Related Experiment Video
Updated: Apr 19, 2026

Treating SCA1 Mice with Water-Soluble Compounds to Non-Specifically Boost Mitochondrial Function
Published on: January 22, 2017
Purkinje neuron Ca2+ influx reduction rescues ataxia in SCA28 model
Abstract:
Spinocerebellar ataxia type 28 (SCA28) is a neurodegenerative disease caused by mutations of the mitochondrial protease AFG3L2. The SCA28 mouse model, which is haploinsufficient for Afg3l2, exhibits a progressive decline in motor function and displays dark degeneration of Purkinje cells (PC-DCD) of mitochondrial origin. Here, we determined that mitochondria in cultured Afg3l2-deficient PCs ineffectively buffer evoked Ca²⁺ peaks, resulting in enhanced cytoplasmic Ca²⁺ concentrations, which subsequently triggers PC-DCD. This Ca²⁺-handling defect is the result of negative synergism between mitochondrial depolarization and altered organelle trafficking to PC dendrites in Afg3l2-mutant cells. In SCA28 mice, partial genetic silencing of the metabotropic glutamate receptor mGluR1 decreased Ca²⁺ influx in PCs and reversed the ataxic phenotype. Moreover, administration of the β-lactam antibiotic ceftriaxone, which promotes synaptic glutamate clearance, thereby reducing Ca²⁺ influx, improved ataxia-associated phenotypes in SCA28 mice when given either prior to or after symptom onset. Together, the results of this study indicate that ineffective mitochondrial Ca²⁺ handling in PCs underlies SCA28 pathogenesis and suggest that strategies that lower glutamate stimulation of PCs should be further explored as a potential treatment for SCA28 patients.
Insights
Spinocerebellar ataxia type 28 (SCA28) is linked to faulty mitochondrial calcium buffering in Purkinje cells. Reducing glutamate signaling improved motor function in SCA28 mouse models, suggesting a potential therapeutic strategy.
Area of Science:
- Neuroscience
- Cell Biology
- Genetics
Background:
- Spinocerebellar ataxia type 28 (SCA28) is a neurodegenerative disorder linked to mutations in the mitochondrial protease AFG3L2.
- SCA28 mouse models exhibit motor deficits and Purkinje cell degeneration (PC-DCD) of mitochondrial origin.
Purpose of the Study:
- To investigate the role of mitochondrial calcium handling in SCA28 pathogenesis.
- To explore therapeutic strategies targeting glutamate signaling in SCA28.
Main Methods:
- Utilized Afg3l2-deficient mouse models and cultured Purkinje cells (PCs).
- Assessed mitochondrial calcium buffering capacity and cytoplasmic calcium levels.
- Investigated the effects of genetic silencing of mGluR1 and ceftriaxone administration on SCA28 phenotypes.
Main Results:
- Afg3l2-deficient PCs showed impaired mitochondrial calcium buffering, leading to elevated cytoplasmic calcium and PC-DCD.
- Mitochondrial dysfunction and altered organelle trafficking contributed to the calcium-handling defect.
- Genetic reduction of mGluR1 and ceftriaxone treatment ameliorated ataxia in SCA28 mice by reducing calcium influx.
Conclusions:
- Ineffective mitochondrial calcium handling in Purkinje cells is a key mechanism in SCA28.
- Strategies aimed at reducing glutamate stimulation of PCs represent a promising therapeutic avenue for SCA28.

