Enhancing surface functionality of reduced graphene oxide biosensors by oxygen plasma treatment for Alzheimer's disease diagnosis

Authors
Chae, Myung-SicKim, JinsikJeong, DahyeKim, Young sooRoh, Jee HoonLee, Sung MinHeo, YouheeKang, Ji YoonLee, Jeong HoonYoon, Dae SungKim, Tae GeunChang, Suk TaiHwang, Kyo Seon
Issue Date
2017-06
Publisher
Pergamon Press Ltd.
Citation
Biosensors and Bioelectronics, v.92, pp.610 - 617
Abstract
We performed oxygen plasma treatment on reduced graphene oxide (rGO) to improve its surface reactivity with respect to biomolecular interactions. Oxygen-plasma-treated rGO surfaces were employed as reactive interfaces for the detection of amyloid-beta (A beta) peptides, the pathological hallmarks of Alzheimer&apos;s disease (AD), as the target analytes. By measuring the changes in electrical characteristics and confirmation through topographic analysis, the oxygen-plasma-treated rGO sensors had enhanced surface functionality for better antibody immobilization and sensing performance, with a 3.33-fold steeper slope for the electrical responses versus analyte concentration curve (logarithmic scale) compared to the untreated. The elicited biomolecular reactivity of the rGO surfaces with the oxygen plasma treatment remained at 46-51% of the initial value even after aging for 6 h in ambient conditions. This phenomenon was also confirmed by pretreating the rGO surfaces with a blocking agent and subsequently subjecting them to antibody immobilization. Finally, the feasibility of the oxygen-plasma-treated rGO sensors as a diagnostic tool was evaluated with clinical samples of neural-derived exosomal A beta peptides extracted from apparent AD patients and normal controls (NC). In contrast to the untreated sensors (p=0.0460), the oxygen-plasma-treated rGO sensors showed a significant p-value in the identification of clinical samples of AD and NC subjects (p < 0.001). These results suggest that oxygen plasma treatment improves sensor performance without complicated fabrication procedures and should aid in the development of novel diagnostic tools based on carbon nanomaterials.
Keywords
CARBON NANOTUBES; DEPOSITION; DISCHARGE; PROTEINS; RNAS; Reduced graphene oxide; Oxygen plasma treatment; Biosensor; Alzheimer&apos; s diseases; Exosome
ISSN
0956-5663
URI
https://pubs.kist.re.kr/handle/201004/122671
DOI
10.1016/j.bios.2016.10.049
Appears in Collections:
KIST Article > 2017
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