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Modeling the syn-cycle in the light activated opening of the channelrhodopsin-2 ion channel

The ion channel of channelrhodopsin-2 (ChR2) is activated by absorbing light. The light stimulates retinal to isomerize to start the photocycle. There are two pathways for photocycles, which are caused by isomerization of the retinal from all-trans, 15-anti to 13-cis, 15-anti in the dark-adapted sta...

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Autores principales: Xin, Qi, Cheng, Jie, Wang, Hongwei, Zhang, Wenying, Lu, Hong, Zhou, Junpeng, Lo, Glenn V., Dou, Yusheng, Yuan, Shuai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8981705/
https://www.ncbi.nlm.nih.gov/pubmed/35424642
http://dx.doi.org/10.1039/d1ra08521b
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author Xin, Qi
Cheng, Jie
Wang, Hongwei
Zhang, Wenying
Lu, Hong
Zhou, Junpeng
Lo, Glenn V.
Dou, Yusheng
Yuan, Shuai
author_facet Xin, Qi
Cheng, Jie
Wang, Hongwei
Zhang, Wenying
Lu, Hong
Zhou, Junpeng
Lo, Glenn V.
Dou, Yusheng
Yuan, Shuai
author_sort Xin, Qi
collection PubMed
description The ion channel of channelrhodopsin-2 (ChR2) is activated by absorbing light. The light stimulates retinal to isomerize to start the photocycle. There are two pathways for photocycles, which are caused by isomerization of the retinal from all-trans, 15-anti to 13-cis, 15-anti in the dark-adapted state (anti-cycle) and from 13-cis, 15-syn to all-trans, 15-syn in the light-adapted state (syn-cycle). In this work, the structure of the syn-cycle intermediate and mechanism of channel opening were studied by molecular dynamics (MD) and steered molecular dynamics (SMD) simulations. Due to the lack of crystal structure of intermediates in the syn-cycle of ChR2, the intermediate models were constructed from the homologous intermediates in the anti-cycle. The isomerization of retinal was shown to cause the central gate (CG) hydrogen bond network to rearrange, cutting the link between TM2 and TM7. TM2 is moved by the intrahelical hydrogen bond of E90 and K93, and induced the intracellular gate (ICG) to expand. The ion penetration pathway between TM1, TM2, TM3 and TM7 in the P500* state was observed by MD simulations. However, this channel is not fully opened compared with the homologous P500 state in the anti-cycle. In addition, the protons on Schiff bases were found to be unable to form hydrogen bonds with the counter residues (E123 and D253) in the P500* state, preventing an evolution of the P500* state to a P390-like state in the syn-cycle.
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spelling pubmed-89817052022-04-13 Modeling the syn-cycle in the light activated opening of the channelrhodopsin-2 ion channel Xin, Qi Cheng, Jie Wang, Hongwei Zhang, Wenying Lu, Hong Zhou, Junpeng Lo, Glenn V. Dou, Yusheng Yuan, Shuai RSC Adv Chemistry The ion channel of channelrhodopsin-2 (ChR2) is activated by absorbing light. The light stimulates retinal to isomerize to start the photocycle. There are two pathways for photocycles, which are caused by isomerization of the retinal from all-trans, 15-anti to 13-cis, 15-anti in the dark-adapted state (anti-cycle) and from 13-cis, 15-syn to all-trans, 15-syn in the light-adapted state (syn-cycle). In this work, the structure of the syn-cycle intermediate and mechanism of channel opening were studied by molecular dynamics (MD) and steered molecular dynamics (SMD) simulations. Due to the lack of crystal structure of intermediates in the syn-cycle of ChR2, the intermediate models were constructed from the homologous intermediates in the anti-cycle. The isomerization of retinal was shown to cause the central gate (CG) hydrogen bond network to rearrange, cutting the link between TM2 and TM7. TM2 is moved by the intrahelical hydrogen bond of E90 and K93, and induced the intracellular gate (ICG) to expand. The ion penetration pathway between TM1, TM2, TM3 and TM7 in the P500* state was observed by MD simulations. However, this channel is not fully opened compared with the homologous P500 state in the anti-cycle. In addition, the protons on Schiff bases were found to be unable to form hydrogen bonds with the counter residues (E123 and D253) in the P500* state, preventing an evolution of the P500* state to a P390-like state in the syn-cycle. The Royal Society of Chemistry 2022-02-24 /pmc/articles/PMC8981705/ /pubmed/35424642 http://dx.doi.org/10.1039/d1ra08521b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Xin, Qi
Cheng, Jie
Wang, Hongwei
Zhang, Wenying
Lu, Hong
Zhou, Junpeng
Lo, Glenn V.
Dou, Yusheng
Yuan, Shuai
Modeling the syn-cycle in the light activated opening of the channelrhodopsin-2 ion channel
title Modeling the syn-cycle in the light activated opening of the channelrhodopsin-2 ion channel
title_full Modeling the syn-cycle in the light activated opening of the channelrhodopsin-2 ion channel
title_fullStr Modeling the syn-cycle in the light activated opening of the channelrhodopsin-2 ion channel
title_full_unstemmed Modeling the syn-cycle in the light activated opening of the channelrhodopsin-2 ion channel
title_short Modeling the syn-cycle in the light activated opening of the channelrhodopsin-2 ion channel
title_sort modeling the syn-cycle in the light activated opening of the channelrhodopsin-2 ion channel
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8981705/
https://www.ncbi.nlm.nih.gov/pubmed/35424642
http://dx.doi.org/10.1039/d1ra08521b
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