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Updated: May 19, 2026

A Method to Study α-Synuclein Toxicity and Aggregation Using a Humanized Yeast Model
Published on: November 25, 2022
SNCA (α-synuclein)-induced toxicity in yeast cells is dependent on sirtuin 2 (Sir2)-mediated mitophagy
Belém Sampaio-Marques1, Carolina Felgueiras, Alexandra Silva
1Life and Health Sciences Research Institute (ICVS), School of Health Sciences, University of Minho, Braga, Portugal.
Abstract:
SNCA (α-synuclein) misfolding and aggregation is strongly associated with both idiopathic and familial forms of Parkinson disease (PD). Evidence suggests that SNCA has an impact on cell clearance routes and protein quality control systems such as the ubiquitin-proteasome system (UPS) and autophagy. Recent advances in the key role of the autosomal recessive PARK2/PARKIN and PINK1 genes in mitophagy, highlighted this process as a prominent new pathogenic mechanism. Nevertheless, the role of autophagy/mitophagy in the pathogenesis of sporadic and autosomal dominant familial forms of PD is still enigmatic. The yeast Saccharomyces cerevisiae is a powerful "empty room" model that has been exploited to clarify different molecular aspects associated with SNCA toxicity, which combines the advantage of being an established system for aging research. The contribution of autophagy/mitophagy for the toxicity induced by the heterologous expression of the human wild-type SNCA gene and the clinical A53T mutant during yeast chronological life span (CLS) was explored. A reduced CLS together with an increase of autophagy and mitophagy activities were observed in cells expressing both forms of SNCA. Impairment of mitophagy by deletion of ATG11 or ATG32 resulted in a CLS extension, further implicating mitophagy in the SNCA toxicity. Deletion of SIR2, essential for SNCA toxicity, abolished autophagy and mitophagy, thereby rescuing cells. These data show that Sir2 functions as a regulator of autophagy, like its mammalian homolog, SIRT1, but also of mitophagy. Our work highlights that increased mitophagy activity, mediated by the regulation of ATG32 by Sir2, is an important phenomenon linked to SNCA-induced toxicity during aging.
Insights
Alpha-synuclein (SNCA) toxicity shortens yeast lifespan, increasing mitophagy. Sir2 regulates this mitophagy, suggesting it
Area of Science:
- Neuroscience
- Cell Biology
- Genetics
Background:
- Alpha-synuclein (SNCA) misfolding and aggregation are linked to Parkinson disease (PD) pathogenesis.
- SNCA impacts cellular protein quality control, including the ubiquitin-proteasome system (UPS) and autophagy.
- The role of autophagy and mitophagy in sporadic and familial PD remains unclear.
Purpose of the Study:
- To investigate the contribution of autophagy/mitophagy to SNCA toxicity in yeast.
- To explore the role of the SIR2 gene in SNCA-induced toxicity and mitophagy.
Main Methods:
- Heterologous expression of wild-type and A53T mutant human SNCA in Saccharomyces cerevisiae.
- Assessment of chronological life span (CLS) and autophagy/mitophagy activity.
- Genetic manipulation involving deletion of mitophagy-related genes (ATG11, ATG32) and SIR2.
Main Results:
- SNCA expression reduced yeast CLS and increased autophagy and mitophagy.
- Impairing mitophagy (ATG11 or ATG32 deletion) extended CLS, confirming mitophagy's role in SNCA toxicity.
- SIR2 deletion abolished autophagy and mitophagy, rescuing cells from SNCA toxicity.
Conclusions:
- Increased mitophagy activity is linked to SNCA-induced toxicity during aging.
- Sir2 regulates both autophagy and mitophagy, with Sir2-mediated regulation of ATG32 being crucial for SNCA toxicity.
- This yeast model provides insights into the role of mitophagy in PD pathogenesis.
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