A GLUD2 variant aggravates Parkinson’s disease pathology in A53T α-synuclein mice via the astrocyte–microglia C3‒C3aR pathway

Parkinson’s disease (PD) is a progressive neurodegenerative disorder characterized by dopaminergic neuronal loss and α-synuclein (α-syn) aggregation. The human-specific GLUD2 T1492G variant has been associated with an earlier onset of PD, but its pathogenic mechanism remains unclear. In this study, we generated A53T α-syn transgenic mice with astrocyte-specific expression of GLUD2 T1492G and investigated its effects on PD-related pathology. GLUD2 T1492G exacerbated α-syn pathology, nigrostriatal dopaminergic neurodegeneration, and motor impairment. Transcriptomic analysis identified complement-related inflammatory signaling as a major pathway altered by GLUD2 T1492G, whereas metabolomic profiling revealed disrupted metabolic homeostasis. Mechanistically, GLUD2 T1492G enhanced astrocytic C3 induction, promoted microglial C3aR/NF-κB-associated inflammatory activation, and amplified neuroinflammatory responses. Conditioned-medium transfer experiments, together with astrocyte-specific C3 knockdown and pharmacological inhibition of C3aR, supported the functional involvement of the astrocyte–microglia C3–C3aR signaling axis in GLUD2 T1492G-associated pathology. Collectively, our findings suggest that activation of the astrocyte–microglia C3–C3aR signaling axis contributes to GLUD2 T1492G-mediated exacerbation of PD pathology and highlight this pathway as a potential therapeutic target for PD.

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Publication Details

Journal
Cellular and Molecular Life Sciences
Published
2026-09-05
DOI
https://doi.org/10.1007/s00018-026-06399-4
Primary Topic
Parkinson's Disease Mechanisms and Treatments
Type
article
Field-Weighted Citation Impact
0.00

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article

A GLUD2 variant aggravates Parkinson’s disease pathology in A53T α-synuclein mice via the astrocyte–microglia C3‒C3aR pathway

Xinling Yang, Xingting Huang, Tianni Liu, Shaohua Ding et al.
Cellular and Molecular Life Sciences
Parkinson's Disease Mechanisms and Treatments
article

A GLUD2 variant aggravates Parkinson’s disease pathology in A53T α-synuclein mice via the astrocyte–microglia C3‒C3aR pathway

Xinling Yang, Xingting Huang, Tianni Liu, Shaohua Ding, Xiaobei Wang, Zhongqiang Su, Yuchen Shao, Pingyi Xu, Tianfeng Han, Yuxuan Yong, Wenlong Zhang
article en

Abstract

Parkinson’s disease (PD) is a progressive neurodegenerative disorder characterized by dopaminergic neuronal loss and α-synuclein (α-syn) aggregation. The human-specific GLUD2 T1492G variant has been associated with an earlier onset of PD, but its pathogenic mechanism remains unclear. In this study, we generated A53T α-syn transgenic mice with astrocyte-specific expression of GLUD2 T1492G and investigated its effects on PD-related pathology. GLUD2 T1492G exacerbated α-syn pathology, nigrostriatal dopaminergic neurodegeneration, and motor impairment. Transcriptomic analysis identified complement-related inflammatory signaling as a major pathway altered by GLUD2 T1492G, whereas metabolomic profiling revealed disrupted metabolic homeostasis. Mechanistically, GLUD2 T1492G enhanced astrocytic C3 induction, promoted microglial C3aR/NF-κB-associated inflammatory activation, and amplified neuroinflammatory responses. Conditioned-medium transfer experiments, together with astrocyte-specific C3 knockdown and pharmacological inhibition of C3aR, supported the functional involvement of the astrocyte–microglia C3–C3aR signaling axis in GLUD2 T1492G-associated pathology. Collectively, our findings suggest that activation of the astrocyte–microglia C3–C3aR signaling axis contributes to GLUD2 T1492G-mediated exacerbation of PD pathology and highlight this pathway as a potential therapeutic target for PD.

Cellular and Molecular Life Sciences
Xinjiang Medical University (CN), First Affiliated Hospital of Guangzhou Medical University (CN), The People's Hospital Tongling (CN), Second Affiliated Hospital of Xinjiang Medical University (CN), Guangzhou Medical University (CN)
National Natural Science Foundation of China
Good health and well-being
Openalex Percentile: Top 11%
Parkinson's Disease Mechanisms and Treatments
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