Potential energy landscape and thermodynamic transitions of coarse-grained protein models revealed by the multicanonical generalized hybrid Monte Carlo method
In the present study, thermodynamic properties of coarse-grained protein models have been studied by an extended ensemble method. Two types of protein model were analyzed; one is categorized into a fast folder and the other into a slow folder. Both models exhibit the following thermodynamic transiti...
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Online Access: | https://doi.org/10.2142/biophysico.BSJ-2019051 |
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doaj-5301b7b782164d2085121474bebde5532020-11-25T03:10:46ZengThe Biophysical Society of JapanBiophysics and Physicobiology2189-47792020-02-011710.2142/biophysico.BSJ-2019051Potential energy landscape and thermodynamic transitions of coarse-grained protein models revealed by the multicanonical generalized hybrid Monte Carlo methodNatsuki Mukuta0Shinichi Miura1Division of Mathematical and Physical Sciences, Graduate School of Natural Science and Technology, Kanazawa University, Kakuma, Kanazawa, Ishikawa 920-1192, JapanFaculty of Mathematics and Physics, Kanazawa University, Kakuma, Kanazawa, Ishikawa 920-1192, JapanIn the present study, thermodynamic properties of coarse-grained protein models have been studied by an extended ensemble method. Two types of protein model were analyzed; one is categorized into a fast folder and the other into a slow folder. Both models exhibit the following thermodynamic transitions: the collapse transition between random coil states and spatially compact, but non-native states and the folding transition between the collapsed states and the folded native states. Caloric curve for the fast folder shows strong statistical ensemble dependence, while almost no ensemble dependence is found for the slow folder. Microcanonical caloric curve for the fast folder exhibits S-shaped temperature dependence on the internal energy around the collapse transition which is reminiscent of the van der Waals loop observed for the first order transition; at the transition temperature, the collapsed and random coil states coexist dynamically. The corresponding microcanonical heat capacity is found to have negative region around the transition. This kind of exotic behaviors could be utilized to distinguish fast folding proteins.https://doi.org/10.2142/biophysico.BSJ-2019051protein foldingmulticanonical ensemblegeneralized hybrid monte carlogo-like model |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Natsuki Mukuta Shinichi Miura |
spellingShingle |
Natsuki Mukuta Shinichi Miura Potential energy landscape and thermodynamic transitions of coarse-grained protein models revealed by the multicanonical generalized hybrid Monte Carlo method Biophysics and Physicobiology protein folding multicanonical ensemble generalized hybrid monte carlo go-like model |
author_facet |
Natsuki Mukuta Shinichi Miura |
author_sort |
Natsuki Mukuta |
title |
Potential energy landscape and thermodynamic transitions of coarse-grained protein models revealed by the multicanonical generalized hybrid Monte Carlo method |
title_short |
Potential energy landscape and thermodynamic transitions of coarse-grained protein models revealed by the multicanonical generalized hybrid Monte Carlo method |
title_full |
Potential energy landscape and thermodynamic transitions of coarse-grained protein models revealed by the multicanonical generalized hybrid Monte Carlo method |
title_fullStr |
Potential energy landscape and thermodynamic transitions of coarse-grained protein models revealed by the multicanonical generalized hybrid Monte Carlo method |
title_full_unstemmed |
Potential energy landscape and thermodynamic transitions of coarse-grained protein models revealed by the multicanonical generalized hybrid Monte Carlo method |
title_sort |
potential energy landscape and thermodynamic transitions of coarse-grained protein models revealed by the multicanonical generalized hybrid monte carlo method |
publisher |
The Biophysical Society of Japan |
series |
Biophysics and Physicobiology |
issn |
2189-4779 |
publishDate |
2020-02-01 |
description |
In the present study, thermodynamic properties of coarse-grained protein models have been studied by an extended ensemble method. Two types of protein model were analyzed; one is categorized into a fast folder and the other into a slow folder. Both models exhibit the following thermodynamic transitions: the collapse transition between random coil states and spatially compact, but non-native states and the folding transition between the collapsed states and the folded native states. Caloric curve for the fast folder shows strong statistical ensemble dependence, while almost no ensemble dependence is found for the slow folder. Microcanonical caloric curve for the fast folder exhibits S-shaped temperature dependence on the internal energy around the collapse transition which is reminiscent of the van der Waals loop observed for the first order transition; at the transition temperature, the collapsed and random coil states coexist dynamically. The corresponding microcanonical heat capacity is found to have negative region around the transition. This kind of exotic behaviors could be utilized to distinguish fast folding proteins. |
topic |
protein folding multicanonical ensemble generalized hybrid monte carlo go-like model |
url |
https://doi.org/10.2142/biophysico.BSJ-2019051 |
work_keys_str_mv |
AT natsukimukuta potentialenergylandscapeandthermodynamictransitionsofcoarsegrainedproteinmodelsrevealedbythemulticanonicalgeneralizedhybridmontecarlomethod AT shinichimiura potentialenergylandscapeandthermodynamictransitionsofcoarsegrainedproteinmodelsrevealedbythemulticanonicalgeneralizedhybridmontecarlomethod |
_version_ |
1724657363618627584 |