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Updated: May 21, 2026

The Use of Primary Human Fibroblasts for Monitoring Mitochondrial Phenotypes in the Field of Parkinson's Disease
Published on: October 3, 2012
Microtubule destabilization is shared by genetic and idiopathic Parkinson's disease patient fibroblasts
Daniele Cartelli1, Stefano Goldwurm, Francesca Casagrande
1Department of Biology, University of Milan, Milan, Italy.
Abstract:
Data from both toxin-based and gene-based models suggest that dysfunction of the microtubule system contributes to the pathogenesis of Parkinson's disease, even if, at present, no evidence of alterations of microtubules in vivo or in patients is available. Here we analyze cytoskeleton organization in primary fibroblasts deriving from patients with idiopathic or genetic Parkinson's disease, focusing on mutations in parkin and leucine-rich repeat kinase 2. Our analyses reveal that genetic and likely idiopathic pathology affects cytoskeletal organization and stability, without any activation of autophagy or apoptosis. All parkinsonian fibroblasts have a reduced microtubule mass, represented by a higher fraction of unpolymerized tubulin in respect to control cells, and display significant changes in microtubule stability-related signaling pathways. Furthermore, we show that the reduction of microtubule mass is so closely related to the alteration of cell morphology and behavior that both pharmacological treatment with microtubule-targeted drugs, and genetic approaches, by transfecting the wild type parkin or leucine-rich repeat kinase 2, restore the proper microtubule stability and are able to rescue cell architecture. Taken together, our results suggest that microtubule destabilization is a point of convergence of genetic and idiopathic forms of parkinsonism and highlight, for the first time, that microtubule dysfunction occurs in patients and not only in experimental models of Parkinson's disease. Therefore, these data contribute to the knowledge on molecular and cellular events underlying Parkinson's disease and, revealing that correction of microtubule defects restores control phenotype, may offer a new therapeutic target for the management of the disease.
Insights
Parkinson's disease pathology, both genetic and idiopathic, impairs microtubule stability in patient cells. Restoring microtubule function corrects cellular defects, suggesting a new therapeutic target for Parkinson's disease.
Area of Science:
- Neuroscience
- Cell Biology
Background:
- Microtubule system dysfunction is implicated in Parkinson's disease pathogenesis.
- Evidence for microtubule alterations in patients has been lacking.
Purpose of the Study:
- To investigate cytoskeleton organization in fibroblasts from Parkinson's disease patients.
- To determine if microtubule defects are present in vivo in Parkinson's disease patients.
Main Methods:
- Analysis of cytoskeleton organization in primary fibroblasts from idiopathic and genetic Parkinson's disease patients (parkin and LRRK2 mutations).
- Assessment of microtubule mass, tubulin polymerization, and stability-related signaling pathways.
- Evaluation of pharmacological and genetic interventions to restore microtubule function.
Main Results:
- Parkinson's disease fibroblasts exhibit reduced microtubule mass and altered stability without autophagy or apoptosis activation.
- Microtubule mass reduction correlates with altered cell morphology and behavior.
- Pharmacological and genetic treatments targeting microtubule function restored cellular architecture.
Conclusions:
- Microtubule destabilization is a common feature of genetic and idiopathic Parkinson's disease.
- Microtubule dysfunction is demonstrably present in Parkinson's disease patients.
- Correcting microtubule defects offers a potential therapeutic strategy for Parkinson's disease.
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