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November 6, 2007Proceedings of the National Academy of Sciences242 citationsOpen Access

Charge transport and intrinsic fluorescence in amyloid-like fibrils

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LMLoretta L. del MercatoPPPier Paolo PompaGMGiuseppe Maruccio

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Abstract

The self-assembly of polypeptides into stable, conductive, and intrinsically fluorescent biomolecular nanowires is reported. We have studied the morphology and electrical conduction of fibrils made of an elastin-related polypeptide, poly(ValGlyGlyLeuGly). These amyloid-like nanofibrils, with a diameter ranging from 20 to 250 nm, result from self-assembly in aqueous solution at neutral pH. Their morphological properties and conductivity have been investigated by atomic force microscopy, scanning tunneling microscopy, and two-terminal transport experiments at the micro- and nanoscales. We demonstrate that the nanofibrils can sustain significant electrical conduction in the solid state at ambient conditions and have remarkable stability. We also show intrinsic blue-green fluorescence of the nanofibrils by confocal microscopy analyses. These results indicate that direct (label-free) excitation can be used to investigate the aggregation state or the polymorphism of amyloid-like fibrils (and possibly of other proteinaceous material) and open up interesting perspectives for the use of peptide-based nanowire structures, with tunable physical and chemical properties, for a wide range of nanobiotechnological and bioelectronic applications.

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Cite This Study

Mercato et al. (2007) studied this question.

synapsesocial.com/papers/69d81720b5518339b2ae2c03https://doi.org/10.1073/pnas.0702843104
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