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KCNQ1 subdomains involved in KCNE modulation revealed by an invertebrate KCNQ1 orthologue

KCNQ1 channels are voltage-gated potassium channels that are widely expressed in various non-neuronal tissues, such as the heart, pancreas, and intestine. KCNE proteins are known as the auxiliary subunits for KCNQ1 channels. The effects and functions of the different KCNE proteins on KCNQ1 modulatio...

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Autores principales: Nakajo, Koichi, Nishino, Atsuo, Okamura, Yasushi, Kubo, Yoshihiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3206303/
https://www.ncbi.nlm.nih.gov/pubmed/22042987
http://dx.doi.org/10.1085/jgp.201110677
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author Nakajo, Koichi
Nishino, Atsuo
Okamura, Yasushi
Kubo, Yoshihiro
author_facet Nakajo, Koichi
Nishino, Atsuo
Okamura, Yasushi
Kubo, Yoshihiro
author_sort Nakajo, Koichi
collection PubMed
description KCNQ1 channels are voltage-gated potassium channels that are widely expressed in various non-neuronal tissues, such as the heart, pancreas, and intestine. KCNE proteins are known as the auxiliary subunits for KCNQ1 channels. The effects and functions of the different KCNE proteins on KCNQ1 modulation are various; the KCNQ1–KCNE1 ion channel complex produces a slowly activating potassium channel that is crucial for heartbeat regulation, while the KCNE3 protein makes KCNQ1 channels constitutively active, which is important for K(+) and Cl(−) transport in the intestine. The mechanisms by which KCNE proteins modulate KCNQ1 channels have long been studied and discussed; however, it is not well understood how different KCNE proteins exert considerably different effects on KCNQ1 channels. Here, we approached this point by taking advantage of the recently isolated Ci-KCNQ1, a KCNQ1 homologue from marine invertebrate Ciona intestinalis. We found that Ci-KCNQ1 alone could be expressed in Xenopus laevis oocytes and produced a voltage-dependent potassium current, but that Ci-KCNQ1 was not properly modulated by KCNE1 and totally unaffected by coexpression of KCNE3. By making chimeras of Ci-KCNQ1 and human KCNQ1, we determined several amino acid residues located in the pore region of human KCNQ1 involved in KCNE1 modulation. Interestingly, though, these amino acid residues of the pore region are not important for KCNE3 modulation, and we subsequently found that the S1 segment plays an important role in making KCNQ1 channels constitutively active by KCNE3. Our findings indicate that different KCNE proteins use different domains of KCNQ1 channels, and that may explain why different KCNE proteins give quite different outcomes by forming a complex with KCNQ1 channels.
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spelling pubmed-32063032012-05-01 KCNQ1 subdomains involved in KCNE modulation revealed by an invertebrate KCNQ1 orthologue Nakajo, Koichi Nishino, Atsuo Okamura, Yasushi Kubo, Yoshihiro J Gen Physiol Article KCNQ1 channels are voltage-gated potassium channels that are widely expressed in various non-neuronal tissues, such as the heart, pancreas, and intestine. KCNE proteins are known as the auxiliary subunits for KCNQ1 channels. The effects and functions of the different KCNE proteins on KCNQ1 modulation are various; the KCNQ1–KCNE1 ion channel complex produces a slowly activating potassium channel that is crucial for heartbeat regulation, while the KCNE3 protein makes KCNQ1 channels constitutively active, which is important for K(+) and Cl(−) transport in the intestine. The mechanisms by which KCNE proteins modulate KCNQ1 channels have long been studied and discussed; however, it is not well understood how different KCNE proteins exert considerably different effects on KCNQ1 channels. Here, we approached this point by taking advantage of the recently isolated Ci-KCNQ1, a KCNQ1 homologue from marine invertebrate Ciona intestinalis. We found that Ci-KCNQ1 alone could be expressed in Xenopus laevis oocytes and produced a voltage-dependent potassium current, but that Ci-KCNQ1 was not properly modulated by KCNE1 and totally unaffected by coexpression of KCNE3. By making chimeras of Ci-KCNQ1 and human KCNQ1, we determined several amino acid residues located in the pore region of human KCNQ1 involved in KCNE1 modulation. Interestingly, though, these amino acid residues of the pore region are not important for KCNE3 modulation, and we subsequently found that the S1 segment plays an important role in making KCNQ1 channels constitutively active by KCNE3. Our findings indicate that different KCNE proteins use different domains of KCNQ1 channels, and that may explain why different KCNE proteins give quite different outcomes by forming a complex with KCNQ1 channels. The Rockefeller University Press 2011-11 /pmc/articles/PMC3206303/ /pubmed/22042987 http://dx.doi.org/10.1085/jgp.201110677 Text en © 2011 Nakajo et al. This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 3.0 Unported license, as described at http://creativecommons.org/licenses/by-nc-sa/3.0/).
spellingShingle Article
Nakajo, Koichi
Nishino, Atsuo
Okamura, Yasushi
Kubo, Yoshihiro
KCNQ1 subdomains involved in KCNE modulation revealed by an invertebrate KCNQ1 orthologue
title KCNQ1 subdomains involved in KCNE modulation revealed by an invertebrate KCNQ1 orthologue
title_full KCNQ1 subdomains involved in KCNE modulation revealed by an invertebrate KCNQ1 orthologue
title_fullStr KCNQ1 subdomains involved in KCNE modulation revealed by an invertebrate KCNQ1 orthologue
title_full_unstemmed KCNQ1 subdomains involved in KCNE modulation revealed by an invertebrate KCNQ1 orthologue
title_short KCNQ1 subdomains involved in KCNE modulation revealed by an invertebrate KCNQ1 orthologue
title_sort kcnq1 subdomains involved in kcne modulation revealed by an invertebrate kcnq1 orthologue
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3206303/
https://www.ncbi.nlm.nih.gov/pubmed/22042987
http://dx.doi.org/10.1085/jgp.201110677
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