Mitochondrial Defects in Fibroblasts of Pathogenic MAPT Patients
Vinita Bharat1, Chung-Han Hsieh1, Xinnan Wang1
1Department of Neurosurgery, Stanford University School of Medicine, Stanford, CA, United States.
Abstract:
Mutations in MAPT gene cause multiple neurological disorders, including frontal temporal lobar degeneration and parkinsonism. Increasing evidence indicates impaired mitochondrial homeostasis and mitophagy in patients and disease models of pathogenic MAPT. Here, using MAPT patients' fibroblasts as a model, we report that disease-causing MAPT mutations compromise early events of mitophagy. By employing biochemical and mitochondrial assays we discover that upon mitochondrial depolarization, the recruitment of LRRK2 and Parkin to mitochondria and degradation of the outer mitochondrial membrane protein Miro1 are disrupted. Using high resolution electron microscopy, we reveal that the contact of mitochondrial membranes with ER and cytoskeleton tracks is dissociated following mitochondrial damage. This membrane dissociation is blocked by a pathogenic MAPT mutation. Furthermore, we provide evidence showing that tau protein, which is encoded by MAPT gene, interacts with Miro1 protein, and this interaction is abolished by pathogenic MAPT mutations. Lastly, treating fibroblasts of a MAPT patient with a small molecule promotes Miro1 degradation following depolarization. Altogether, our results show molecular defects in a peripheral tissue of patients and suggest that targeting mitochondrial quality control may have a broad application for future therapeutic intervention.
Insights
Pathogenic MAPT mutations disrupt mitophagy, a key cellular cleaning process, by impairing mitochondrial protein interactions and membrane contacts. This cellular dysfunction in MAPT disorders may be targeted for therapeutic intervention.
Area of Science:
- Neuroscience
- Cell Biology
- Genetics
Background:
- Mutations in the MAPT gene are linked to neurological disorders like frontotemporal lobar degeneration and parkinsonism.
- Impaired mitochondrial homeostasis and mitophagy are increasingly recognized in MAPT-associated diseases.
Purpose of the Study:
- To investigate the impact of disease-causing MAPT mutations on mitophagy in patient-derived fibroblasts.
- To identify molecular mechanisms underlying mitophagy defects in MAPT mutations.
Main Methods:
- Biochemical and mitochondrial assays
- High-resolution electron microscopy
- Analysis of tau protein interactions with Miro1
Main Results:
- MAPT mutations disrupt the recruitment of LRRK2 and Parkin to depolarized mitochondria and impair Miro1 degradation.
- Mitochondrial membrane dissociation from ER and cytoskeleton is blocked by pathogenic MAPT mutations.
- Pathogenic MAPT mutations abolish the interaction between tau protein and Miro1.
Conclusions:
- Disease-causing MAPT mutations compromise early mitophagy events by disrupting mitochondrial-associated membrane contacts and protein interactions.
- Mitochondrial quality control represents a potential therapeutic target for MAPT-related neurological disorders.
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