The conversion of α-synuclein from its intrinsically disordered monomeric state into the fibrillar cross-α aggregates characteristically present in Lewy bodies is largely unknown. The investigation of α-synuclein variants causative of familial forms of Parkinson disease can provide unique insights into the conditions that promote or inhibit aggregate formation. It has been shown recently that a newly identified pathogenic mutation of α-synuclein, H50Q, aggregates faster than the wild-type. We investigate here its aggregation propensity by using a sequence-based prediction algorithm, NMR chemical shift analysis of secondary structure populations in the monomeric state, and determination of thermodynamic stability of the fibrils. Our data show that the H50Q mutation induces only a small increment in polyproline II structure around the site of the mutation and a slight increase in the overall aggregation propensity. We also find, however, that the H50Q mutation strongly stabilizes α-synuclein fibrils by 5.0 ± 1.0 kJ mol-1, thus increasing the supersaturation of monomeric α-synuclein within the cell, and strongly favors its aggregation process. We further show that wild-type α-synuclein can decelerate the aggregation kinetics of the H50Q variant in a dose-dependent manner when coaggregating with it. These last findings suggest that the precise balance of α-synuclein synthesized from the wild-type and mutant alleles may influence the natural history and heterogeneous clinical phenotype of Parkinson disease.

The H50Q mutation induces a 10-fold decrease in the solubility of α-synuclein / R. Porcari, C. Proukakis, C.A. Waudby, B. Bolognesi, P..P. Mangione, J.F..S. Paton, S. Mullin, L.D. Cabrita, A. Penco, A. Relini, G. Verona, M. Vendruscolo, M. Stoppini, G.G. Tartaglia, C. Camilloni, J. Christodoulou, A.H..V. Schapira, V. Bellott. - In: THE JOURNAL OF BIOLOGICAL CHEMISTRY. - ISSN 0021-9258. - 290:4(2015), pp. 2395-2404. [10.1074/jbc.M114.610527]

The H50Q mutation induces a 10-fold decrease in the solubility of α-synuclein

C. Camilloni;
2015

Abstract

The conversion of α-synuclein from its intrinsically disordered monomeric state into the fibrillar cross-α aggregates characteristically present in Lewy bodies is largely unknown. The investigation of α-synuclein variants causative of familial forms of Parkinson disease can provide unique insights into the conditions that promote or inhibit aggregate formation. It has been shown recently that a newly identified pathogenic mutation of α-synuclein, H50Q, aggregates faster than the wild-type. We investigate here its aggregation propensity by using a sequence-based prediction algorithm, NMR chemical shift analysis of secondary structure populations in the monomeric state, and determination of thermodynamic stability of the fibrils. Our data show that the H50Q mutation induces only a small increment in polyproline II structure around the site of the mutation and a slight increase in the overall aggregation propensity. We also find, however, that the H50Q mutation strongly stabilizes α-synuclein fibrils by 5.0 ± 1.0 kJ mol-1, thus increasing the supersaturation of monomeric α-synuclein within the cell, and strongly favors its aggregation process. We further show that wild-type α-synuclein can decelerate the aggregation kinetics of the H50Q variant in a dose-dependent manner when coaggregating with it. These last findings suggest that the precise balance of α-synuclein synthesized from the wild-type and mutant alleles may influence the natural history and heterogeneous clinical phenotype of Parkinson disease.
Aggregation Propensity; Amyloid; Fibril; Fibrils Thermodynamic Stability; Parkinson Disease; Polyproline II Structure; Protein Aggregation; alpha-Synuclein (a-synuclein); Amyloid; Binding Sites; Humans; Lewy Bodies; Magnetic Resonance Spectroscopy; Microscopy, Atomic Force; Parkinson Disease; Peptides; Phenotype; Protein Binding; Protein Isoforms; Protein Structure, Secondary; Recombinant Proteins; Solubility; Thermodynamics; alpha-Synuclein; Mutation; Biochemistry; Molecular Biology; Cell Biology
Settore FIS/07 - Fisica Applicata(Beni Culturali, Ambientali, Biol.e Medicin)
Settore BIO/10 - Biochimica
2015
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/494788
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