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Symmetry-breaking transitions in the early steps of protein self-assembly
- Source :
- European biophysics journal 49 (2020): 175–191. doi:10.1007/s00249-020-01424-1, info:cnr-pdr/source/autori:La Rosa, Carmelo; Condorelli, Marcello; Compagnini, Giuseppe; Lolicato, Fabio; Milardi, Danilo; Do, Trang Nhu; Karttunen, Mikko; Pannuzzo, Martina; Ramamoorthy, Ayyalusamy; Fraternali, Franca; Collu, Francesca; Rezaei, Human; Strodel, Birgit; Raudino, Antonio/titolo:Symmetry-breaking transitions in the early steps of protein self-assembly/doi:10.1007%2Fs00249-020-01424-1/rivista:European biophysics journal/anno:2020/pagina_da:175/pagina_a:191/intervallo_pagine:175–191/volume:49, European Biophysics Journal, European Biophysics Journal, Springer Verlag (Germany), 2020, 49 (2), pp.175-191. ⟨10.1007/s00249-020-01424-1⟩, European biophysics journal 49(2), 175-191 (2020). doi:10.1007/s00249-020-01424-1
- Publication Year :
- 2020
- Publisher :
- Springer Science and Business Media LLC, 2020.
-
Abstract
- International audience; Protein misfolding and subsequent self-association are complex, intertwined processes, resulting in development of a heterogeneous population of aggregates closely related to many chronic pathological conditions including Type 2 Diabetes Mellitus and Alzheimer’s disease. To address this issue, here, we develop a theoretical model in the general framework of linear stability analysis. According to this model, self-assemblies of peptides with pronounced conformational flexibility may become, under particular conditions, unstable and spontaneously evolve toward an alternating array of partially ordered and disordered monomers. The predictions of the theory were verified by atomistic molecular dynamics (MD) simulations of islet amyloid polypeptide (IAPP) used as a paradigm of aggregation-prone polypeptides (proteins). Simulations of dimeric, tetrameric, and hexameric human-IAPP self-assemblies at physiological electrolyte concentration reveal an alternating distribution of the smallest domains (of the order of the peptide mean length) formed by partially ordered (mainly β-strands) and disordered (turns and coil) arrays. Periodicity disappears upon weakening of the inter-peptide binding, a result in line with the predictions of the theory. To further probe the general validity of our hypothesis, we extended the simulations to other peptides, the Aβ(1–40) amyloid peptide, and the ovine prion peptide as well as to other proteins (SOD1 dimer) that do not belong to the broad class of intrinsically disordered proteins. In all cases, the oligomeric aggregates show an alternate distribution of partially ordered and disordered monomers. We also carried out Surface Enhanced Raman Scattering (SERS) measurements of hIAPP as an experimental validation of both the theory and in silico simulations.
- Subjects :
- 0301 basic medicine
Protein Denaturation
Protein Folding
030103 biophysics
Amyloid
[PHYS.PHYS.PHYS-BIO-PH]Physics [physics]/Physics [physics]/Biological Physics [physics.bio-ph]
Dimer
Biophysics
Peptide
Molecular dynamics
Molecular Dynamics Simulation
Spectrum Analysis, Raman
Intrinsically disordered proteins
Analytical model
Protein Structure, Secondary
Electrolytes
03 medical and health sciences
chemistry.chemical_compound
ddc:570
Humans
Computer Simulation
Symmetry-breaking
Colloids
Symmetry breaking
chemistry.chemical_classification
Reproducibility of Results
General Medicine
Models, Theoretical
Islet Amyloid Polypeptide
Kinetics
030104 developmental biology
chemistry
Oligomers
Solvents
Thermodynamics
Protein folding
Self-assembly
Protein Multimerization
Peptides
Subjects
Details
- ISSN :
- 14321017 and 01757571
- Volume :
- 49
- Database :
- OpenAIRE
- Journal :
- European Biophysics Journal
- Accession number :
- edsair.doi.dedup.....b546abc0f3961d52c5d84d20de2758c9
- Full Text :
- https://doi.org/10.1007/s00249-020-01424-1