Physicochemically Defined Nanoscale Graphene Oxide Modulates Fibril-Related α-Synuclein and Attenuates Parkinsonian Pathology In Vivo

Abstract Nanoscale graphene oxide (nGO) has emerged as a promising biomaterial for neurological applications because its ultrasmall dimensions, oxygen-containing surface chemistry, and colloidal behavior may support biologically relevant interfacial interactions. Here, we physicochemically defined nGO synthesized by a modified Taylor–Couette method using transmission electron microscopy, atomic force microscopy, particle size analysis, zeta potential measurement, X-ray diffraction, and Fourier-transform infrared spectroscopy. The resulting nGO exhibited ultrasmall lateral dimensions together with characteristic oxygen-containing functional groups and a negative zeta potential in distilled water. In a time-course dot blot assay using α-synuclein (α-syn) preformed fibrils, incubation with nGO was associated with reduced fibril-related α-syn immunoreactivity without a statistically significant change in total α-syn signal; a fractionation assay further revealed fraction-dependent differences in antibody-detectable α-syn signals. We then evaluated behavioral and nigral histological outcomes following intraperitoneal nGO administration in a rat model of Parkinson’s disease induced by unilateral adeno-associated virus-mediated overexpression of A53T α-syn in the substantia nigra. nGO administration was associated with improved stepping performance, greater preservation of nigral tyrosine hydroxylase-positive cells, reduced nigral α-syn immunoreactivity, and decreased Iba-1-positive area. Collectively, these findings support further consideration of physicochemically defined, unmodified nGO as an active biomaterial associated with fibril-related α-syn readouts in vitro and functional and histological outcomes consistent with neuroprotection in vivo.

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Publication Details

Journal
ACS Applied Bio Materials
Published
2026-09-28
DOI
https://doi.org/10.1021/acsabm.6c00968
Primary Topic
Graphene and Nanomaterials Applications
Type
article
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Physicochemically Defined Nanoscale Graphene Oxide Modulates Fibril-Related α-Synuclein and Attenuates Parkinsonian Pathology In Vivo

Kyung‐Sun Kang, Dong Kwang Seo, Hyung Ho Yoon, Jaechul Ryu et al.
ACS Applied Bio Materials
Graphene and Nanomaterials Applications
article

Physicochemically Defined Nanoscale Graphene Oxide Modulates Fibril-Related α-Synuclein and Attenuates Parkinsonian Pathology In Vivo

Kyung‐Sun Kang, Dong Kwang Seo, Hyung Ho Yoon, Jaechul Ryu, Soon Won Choi, Sung-Ae Cha, Sang Ryong Jeon
article en

Abstract

Abstract Nanoscale graphene oxide (nGO) has emerged as a promising biomaterial for neurological applications because its ultrasmall dimensions, oxygen-containing surface chemistry, and colloidal behavior may support biologically relevant interfacial interactions. Here, we physicochemically defined nGO synthesized by a modified Taylor–Couette method using transmission electron microscopy, atomic force microscopy, particle size analysis, zeta potential measurement, X-ray diffraction, and Fourier-transform infrared spectroscopy. The resulting nGO exhibited ultrasmall lateral dimensions together with characteristic oxygen-containing functional groups and a negative zeta potential in distilled water. In a time-course dot blot assay using α-synuclein (α-syn) preformed fibrils, incubation with nGO was associated with reduced fibril-related α-syn immunoreactivity without a statistically significant change in total α-syn signal; a fractionation assay further revealed fraction-dependent differences in antibody-detectable α-syn signals. We then evaluated behavioral and nigral histological outcomes following intraperitoneal nGO administration in a rat model of Parkinson’s disease induced by unilateral adeno-associated virus-mediated overexpression of A53T α-syn in the substantia nigra. nGO administration was associated with improved stepping performance, greater preservation of nigral tyrosine hydroxylase-positive cells, reduced nigral α-syn immunoreactivity, and decreased Iba-1-positive area. Collectively, these findings support further consideration of physicochemically defined, unmodified nGO as an active biomaterial associated with fibril-related α-syn readouts in vitro and functional and histological outcomes consistent with neuroprotection in vivo.

ACS Applied Bio Materials
Seoul National University (KR), Asan Medical Center (KR), University of Ulsan (KR)
Openalex Percentile: Top 21%
Graphene and Nanomaterials Applications
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