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Nanostructure and stability of calcitonin amyloids

Calcitonin is a 32-amino acid thyroid hormone that can form amyloid fibrils. The structural basis of the fibril formation and stabilization is still debated and poorly understood. The reason is that NMR data strongly suggest antiparallel β-sheet calcitonin assembly, whereas modeling studies on the s...

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Autores principales: Rigoldi, Federica, Metrangolo, Pierangelo, Redaelli, Alberto, Gautieri, Alfonso
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5418037/
https://www.ncbi.nlm.nih.gov/pubmed/28283568
http://dx.doi.org/10.1074/jbc.M116.770271
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author Rigoldi, Federica
Metrangolo, Pierangelo
Redaelli, Alberto
Gautieri, Alfonso
author_facet Rigoldi, Federica
Metrangolo, Pierangelo
Redaelli, Alberto
Gautieri, Alfonso
author_sort Rigoldi, Federica
collection PubMed
description Calcitonin is a 32-amino acid thyroid hormone that can form amyloid fibrils. The structural basis of the fibril formation and stabilization is still debated and poorly understood. The reason is that NMR data strongly suggest antiparallel β-sheet calcitonin assembly, whereas modeling studies on the short DFNKF peptide (corresponding to the sequence from Asp(15) to Phe(19) of human calcitonin and reported as the minimal amyloidogenic module) show that it assembles with parallel β-sheets. In this work, we first predict the structure of human calcitonin through two complementary molecular dynamics (MD) methods, finding that human calcitonin forms an α-helix. We use extensive MD simulations to compare previously proposed calcitonin fibril structures. We find that two conformations, the parallel arrangement and one of the possible antiparallel structures (with Asp(15) and Phe(19) aligned), are highly stable and ordered. Nonetheless, fibrils with parallel molecules show bulky loops formed by residues 1 to 7 located on the same side, which could limit or prevent the formation of larger amyloids. We investigate fibrils formed by the DFNKF peptide by simulating different arrangements of this amyloidogenic core sequence. We show that DFNKF fibrils are highly stable when assembled in parallel β-sheets, whereas they quickly unfold in antiparallel conformation. Our results indicate that the DFNKF peptide represents only partially the full-length calcitonin behavior. Contrary to the full-length polypeptide, in fact, the DFNKF sequence is not stable in antiparallel conformation, suggesting that the residue flanking the amyloidogenic peptide contributes to the stabilization of the experimentally observed antiparallel β-sheet packing.
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spelling pubmed-54180372017-05-08 Nanostructure and stability of calcitonin amyloids Rigoldi, Federica Metrangolo, Pierangelo Redaelli, Alberto Gautieri, Alfonso J Biol Chem Computational Biology Calcitonin is a 32-amino acid thyroid hormone that can form amyloid fibrils. The structural basis of the fibril formation and stabilization is still debated and poorly understood. The reason is that NMR data strongly suggest antiparallel β-sheet calcitonin assembly, whereas modeling studies on the short DFNKF peptide (corresponding to the sequence from Asp(15) to Phe(19) of human calcitonin and reported as the minimal amyloidogenic module) show that it assembles with parallel β-sheets. In this work, we first predict the structure of human calcitonin through two complementary molecular dynamics (MD) methods, finding that human calcitonin forms an α-helix. We use extensive MD simulations to compare previously proposed calcitonin fibril structures. We find that two conformations, the parallel arrangement and one of the possible antiparallel structures (with Asp(15) and Phe(19) aligned), are highly stable and ordered. Nonetheless, fibrils with parallel molecules show bulky loops formed by residues 1 to 7 located on the same side, which could limit or prevent the formation of larger amyloids. We investigate fibrils formed by the DFNKF peptide by simulating different arrangements of this amyloidogenic core sequence. We show that DFNKF fibrils are highly stable when assembled in parallel β-sheets, whereas they quickly unfold in antiparallel conformation. Our results indicate that the DFNKF peptide represents only partially the full-length calcitonin behavior. Contrary to the full-length polypeptide, in fact, the DFNKF sequence is not stable in antiparallel conformation, suggesting that the residue flanking the amyloidogenic peptide contributes to the stabilization of the experimentally observed antiparallel β-sheet packing. American Society for Biochemistry and Molecular Biology 2017-05-05 2017-03-10 /pmc/articles/PMC5418037/ /pubmed/28283568 http://dx.doi.org/10.1074/jbc.M116.770271 Text en © 2017 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version free via Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Computational Biology
Rigoldi, Federica
Metrangolo, Pierangelo
Redaelli, Alberto
Gautieri, Alfonso
Nanostructure and stability of calcitonin amyloids
title Nanostructure and stability of calcitonin amyloids
title_full Nanostructure and stability of calcitonin amyloids
title_fullStr Nanostructure and stability of calcitonin amyloids
title_full_unstemmed Nanostructure and stability of calcitonin amyloids
title_short Nanostructure and stability of calcitonin amyloids
title_sort nanostructure and stability of calcitonin amyloids
topic Computational Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5418037/
https://www.ncbi.nlm.nih.gov/pubmed/28283568
http://dx.doi.org/10.1074/jbc.M116.770271
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