Cargando…

Mutation-induced change in chignolin stability from π-turn to α-turn

Chignolin, which consists of 10 amino acids, adopts two stable states in simulations at room temperature at 1 atm: the native and misfolded states. The sequence of chignolin is optimized to form a stable π-turn and thus the native state has a π-turn from Asp3 to Thr8. On the other hand, the misfolde...

Descripción completa

Detalles Bibliográficos
Autores principales: Maruyama, Yutaka, Koroku, Shunpei, Imai, Misaki, Takeuchi, Koh, Mitsutake, Ayori
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9054626/
https://www.ncbi.nlm.nih.gov/pubmed/35514567
http://dx.doi.org/10.1039/d0ra01148g
_version_ 1784697232809787392
author Maruyama, Yutaka
Koroku, Shunpei
Imai, Misaki
Takeuchi, Koh
Mitsutake, Ayori
author_facet Maruyama, Yutaka
Koroku, Shunpei
Imai, Misaki
Takeuchi, Koh
Mitsutake, Ayori
author_sort Maruyama, Yutaka
collection PubMed
description Chignolin, which consists of 10 amino acids, adopts two stable states in simulations at room temperature at 1 atm: the native and misfolded states. The sequence of chignolin is optimized to form a stable π-turn and thus the native state has a π-turn from Asp3 to Thr8. On the other hand, the misfolded state adopts an α-turn from Asp3 to Gly7. We previously investigated the differences in the stability mechanism of the two states using computational techniques. Our previous detailed energy analysis implied that the native state was stabilized by hydrogen bonding between the side chain atoms of Thr6 and Thr8, and Thr8 was not involved in stabilization of the misfolded state. Thus, we predicted that mutation of Thr8 to a neutral amino acid could stabilize the misfolded structure over the native structure. In the present work, we performed 4 μs molecular dynamics simulations for 19 mutants of the 8th residue. Among them, the T8I, T8F, T8P, T8N, and T8Y mutants, in which the 8th residue was changed to a neutral residue, formed only the misfolded structure at room temperature. Even at high temperature, for the T8P mutant, the native structure was not observed, as the T8P mutant cannot form the native structure because of steric hindrance caused by the distinctive cyclic structure of proline. Interestingly, the T8P mutant at high temperature has trans and cis conformations in the Gly7–Pro8 sequence, with the trans conformation corresponding to the misfolded state. NMR analysis of the T8P mutant supported our results.
format Online
Article
Text
id pubmed-9054626
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90546262022-05-04 Mutation-induced change in chignolin stability from π-turn to α-turn Maruyama, Yutaka Koroku, Shunpei Imai, Misaki Takeuchi, Koh Mitsutake, Ayori RSC Adv Chemistry Chignolin, which consists of 10 amino acids, adopts two stable states in simulations at room temperature at 1 atm: the native and misfolded states. The sequence of chignolin is optimized to form a stable π-turn and thus the native state has a π-turn from Asp3 to Thr8. On the other hand, the misfolded state adopts an α-turn from Asp3 to Gly7. We previously investigated the differences in the stability mechanism of the two states using computational techniques. Our previous detailed energy analysis implied that the native state was stabilized by hydrogen bonding between the side chain atoms of Thr6 and Thr8, and Thr8 was not involved in stabilization of the misfolded state. Thus, we predicted that mutation of Thr8 to a neutral amino acid could stabilize the misfolded structure over the native structure. In the present work, we performed 4 μs molecular dynamics simulations for 19 mutants of the 8th residue. Among them, the T8I, T8F, T8P, T8N, and T8Y mutants, in which the 8th residue was changed to a neutral residue, formed only the misfolded structure at room temperature. Even at high temperature, for the T8P mutant, the native structure was not observed, as the T8P mutant cannot form the native structure because of steric hindrance caused by the distinctive cyclic structure of proline. Interestingly, the T8P mutant at high temperature has trans and cis conformations in the Gly7–Pro8 sequence, with the trans conformation corresponding to the misfolded state. NMR analysis of the T8P mutant supported our results. The Royal Society of Chemistry 2020-06-15 /pmc/articles/PMC9054626/ /pubmed/35514567 http://dx.doi.org/10.1039/d0ra01148g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Maruyama, Yutaka
Koroku, Shunpei
Imai, Misaki
Takeuchi, Koh
Mitsutake, Ayori
Mutation-induced change in chignolin stability from π-turn to α-turn
title Mutation-induced change in chignolin stability from π-turn to α-turn
title_full Mutation-induced change in chignolin stability from π-turn to α-turn
title_fullStr Mutation-induced change in chignolin stability from π-turn to α-turn
title_full_unstemmed Mutation-induced change in chignolin stability from π-turn to α-turn
title_short Mutation-induced change in chignolin stability from π-turn to α-turn
title_sort mutation-induced change in chignolin stability from π-turn to α-turn
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9054626/
https://www.ncbi.nlm.nih.gov/pubmed/35514567
http://dx.doi.org/10.1039/d0ra01148g
work_keys_str_mv AT maruyamayutaka mutationinducedchangeinchignolinstabilityfrompturntoaturn
AT korokushunpei mutationinducedchangeinchignolinstabilityfrompturntoaturn
AT imaimisaki mutationinducedchangeinchignolinstabilityfrompturntoaturn
AT takeuchikoh mutationinducedchangeinchignolinstabilityfrompturntoaturn
AT mitsutakeayori mutationinducedchangeinchignolinstabilityfrompturntoaturn