Glycolytic Reprogramming in Parkinson's Disease: From Bioenergetic Crosstalk to Therapeutic Modulation

Parkinson's disease (PD) is increasingly recognized not merely as a localized proteinopathy, but as a systemic metabolic disorder driven by bioenergetic failure. While mitochondrial dysfunction is a well-established pathological hallmark, the compensatory reprogramming of glycolysis has emerged as a critical, yet double-edged, determinant of neuronal survival. This review critically examines the molecular and spatial architecture of glucose metabolism in the parkinsonian brain. We systematically dissect how upstream genetic regulators, including PTEN and PARK7/DJ-1, alongside downstream rate-limiting enzymes orchestrate the glycolytic shift in response to mitochondrial collapse and α-synuclein proteotoxicity. Moving beyond a neuron-centric view, we highlight cell-specific metabolic compartmentalization, emphasizing the disruption of the astrocyte-neuron lactate shuttle and the divergent glycolytic phenotypes of reactive microglia. Crucially, we evaluate the dual nature of glycolytic metabolites by demonstrating that a moderate flux sustains basal energy requirements and prevents apoptosis, whereas unchecked hyperglycolysis drives secondary pathological cascades through methylglyoxal-induced protein crosslinking and lactate-mediated neuroinflammation. By bridging these mechanistic insights with cross-disease metabolic links to type 2 diabetes and oncology, we evaluate the therapeutic potential of emerging metabolic modulators, including terazosin, cordycepin, and GLP-1 receptor agonists. Finally, we outline the pressing translational bottlenecks, particularly blood-brain barrier penetrance and cell-specific targeting, which must be overcome to successfully harness glycolytic modulation as a disease-modifying strategy for neurodegenerative disorders.

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Publication Details

Journal
Medicinal Research Reviews
Published
2026-09-04
DOI
https://doi.org/10.1002/med.70103
Primary Topic
Parkinson's Disease Mechanisms and Treatments
Type
article
Field-Weighted Citation Impact
0.00

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article

Glycolytic Reprogramming in Parkinson's Disease: From Bioenergetic Crosstalk to Therapeutic Modulation

Mingxuan Liu, Rui Cheng, Zhaoguo Liu, Xiaoling Zhang et al.
Medicinal Research Reviews
Parkinson's Disease Mechanisms and Treatments
article

Glycolytic Reprogramming in Parkinson's Disease: From Bioenergetic Crosstalk to Therapeutic Modulation

Mingxuan Liu, Rui Cheng, Zhaoguo Liu, Xiaoling Zhang, Sun Yu-zhou, You He, Ying Yi, Cen Chen
article en

Abstract

Parkinson's disease (PD) is increasingly recognized not merely as a localized proteinopathy, but as a systemic metabolic disorder driven by bioenergetic failure. While mitochondrial dysfunction is a well-established pathological hallmark, the compensatory reprogramming of glycolysis has emerged as a critical, yet double-edged, determinant of neuronal survival. This review critically examines the molecular and spatial architecture of glucose metabolism in the parkinsonian brain. We systematically dissect how upstream genetic regulators, including PTEN and PARK7/DJ-1, alongside downstream rate-limiting enzymes orchestrate the glycolytic shift in response to mitochondrial collapse and α-synuclein proteotoxicity. Moving beyond a neuron-centric view, we highlight cell-specific metabolic compartmentalization, emphasizing the disruption of the astrocyte-neuron lactate shuttle and the divergent glycolytic phenotypes of reactive microglia. Crucially, we evaluate the dual nature of glycolytic metabolites by demonstrating that a moderate flux sustains basal energy requirements and prevents apoptosis, whereas unchecked hyperglycolysis drives secondary pathological cascades through methylglyoxal-induced protein crosslinking and lactate-mediated neuroinflammation. By bridging these mechanistic insights with cross-disease metabolic links to type 2 diabetes and oncology, we evaluate the therapeutic potential of emerging metabolic modulators, including terazosin, cordycepin, and GLP-1 receptor agonists. Finally, we outline the pressing translational bottlenecks, particularly blood-brain barrier penetrance and cell-specific targeting, which must be overcome to successfully harness glycolytic modulation as a disease-modifying strategy for neurodegenerative disorders.

Medicinal Research Reviews
Nantong University (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 11%
Parkinson's Disease Mechanisms and Treatments
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