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Larroquette, F.

Publications and source records attributed to Larroquette, F..

2 recordsLinked to original sources

N-terminal acetylation reduces α-synuclein pathology in models of Parkinson's disease

The -synuclein protein, encoded by SNCA gene, is a major constituent of pathological intracellular inclusions such as Lewy bodies found in the brains of patients with Parkinsons disease and other synucleinopathies. Whereas -synuclein phosphorylation has been much studied, comparatively less work has been devoted to other post-translational modifications such as acetylation, especially given that N-terminally acetylated -synuclein is the most abundant endogenous form of the protein in the brain. In this study, using multiple in vitro and in vivo models, we sought to better understand the role of N-terminal acetylation in the pathogenesis of synucleinopathies. We found that N-terminal acetylation slowed aggregation of both -synuclein monomers and pre-formed fibrils in vitro. Uptake of acetylated -synuclein pre-formed fibrils into both immortalized cell lines and iPSC-derived dopamine neurons was also slowed compared non-acetylated fibrils. In addition, exposure to acetylated pre-formed fibrils induced less seeding of endogenous -synuclein, as measured by the accumulation of Serine129-phosphorylated -synuclein inclusions in both iPSC-derived dopamine neurons and mouse brain. Finally, mice injected with N-terminally acetylated -synuclein pre-formed fibrils survived significantly longer than mice injected with non-acetylated fibrils. Taken together, our study indicates that N-terminal acetylation reduces -synuclein aggregation, uptake into cells, seeding of endogenous -synuclein, and toxicity in vivo, suggesting that this prevalent post-translational modification represents a potent, physiologically relevant protective mechanism, which has thus far largely not been taken into consideration in most experimental paradigms of Parkinsons disease and synucleinopathies.

molecular biology↗

A genome-wide CRISPR/Cas9 screen identifies genes that regulate the cellular uptake of α-synuclein fibrils by modulating heparan sulfate proteoglycans

Synucleinopathies are characterized by the accumulation and propagation of -synuclein (-syn) aggregates throughout the brain, leading to neuronal dysfunction and death. Understanding how these aggregates propagate from cell to cell in a prion-like fashion thus holds great therapeutic promises. Here, we focused on understanding the cellular processes involved in the entry and accumulation of pathological -syn aggregates. We used an unbiased FACS-based genome-wide CRISPR/Cas9 knockout (KO) screening to identify genes that regulate the accumulation of -syn preformed fibrils (PFFs) in cells. We identified key genes and pathways specifically implicated in -syn PFFs intracellular accumulation, including heparan sulfate proteoglycans (HSPG) biosynthesis and Golgi trafficking. We show that all confirmed hits affect heparan sulfate (HS), a post-translational modification known to act as a receptor for proteinaceous aggregates including of -syn and tau. Intriguingly, KO of SLC39A9 and C3orf58 genes, encoding respectively a Golgi-localized exporter of Zn2+, and the Golgi-localized putative kinase DIPK2A, specifically impaired the uptake of -syn PFFs uptake but not of tau oligomers, by preventing the binding of PFFs to the cell surface. Mass spectrometry-based analysis of HS chains indicated major defects in HS maturation in SLC39A9 and C3orf58 KO cells, explaining the cell surface binding deficit. Our findings now clearly establish these two genes as HSPG-modulating factors. Interestingly, C3orf58 KO human iPSC-derived microglia exhibited a strong reduction in their ability to internalize -syn PFFs. Altogether, our data establish HSPGs as major receptors for -syn PFFs binding on the cell surface and identifies new players in -syn PFFs cell surface binding and uptake.

cell biology↗