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Influence of gold nanoparticle surface chemistry and diameter upon Alzheimer's disease amyloid-β protein aggregation.

Authors :
Moore KA
Pate KM
Soto-Ortega DD
Lohse S
van der Munnik N
Lim M
Jackson KS
Lyles VD
Jones L
Glassgow N
Napumecheno VM
Mobley S
Uline MJ
Mahtab R
Murphy CJ
Moss MA
Source :
Journal of biological engineering [J Biol Eng] 2017 Feb 06; Vol. 11, pp. 5. Date of Electronic Publication: 2017 Feb 06 (Print Publication: 2017).
Publication Year :
2017

Abstract

Background: Deposits of aggregated amyloid-β protein (Aβ) are a pathological hallmark of Alzheimer's disease (AD). Thus, one therapeutic strategy is to eliminate these deposits by halting Aβ aggregation. While a variety of possible aggregation inhibitors have been explored, only nanoparticles (NPs) exhibit promise at low substoichiometric ratios. With tunable size, shape, and surface properties, NPs present an ideal platform for rationally designed Aβ aggregation inhibitors. In this study, we characterized the inhibitory capabilities of gold nanospheres exhibiting different surface coatings and diameters.<br />Results: Both NP diameter and surface chemistry were found to modulate the extent of aggregation, while NP electric charge influenced aggregate morphology. Notably, 8 nm and 18 nm poly(acrylic acid)-coated NPs abrogated Aβ aggregation at a substoichiometric ratio of 1:2,000,000. Theoretical calculations suggest that this low stoichiometry could arise from altered solution conditions near the NP surface. Specifically, local solution pH and charge density are congruent with conditions that influence aggregation.<br />Conclusions: These findings demonstrate the potential of surface-coated gold nanospheres to serve as tunable therapeutic agents for the inhibition of Aβ aggregation. Insights gained into the physiochemical properties of effective NP inhibitors will inform future rational design of effective NP-based therapeutics for AD.

Details

Language :
English
ISSN :
1754-1611
Volume :
11
Database :
MEDLINE
Journal :
Journal of biological engineering
Publication Type :
Academic Journal
Accession number :
28191036
Full Text :
https://doi.org/10.1186/s13036-017-0047-6