4.7 Article

N-terminal acetylation mutants affect alpha-synuclein stability, protein levels and neuronal toxicity

期刊

NEUROBIOLOGY OF DISEASE
卷 137, 期 -, 页码 -

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.nbd.2020.104781

关键词

Alpha-synuclein; N-terminal acetylation; Longitudinal survival analysis; Cox proportional hazard analysis; Optical pulse-labeling

资金

  1. European Commission's Seventh Framework Program FP7/Marie Curie Reintegration Grant [224849, MINECO/FSE/RYC2008-03254, PTQ-13-06466, IEDI2015-00610, MINECO/FEDER/BEU2012-39737, BFU2013-48703-P, MICIU-AEI/FEDER/BFU201790043-P]
  2. Fundacion Tatiana P. de Guzman El Bueno
  3. Antonio Calatan-AC by Marriot
  4. ISCIII Consolidation Program
  5. Gobierno de Navarra [0011-13832018-000011]
  6. Fundacion para la Investigation Medica Aplicada (FIMA)
  7. ADA (Asociacion de Amigos de la Universidad de Navarra) from University of Navarra
  8. PE I + D + i 2013-2016 - ISCIII [PT17/0019]
  9. ERDF

向作者/读者索取更多资源

Alpha-synuclein (aSyn) protein levels are sufficient to drive Parkinson's disease (PD) and other synucleinopathies. Despite the biomedical/therapeutic potential of aSyn protein regulation, little is known about mechanisms that limit/control aSyn levels. Here, we investigate the role of a post-translational modification, N-terminal acetylation, in aSyn neurotoxicity. N-terminal acetylation occurs in all aSyn molecules and has been proposed to determine its lipid binding and aggregation capacities; however, its effect in aSyn stability/neurotoxicity has not been evaluated. We generated N-terminal mutants that alter or block physiological aSyn N-terminal acetylation in wild-type or pathological mutant E46K aSyn versions and confirmed N-terminal acetylation status by mass spectrometry. By optical pulse-labeling in living primary neurons we documented a reduced half-life and accumulation of aSyn N-terminal mutants. To analyze the effect of N-terminal acetylation mutants in neuronal toxicity we took advantage of a neuronal model where aSyn toxicity was scored by longitudinal survival analysis. Salient features of aSyn neurotoxicity were previously investigated with this approach. aSyn-dependent neuronal death was recapitulated either by higher aSyn protein levels in the case of WT aSyn, or by the combined effect of protein levels and enhanced neurotoxicity conveyed by the E46K mutation. aSyn N-terminal mutations decreased E46K aSyn-dependent neuronal death both by reducing protein levels and, importantly, by reducing the intrinsic E46K aSyn toxicity, being the D2P mutant the least toxic. Together, our results illustrate that the N-terminus determines, most likely through its acetylation, aSyn protein levels and toxicity, identifying this modification as a potential therapeutic target.

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