Protein misfolding is implicated in many diseases, including serpinopathies. For the canonical inhibitory serpin α1-antitrypsin, mutations can result in protein deficiencies leading to lung disease, and misfolded mutants can accumulate in hepatocytes, leading to liver disease. Using all-atom simulations based on the recently developed bias functional algorithm, we elucidate how wild-type α1-antitrypsin folds and how the disease-associated S (Glu264Val) and Z (Glu342Lys) mutations lead to misfolding. The deleterious Z mutation disrupts folding at an early stage, whereas the relatively benign S mutant shows late-stage minor misfolding. A number of suppressor mutations ameliorate the effects of the Z mutation, and simulations on these mutants help to elucidate the relative roles of steric clashes and electrostatic interactions in Z misfolding. These results demonstrate a striking correlation between atomistic events and disease severity and shine light on the mechanisms driving chains away from their correct folding routes.

Wang, F., Orioli, S., Ianeselli, A., Spagnolli, G., a Beccara, S., Gershenson, A., et al. (2018). All-Atom Simulations Reveal How Single-Point Mutations Promote Serpin Misfolding. BIOPHYSICAL JOURNAL, 114(9), 2083-2094 [10.1016/j.bpj.2018.03.027].

All-Atom Simulations Reveal How Single-Point Mutations Promote Serpin Misfolding

Faccioli, Pietro
;
2018

Abstract

Protein misfolding is implicated in many diseases, including serpinopathies. For the canonical inhibitory serpin α1-antitrypsin, mutations can result in protein deficiencies leading to lung disease, and misfolded mutants can accumulate in hepatocytes, leading to liver disease. Using all-atom simulations based on the recently developed bias functional algorithm, we elucidate how wild-type α1-antitrypsin folds and how the disease-associated S (Glu264Val) and Z (Glu342Lys) mutations lead to misfolding. The deleterious Z mutation disrupts folding at an early stage, whereas the relatively benign S mutant shows late-stage minor misfolding. A number of suppressor mutations ameliorate the effects of the Z mutation, and simulations on these mutants help to elucidate the relative roles of steric clashes and electrostatic interactions in Z misfolding. These results demonstrate a striking correlation between atomistic events and disease severity and shine light on the mechanisms driving chains away from their correct folding routes.
Articolo in rivista - Articolo scientifico
alpha 1-Antitrypsin; Molecular Dynamics Simulation; Mutant Proteins; Point Mutation; Protein Conformation; Protein Folding
English
2018
114
9
2083
2094
none
Wang, F., Orioli, S., Ianeselli, A., Spagnolli, G., a Beccara, S., Gershenson, A., et al. (2018). All-Atom Simulations Reveal How Single-Point Mutations Promote Serpin Misfolding. BIOPHYSICAL JOURNAL, 114(9), 2083-2094 [10.1016/j.bpj.2018.03.027].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/405605
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