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Energetics and structure of alanine-rich α-helices via adaptive steered molecular dynamics

The energetics and hydrogen bonding profiles of the helix-to-coil transition were found to be an additive property and to increase linearly with chain length, respectively, in alanine-rich α-helical peptides. A model system of polyalanine repeats was used to establish this hypothesis for the energet...

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Autores principales: Zhuang, Yi, Bureau, Hailey R., Lopez, Christine, Bucher, Ryan, Quirk, Stephen, Hernandez, Rigoberto
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Biophysical Society 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8204395/
https://www.ncbi.nlm.nih.gov/pubmed/33775636
http://dx.doi.org/10.1016/j.bpj.2021.03.017
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author Zhuang, Yi
Bureau, Hailey R.
Lopez, Christine
Bucher, Ryan
Quirk, Stephen
Hernandez, Rigoberto
author_facet Zhuang, Yi
Bureau, Hailey R.
Lopez, Christine
Bucher, Ryan
Quirk, Stephen
Hernandez, Rigoberto
author_sort Zhuang, Yi
collection PubMed
description The energetics and hydrogen bonding profiles of the helix-to-coil transition were found to be an additive property and to increase linearly with chain length, respectively, in alanine-rich α-helical peptides. A model system of polyalanine repeats was used to establish this hypothesis for the energetic trends and hydrogen bonding profiles. Numerical measurements of a synthesized polypeptide Ac-Y(AEAAKA)(k)F-NH(2) and a natural α-helical peptide a2N (1–17) provide evidence of the hypothesis’s generality. Adaptive steered molecular dynamics was employed to investigate the mechanical unfolding of all of these alanine-rich polypeptides. We found that the helix-to-coil transition is primarily dependent on the breaking of the intramolecular backbone hydrogen bonds and independent of specific side-chain interactions and chain length. The mechanical unfolding of the α-helical peptides results in a turnover mechanism in which a 3(10)-helical structure forms during the unfolding, remaining at a near constant population and thereby maintaining additivity in the free energy. The intermediate partially unfolded structures exhibited polyproline II helical structure as previously seen by others. In summary, we found that the average force required to pull alanine-rich α-helical peptides in between the endpoints—namely the native structure and free coil—is nearly independent of the length or the specific primary structure.
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spelling pubmed-82043952022-05-18 Energetics and structure of alanine-rich α-helices via adaptive steered molecular dynamics Zhuang, Yi Bureau, Hailey R. Lopez, Christine Bucher, Ryan Quirk, Stephen Hernandez, Rigoberto Biophys J Articles The energetics and hydrogen bonding profiles of the helix-to-coil transition were found to be an additive property and to increase linearly with chain length, respectively, in alanine-rich α-helical peptides. A model system of polyalanine repeats was used to establish this hypothesis for the energetic trends and hydrogen bonding profiles. Numerical measurements of a synthesized polypeptide Ac-Y(AEAAKA)(k)F-NH(2) and a natural α-helical peptide a2N (1–17) provide evidence of the hypothesis’s generality. Adaptive steered molecular dynamics was employed to investigate the mechanical unfolding of all of these alanine-rich polypeptides. We found that the helix-to-coil transition is primarily dependent on the breaking of the intramolecular backbone hydrogen bonds and independent of specific side-chain interactions and chain length. The mechanical unfolding of the α-helical peptides results in a turnover mechanism in which a 3(10)-helical structure forms during the unfolding, remaining at a near constant population and thereby maintaining additivity in the free energy. The intermediate partially unfolded structures exhibited polyproline II helical structure as previously seen by others. In summary, we found that the average force required to pull alanine-rich α-helical peptides in between the endpoints—namely the native structure and free coil—is nearly independent of the length or the specific primary structure. The Biophysical Society 2021-05-18 2021-03-26 /pmc/articles/PMC8204395/ /pubmed/33775636 http://dx.doi.org/10.1016/j.bpj.2021.03.017 Text en © 2021 Biophysical Society. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Articles
Zhuang, Yi
Bureau, Hailey R.
Lopez, Christine
Bucher, Ryan
Quirk, Stephen
Hernandez, Rigoberto
Energetics and structure of alanine-rich α-helices via adaptive steered molecular dynamics
title Energetics and structure of alanine-rich α-helices via adaptive steered molecular dynamics
title_full Energetics and structure of alanine-rich α-helices via adaptive steered molecular dynamics
title_fullStr Energetics and structure of alanine-rich α-helices via adaptive steered molecular dynamics
title_full_unstemmed Energetics and structure of alanine-rich α-helices via adaptive steered molecular dynamics
title_short Energetics and structure of alanine-rich α-helices via adaptive steered molecular dynamics
title_sort energetics and structure of alanine-rich α-helices via adaptive steered molecular dynamics
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8204395/
https://www.ncbi.nlm.nih.gov/pubmed/33775636
http://dx.doi.org/10.1016/j.bpj.2021.03.017
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