4.8 Article

Autophagy modulates SNCA/α-synuclein release, thereby generating a hostile microenvironment

期刊

AUTOPHAGY
卷 10, 期 12, 页码 2171-2192

出版社

TAYLOR & FRANCIS INC
DOI: 10.4161/auto.36436

关键词

alpha-synuclein; inflammation; lysosomal degradation; Parkinson disease; protein aggregation; secretion; synucleinopathies

资金

  1. German Ministry for Education and Science (BMBF) [01GN0979]
  2. Interdisciplinary Center for Clinical Research (IZKF, Erlangen, Germany)
  3. Bavarian State Ministry of Sciences, Research, and the Arts
  4. ForNeuroCell (Erlangen, Germany)
  5. ForIPS (Erlangen, Germany)
  6. Adalbert-Raps-Stiftung, Parkinson and Nutrition [01/2010-12/2013]
  7. ELAN fonds (University Hospital Erlangen, Germany) [08.11.05.1]
  8. Fundacao para a Ciencia e Tecnologia, Portugal [SFRH/BD/ 44446/2008]
  9. DFG Center for Nanoscale Microscopy and Molecular Physiology of the Brain, Goettingen, Germany
  10. NIH [AG022074, AG18440, NS076411]
  11. Fundação para a Ciência e a Tecnologia [SFRH/BD/44446/2008] Funding Source: FCT

向作者/读者索取更多资源

SNCA/alpha-synuclein aggregation plays a crucial role in synucleinopathies such as Parkinson disease and dementia with Lewy bodies. Aggregating and nonaggregating SNCA species are degraded by the autophagy-lysosomal pathway (ALP). Previously, we have shown that the ALP is not only responsible for SNCA degradation but is also involved in the intracellular aggregation process of SNCA. An additional role of extracellular SNCA in the pathology of synucleinopathies substantiating a prion-like propagation hypothesis has been suggested since released SNCA species and spreading of SNCA pathology throughout neural cells have been observed. However, the molecular interplay between intracellular pathways, SNCA aggregation, release, and response of the local microenvironment remains unknown. Here, we attributed SNCA-induced toxicity mainly to secreted species in a cell culture model of SNCA aggregation and in SNCA transgenic mice: We showed that ALP inhibition by bafilomycinA1 reduced intracellular SNCA aggregation but increased secretion of smaller oligomers that exacerbated microenvironmental response including uptake, inflammation, and cellular damage. Low-aggregated SNCA was predominantly released by exosomes and RAB11A-associated pathways whereas high-aggregated SNCA was secreted by membrane shedding. In summary, our study revealed a novel role of the ALP by linking protein degradation to nonclassical secretion for toxic SNCA species. Thus, impaired ALP in the diseased brain not only limits intracellular degradation of misfolded proteins, but also leads to a detrimental microenvironmental response due to enhanced SNCA secretion. These findings suggest that the major toxic role of SNCA is related to its extracellular species and further supports a protective role of intracellular SNCA aggregation.

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