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Structural Investigation of the Transmembrane Domain of KCNE1 in Proteoliposomes

[Image: see text] KCNE1 is a single-transmembrane protein of the KCNE family that modulates the function of voltage-gated potassium channels, including KCNQ1. Hereditary mutations in KCNE1 have been linked to diseases such as long QT syndrome (LQTS), atrial fibrillation, sudden infant death syndrome...

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Autores principales: Sahu, Indra D., Kroncke, Brett M., Zhang, Rongfu, Dunagan, Megan M., Smith, Hubbell J., Craig, Andrew, McCarrick, Robert M., Sanders, Charles R., Lorigan, Gary A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4196734/
https://www.ncbi.nlm.nih.gov/pubmed/25234231
http://dx.doi.org/10.1021/bi500943p
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author Sahu, Indra D.
Kroncke, Brett M.
Zhang, Rongfu
Dunagan, Megan M.
Smith, Hubbell J.
Craig, Andrew
McCarrick, Robert M.
Sanders, Charles R.
Lorigan, Gary A.
author_facet Sahu, Indra D.
Kroncke, Brett M.
Zhang, Rongfu
Dunagan, Megan M.
Smith, Hubbell J.
Craig, Andrew
McCarrick, Robert M.
Sanders, Charles R.
Lorigan, Gary A.
author_sort Sahu, Indra D.
collection PubMed
description [Image: see text] KCNE1 is a single-transmembrane protein of the KCNE family that modulates the function of voltage-gated potassium channels, including KCNQ1. Hereditary mutations in KCNE1 have been linked to diseases such as long QT syndrome (LQTS), atrial fibrillation, sudden infant death syndrome, and deafness. The transmembrane domain (TMD) of KCNE1 plays a key role in mediating the physical association with KCNQ1 and in subsequent modulation of channel gating kinetics and conductance. However, the mechanisms associated with these roles for the TMD remain poorly understood, highlighting a need for experimental structural studies. A previous solution NMR study of KCNE1 in LMPG micelles revealed a curved transmembrane domain, a structural feature proposed to be critical to KCNE1 function. However, this curvature potentially reflects an artifact of working in detergent micelles. Double electron electron resonance (DEER) measurements were conducted on KCNE1 in LMPG micelles, POPC/POPG proteoliposomes, and POPC/POPG lipodisq nanoparticles to directly compare the structure of the TMD in a variety of different membrane environments. Experimentally derived DEER distances coupled with simulated annealing molecular dynamic simulations were used to probe the bilayer structure of the TMD of KCNE1. The results indicate that the structure is helical in proteoliposomes and is slightly curved, which is consistent with the previously determined solution NMR structure in micelles. The evident resilience of the curvature in the KCNE1 TMD leads us to hypothesize that the curvature is likely to be maintained upon binding of the protein to the KCNQ1 channel.
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spelling pubmed-41967342015-09-18 Structural Investigation of the Transmembrane Domain of KCNE1 in Proteoliposomes Sahu, Indra D. Kroncke, Brett M. Zhang, Rongfu Dunagan, Megan M. Smith, Hubbell J. Craig, Andrew McCarrick, Robert M. Sanders, Charles R. Lorigan, Gary A. Biochemistry [Image: see text] KCNE1 is a single-transmembrane protein of the KCNE family that modulates the function of voltage-gated potassium channels, including KCNQ1. Hereditary mutations in KCNE1 have been linked to diseases such as long QT syndrome (LQTS), atrial fibrillation, sudden infant death syndrome, and deafness. The transmembrane domain (TMD) of KCNE1 plays a key role in mediating the physical association with KCNQ1 and in subsequent modulation of channel gating kinetics and conductance. However, the mechanisms associated with these roles for the TMD remain poorly understood, highlighting a need for experimental structural studies. A previous solution NMR study of KCNE1 in LMPG micelles revealed a curved transmembrane domain, a structural feature proposed to be critical to KCNE1 function. However, this curvature potentially reflects an artifact of working in detergent micelles. Double electron electron resonance (DEER) measurements were conducted on KCNE1 in LMPG micelles, POPC/POPG proteoliposomes, and POPC/POPG lipodisq nanoparticles to directly compare the structure of the TMD in a variety of different membrane environments. Experimentally derived DEER distances coupled with simulated annealing molecular dynamic simulations were used to probe the bilayer structure of the TMD of KCNE1. The results indicate that the structure is helical in proteoliposomes and is slightly curved, which is consistent with the previously determined solution NMR structure in micelles. The evident resilience of the curvature in the KCNE1 TMD leads us to hypothesize that the curvature is likely to be maintained upon binding of the protein to the KCNQ1 channel. American Chemical Society 2014-09-18 2014-10-14 /pmc/articles/PMC4196734/ /pubmed/25234231 http://dx.doi.org/10.1021/bi500943p Text en Copyright © 2014 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html)
spellingShingle Sahu, Indra D.
Kroncke, Brett M.
Zhang, Rongfu
Dunagan, Megan M.
Smith, Hubbell J.
Craig, Andrew
McCarrick, Robert M.
Sanders, Charles R.
Lorigan, Gary A.
Structural Investigation of the Transmembrane Domain of KCNE1 in Proteoliposomes
title Structural Investigation of the Transmembrane Domain of KCNE1 in Proteoliposomes
title_full Structural Investigation of the Transmembrane Domain of KCNE1 in Proteoliposomes
title_fullStr Structural Investigation of the Transmembrane Domain of KCNE1 in Proteoliposomes
title_full_unstemmed Structural Investigation of the Transmembrane Domain of KCNE1 in Proteoliposomes
title_short Structural Investigation of the Transmembrane Domain of KCNE1 in Proteoliposomes
title_sort structural investigation of the transmembrane domain of kcne1 in proteoliposomes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4196734/
https://www.ncbi.nlm.nih.gov/pubmed/25234231
http://dx.doi.org/10.1021/bi500943p
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