CHCHD2 mutant mice display mitochondrial protein accumulation and disrupted energy metabolism
Szu-Chi Liao1,2,3,4, Kohei Kano1,4, Sadhna Phanse5
1Gladstone Institute of Neurological Disease, Gladstone Institutes, San Francisco, CA.
Abstract:
Mutations in the mitochondrial cristae protein CHCHD2 lead to a late-onset autosomal dominant form of Parkinson's disease (PD) which closely resembles idiopathic PD, providing the opportunity to gain new insights into the mechanisms of mitochondrial dysfunction contributing to PD. To begin to address this, we used CRISPR genome-editing to generate CHCHD2 T61I point mutant mice. CHCHD2 T61I mice had normal viability, and had only subtle motor deficits with no signs of premature dopaminergic (DA) neuron degeneration. Nonetheless, CHCHD2 T61I mice exhibited robust molecular changes in the brain including increased CHCHD2 insolubility, accumulation of CHCHD2 protein preferentially in the substantia nigra (SN), and elevated levels of α-synuclein. Metabolic analyses revealed an increase in glucose metabolism through glycolysis relative to the TCA cycle with increased respiratory exchange ratio, and immune-electron microscopy revelated disrupted mitochondria in DA neurons. Moreover, spatial genomics revealed decreased expression of mitochondrial complex I and III respiratory chain proteins, while proteomics revealed increased respiratory chain and other mitochondrial protein-protein interactions. As such, the CHCHD2 T61I point-mutation mice exhibit robust mitochondrial disruption and a consequent metabolic shift towards glycolysis. These findings thus establish CHCHD2 T61I mice as a new model for mitochondrial-based PD, and implicate disrupted respiratory chain function as a likely causative driver.
Insights
Mice with a CHCHD2 mutation show mitochondrial disruption and a shift to glycolysis, mimicking Parkinson's disease (PD) mechanisms. This study establishes a new PD model implicating respiratory chain dysfunction.
Area of Science:
- Neuroscience
- Genetics
- Mitochondrial Biology
Background:
- Mutations in CHCHD2, a mitochondrial protein, cause a Parkinson's disease (PD) form resembling idiopathic PD.
- This offers a chance to study mitochondrial dysfunction in PD pathogenesis.
Purpose of the Study:
- To create and characterize a mouse model for CHCHD2-related Parkinson's disease.
- To investigate the molecular and metabolic consequences of CHCHD2 mutations in vivo.
Main Methods:
- CRISPR genome-editing was used to generate CHCHD2 T61I point mutant mice.
- Analyses included molecular profiling, metabolic assessments, immune-electron microscopy, spatial genomics, and proteomics.
Main Results:
- CHCHD2 T61I mice displayed normal viability but subtle motor deficits.
- Key findings include increased CHCHD2 insolubility, α-synuclein accumulation, disrupted mitochondria, and a metabolic shift towards glycolysis.
- Decreased expression of mitochondrial respiratory chain complexes I and III was observed.
Conclusions:
- CHCHD2 T61I mice represent a novel model for studying mitochondrial-based Parkinson's disease.
- Disrupted mitochondrial respiratory chain function is implicated as a causative factor in this PD model.
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