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Molecular modeling of the HAMP domain of sensory rhodopsin II transducer from Natronomonas pharaonis

The halobacterial transducer of sensory rhodopsin II (HtrII) is a photosignal transducer associated with phototaxis in extreme halophiles. The HAMP domain, a linker domain in HtrII, is considered to play an important role in transferring the signal from the membrane to the cytoplasmic region, althou...

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Autores principales: Nishikata, Koro, Fuchigami, Sotaro, Ikeguchi, Mitsunori, Kidera, Akinori
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Biophysical Society of Japan (BSJ) 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5036668/
https://www.ncbi.nlm.nih.gov/pubmed/27857583
http://dx.doi.org/10.2142/biophysics.6.27
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author Nishikata, Koro
Fuchigami, Sotaro
Ikeguchi, Mitsunori
Kidera, Akinori
author_facet Nishikata, Koro
Fuchigami, Sotaro
Ikeguchi, Mitsunori
Kidera, Akinori
author_sort Nishikata, Koro
collection PubMed
description The halobacterial transducer of sensory rhodopsin II (HtrII) is a photosignal transducer associated with phototaxis in extreme halophiles. The HAMP domain, a linker domain in HtrII, is considered to play an important role in transferring the signal from the membrane to the cytoplasmic region, although its structure in the complex remains undetermined. To establish the structural basis for understanding the mechanism of signal transduction, we present an atomic model of the structure of the N-terminal HAMP domain from Natronomonas pharaonis (HtrII: 84–136), based on molecular dynamics (MD) simulations. The model was built by homology modeling using the NMR structure of Af1503 from Archaeoglobus fulgidus as a template. The HAMP domains of Af1503 and HtrII were stable during MD simulations over 100 ns. Quantitative analyses of inter-helical packing indicated that the Af1503 HAMP domain stably maintained unusual knobs-to-knobs packing, as observed in the NMR structure, while the bulky side-chains of HtrII shifted the packing state to canonical knobs-into-holes. The role of the connector loop in maintaining structural stability was also discussed using MD simulations of loop deletion mutants.
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spelling pubmed-50366682016-11-17 Molecular modeling of the HAMP domain of sensory rhodopsin II transducer from Natronomonas pharaonis Nishikata, Koro Fuchigami, Sotaro Ikeguchi, Mitsunori Kidera, Akinori Biophysics (Nagoya-shi) Articles The halobacterial transducer of sensory rhodopsin II (HtrII) is a photosignal transducer associated with phototaxis in extreme halophiles. The HAMP domain, a linker domain in HtrII, is considered to play an important role in transferring the signal from the membrane to the cytoplasmic region, although its structure in the complex remains undetermined. To establish the structural basis for understanding the mechanism of signal transduction, we present an atomic model of the structure of the N-terminal HAMP domain from Natronomonas pharaonis (HtrII: 84–136), based on molecular dynamics (MD) simulations. The model was built by homology modeling using the NMR structure of Af1503 from Archaeoglobus fulgidus as a template. The HAMP domains of Af1503 and HtrII were stable during MD simulations over 100 ns. Quantitative analyses of inter-helical packing indicated that the Af1503 HAMP domain stably maintained unusual knobs-to-knobs packing, as observed in the NMR structure, while the bulky side-chains of HtrII shifted the packing state to canonical knobs-into-holes. The role of the connector loop in maintaining structural stability was also discussed using MD simulations of loop deletion mutants. The Biophysical Society of Japan (BSJ) 2010-03-16 /pmc/articles/PMC5036668/ /pubmed/27857583 http://dx.doi.org/10.2142/biophysics.6.27 Text en 2010 © The Biophysical Society of Japan
spellingShingle Articles
Nishikata, Koro
Fuchigami, Sotaro
Ikeguchi, Mitsunori
Kidera, Akinori
Molecular modeling of the HAMP domain of sensory rhodopsin II transducer from Natronomonas pharaonis
title Molecular modeling of the HAMP domain of sensory rhodopsin II transducer from Natronomonas pharaonis
title_full Molecular modeling of the HAMP domain of sensory rhodopsin II transducer from Natronomonas pharaonis
title_fullStr Molecular modeling of the HAMP domain of sensory rhodopsin II transducer from Natronomonas pharaonis
title_full_unstemmed Molecular modeling of the HAMP domain of sensory rhodopsin II transducer from Natronomonas pharaonis
title_short Molecular modeling of the HAMP domain of sensory rhodopsin II transducer from Natronomonas pharaonis
title_sort molecular modeling of the hamp domain of sensory rhodopsin ii transducer from natronomonas pharaonis
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5036668/
https://www.ncbi.nlm.nih.gov/pubmed/27857583
http://dx.doi.org/10.2142/biophysics.6.27
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