause cytotoxicity and is therefore critical for designing safer biomedical applications. Recently, graphene (a two-dimensional nanomaterial) was shown to have antibacterial activity on Escherichia coli, but its underlying molecular mechanisms remain unknown. Here we show experimentally and theoretically that pristine graphene and graphene oxide nanosheets can induce the degradation of the inner and outer cell membranes of Escherichia coli, and reduce their viability. Transmission electron microscopy shows three rough stages, and molecular dynamics simulations reveal the atomic details of the process. Graphene nanosheets can penetrate into and extract large amounts of phospholipids from the cell membranes because of the strong dispersion interactions between graphene and lipid molecules. This destructive extraction offers a novel mechanism for the molecular basis of graphene's cytotoxicity and antibacterial activity.

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Fabrication of the multifunctional durable silk fabric with synthesized graphene oxide nanosheets

TL;DR: In this paper, a multifunctional silk fabric with ultraviolet radiation protection and antibacterial activity was successfully fabricated by grafting graphene oxide (GO) nanosheet dispersion onto the surface of the fabric.
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Development of Polyvinylidene Fluoride Membrane by Incorporating Bio-Based Ginger Extract as Additive.

TL;DR: The results show an inhibition zone formed around the PVDF/ginger membrane against Escherichia coli and Staphylococcus aureus demonstrating the efficacy of the residual ginger extract in the membrane matrix to impose the antibiofouling property.
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Controlling the Nanoscale Rotational Behaviors of Nanoparticles on the Cell Membranes: A Computational Model.

TL;DR: Nanoparticles prefer to bind to a membrane with a surface coated by short or rigid ligands, as shown by computer simulations, and can spontaneously spin itself on the membrane surface.
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GO-based antibacterial composites: Application and design strategies

TL;DR: Graphene oxide (GO) is widely used in the antibacterial field as discussed by the authors, where various strategies have been designed to fabricate GO-based composites with antibacterial properties, and a review summarized these strategies, divided them into three types and interpreted their antibacterial mechanisms.
Journal ArticleDOI

Nanomechanics of Protein Unfolding Outside a Generic Nanopore

TL;DR: This work investigates the mechanical unfolding process of ubiquitin with (or really outside) a generic nanopore, and compares such process with that in the AFM pulling experiment, finding that the required force for protein unfolding through a pore can be much smaller than that by theAFM.
References
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Journal ArticleDOI

Graphene: Status and Prospects

TL;DR: This review analyzes recent trends in graphene research and applications, and attempts to identify future directions in which the field is likely to develop.
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Toxic Potential of Materials at the Nanolevel

TL;DR: The establishment of principles and test procedures to ensure safe manufacture and use of nanomaterials in the marketplace is urgently required and achievable.
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Quantum Dots for Live Cells, in Vivo Imaging, and Diagnostics

TL;DR: The new generations of qdots have far-reaching potential for the study of intracellular processes at the single-molecule level, high-resolution cellular imaging, long-term in vivo observation of cell trafficking, tumor targeting, and diagnostics.
Journal ArticleDOI

Understanding biophysicochemical interactions at the nano–bio interface

TL;DR: Probing the various interfaces of nanoparticle/biological interfaces allows the development of predictive relationships between structure and activity that are determined by nanomaterial properties such as size, shape, surface chemistry, roughness and surface coatings.
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