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Fleischmann, Y.

Publications and source records attributed to Fleischmann, Y..

2 recordsLinked to original sources

Structure-function relationship of alpha-synuclein fibrillar polymorphs derived from distinct synucleinopathies

The aggregation of the protein alpha-synuclein (Syn) is a common feature of multiple neurodegenerative diseases collectively called synucleinopathies, for which the pathobiology is not well understood. The different phenotypic characteristics of the synucleinopathies Parkinsons disease (PD), Dementia with Lewy Bodies (DLB) and Multiple System Atrophy (MSA) have been proposed to originate from the distinct structures adopted by Syn in its amyloid forms. Here, using covalent labeling and limited proteolysis coupled to mass spectrometry (LiP-MS) in vitro and in situ within neuronal cells and directly in native patient brain homogenates, we show that pathogenic Syn from distinct synucleinopathies (PD, DLB and MSA) are structurally different. Further, we found that fibrillar structural differences are associated with different fibril interactomes and neuronal responses. We discovered disease-specific ubiquitination patterns and turnover profiles for pathogenic Syn species, detected molecular pathways responding specifically to the uptake of different Syn fibrillar polymorphs, and identified a subset of the involved proteins as candidate direct interactors of Syn. In particular, components of the Ubiquitin-proteasomal System (UPS), including E3 ubiquitin ligases, chaperones, and Deubiquitinating proteins, showed disease/polymorph-specific interaction patterns, possibly accounting for different resistance of patient-derived Syn fibrils to degradation. Genetic modulation with CRISPR-based tools showed that members of the UPS degradation pathway (three E3 ligases: UBE3A, TRIM25, HUWE1 and the AAA+ ATPase VCP) reduced Syn inclusions, in a strain-specific manner. LiP-MS also identified sets of proteins with altered protease susceptibility in postmortem brain homogenates of PD, DLB, and MSA patients. These sets were largely disease-specific and included proteins altered in cells treated with fibrils derived from patients with the matching disease. Our findings provide insight into cellular processes involved in the accumulation and turnover of Syn pathogenic aggregates in PD, DLB and MSA in a disease specific manner and constitutes a resource of potential novel drug targets in these synucleinopathies.

systems biology↗

An approach to characterize mechanisms of action of anti-amyloidogenic compounds in vitro and in situ

Aggregation of amyloidogenic proteins is associated with neurodegenerative disease and its modulation is a focus of drug development efforts. However, the physicochemical properties and structural heterogeneity of amyloidogenic proteins hinder the mechanistic understanding of anti- amyloidogenic compounds. Further, modes of interaction with amyloidogenic proteins are often probed in vitro using purified protein samples, even though these models may not capture in vivo protein structures and do not enable identification of off-target effects. We have developed a modular structural proteomic pipeline based on limited proteolysis coupled to mass spectrometry (LiP-MS) with improved, amino acid level-resolution, to probe the mechanism of action of anti- amyloidogenic compounds. We demonstrate our approach by analysing the interactions of six known or putative anti-amyloidogenic compounds and the amyloid binder Thioflavin T (ThT) with different structural forms of the amyloidogenic Parkinsons disease (PD) protein -Synuclein. Our approach enables determination of putative interaction sites, identification of whether interactions are covalent or non-covalent, and crucially, can probe for interactions of compounds with physiological structures of -Synuclein in complex cell and tissue extracts and identify off-targets. In vitro analyses with our pipeline showed that the green tea polyphenol EGCG induces an N- and C-terminus- dependent compaction of the unstructured -Synuclein monomer, detected preferential interactions of ThT with the N-terminus of -Synuclein fibrils compared to the amyloid core, and showed that the most potent inhibitors of aggregation in our study (EGCG, baicalein and AC Immune compound #2) induced similar non-fibrillar end structures despite different interactions with -Synuclein monomers. Importantly, in mammalian cell lysates, -Synuclein was either a low-affinity target (for EGCG and Baicalein) or did not show evidence of compound interaction (for ThT and doxycycline) in our experimental conditions, despite both monomeric and fibrillar forms interacting with these compounds in vitro. For EGCG, we validated this result in postmortem brain homogenates from PD patients. These in situ analyses identified many additional putative cellular targets of Doxycycline, EGCG, Baicalein and ThT, suggesting that their effects in cellular or animal models of neurodegeneration are likely due to interactions with proteins other than -Synuclein and showing that anti-amyloidogenic compounds should be analyzed in situ as well as in vitro. Our modular pipeline will enable in situ screening of drugs and PET tracers for amyloid aggregates of interest as well as detailed mechanistic studies of compound action in vitro.

systems biology↗