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Large Conductance Ca(2+)-Activated K(+) Channel (BK(Ca)) α-Subunit Splice Variants in Resistance Arteries from Rat Cerebral and Skeletal Muscle Vasculature
Previous studies report functional differences in large conductance Ca(2+) activated-K(+) channels (BK(Ca)) of smooth muscle cells (VSMC) from rat cerebral and cremaster muscle resistance arteries. The present studies aimed to determine if this complexity in BK(Ca) activity may, in part, be due to s...
Autores principales: | , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Public Library of Science
2014
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4055454/ https://www.ncbi.nlm.nih.gov/pubmed/24921651 http://dx.doi.org/10.1371/journal.pone.0098863 |
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author | Nourian, Zahra Li, Min Leo, M. Dennis Jaggar, Jonathan H. Braun, Andrew P. Hill, Michael A. |
author_facet | Nourian, Zahra Li, Min Leo, M. Dennis Jaggar, Jonathan H. Braun, Andrew P. Hill, Michael A. |
author_sort | Nourian, Zahra |
collection | PubMed |
description | Previous studies report functional differences in large conductance Ca(2+) activated-K(+) channels (BK(Ca)) of smooth muscle cells (VSMC) from rat cerebral and cremaster muscle resistance arteries. The present studies aimed to determine if this complexity in BK(Ca) activity may, in part, be due to splice variants in the pore-forming α-subunit. BK(Ca) variants in the intracellular C terminus of the α-subunit, and their relative expression to total α-subunit, were examined by qPCR. Sequencing of RT-PCR products showed two α-subunit variants, ZERO and STREX, to be identical in cremaster and cerebral arteries. Levels of STREX mRNA expression were, however, significantly higher in cremaster VSMCs (28.9±4.2% of total α-BK(Ca)) compared with cerebral vessels (16.5±0.9%). Further, a low level of BK(Ca) SS4 α-subunit variant was seen in cerebral arteries, while undetectable in cremaster arteries. Protein biotinylation assays, in expression systems and arterial preparations, were used to determine whether differences in splice variant mRNA expression affect surface membrane/cytosolic location of the channel. In AD-293 and CHO-K1 cells, rat STREX was more likely to be located at the plasma membrane compared to ZERO, although the great majority of channel protein was in the membrane in both cases. Co-expression of β1-BK(Ca) subunit with STREX or ZERO did not influence the dominant membrane expression of α-BK(Ca) subunits, whereas in the absence of α-BK(Ca), a significant proportion of β1-subunit remained cytosolic. Biotinylation assays of cremaster and cerebral arteries showed that differences in STREX/ZERO expression do not alter membrane/cytosolic distribution of the channel under basal conditions. These data, however, revealed that the amount of α-BK(Ca) in cerebral arteries is approximately 20X higher than in cremaster vessels. Thus, the data support the major functional differences in BK(Ca) activity in cremaster, as compared to cerebral VSMCs, being related to total α-BK(Ca) expression, regardless of differences in splice variant expression. |
format | Online Article Text |
id | pubmed-4055454 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2014 |
publisher | Public Library of Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-40554542014-06-18 Large Conductance Ca(2+)-Activated K(+) Channel (BK(Ca)) α-Subunit Splice Variants in Resistance Arteries from Rat Cerebral and Skeletal Muscle Vasculature Nourian, Zahra Li, Min Leo, M. Dennis Jaggar, Jonathan H. Braun, Andrew P. Hill, Michael A. PLoS One Research Article Previous studies report functional differences in large conductance Ca(2+) activated-K(+) channels (BK(Ca)) of smooth muscle cells (VSMC) from rat cerebral and cremaster muscle resistance arteries. The present studies aimed to determine if this complexity in BK(Ca) activity may, in part, be due to splice variants in the pore-forming α-subunit. BK(Ca) variants in the intracellular C terminus of the α-subunit, and their relative expression to total α-subunit, were examined by qPCR. Sequencing of RT-PCR products showed two α-subunit variants, ZERO and STREX, to be identical in cremaster and cerebral arteries. Levels of STREX mRNA expression were, however, significantly higher in cremaster VSMCs (28.9±4.2% of total α-BK(Ca)) compared with cerebral vessels (16.5±0.9%). Further, a low level of BK(Ca) SS4 α-subunit variant was seen in cerebral arteries, while undetectable in cremaster arteries. Protein biotinylation assays, in expression systems and arterial preparations, were used to determine whether differences in splice variant mRNA expression affect surface membrane/cytosolic location of the channel. In AD-293 and CHO-K1 cells, rat STREX was more likely to be located at the plasma membrane compared to ZERO, although the great majority of channel protein was in the membrane in both cases. Co-expression of β1-BK(Ca) subunit with STREX or ZERO did not influence the dominant membrane expression of α-BK(Ca) subunits, whereas in the absence of α-BK(Ca), a significant proportion of β1-subunit remained cytosolic. Biotinylation assays of cremaster and cerebral arteries showed that differences in STREX/ZERO expression do not alter membrane/cytosolic distribution of the channel under basal conditions. These data, however, revealed that the amount of α-BK(Ca) in cerebral arteries is approximately 20X higher than in cremaster vessels. Thus, the data support the major functional differences in BK(Ca) activity in cremaster, as compared to cerebral VSMCs, being related to total α-BK(Ca) expression, regardless of differences in splice variant expression. Public Library of Science 2014-06-12 /pmc/articles/PMC4055454/ /pubmed/24921651 http://dx.doi.org/10.1371/journal.pone.0098863 Text en © 2014 Nourian et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited. |
spellingShingle | Research Article Nourian, Zahra Li, Min Leo, M. Dennis Jaggar, Jonathan H. Braun, Andrew P. Hill, Michael A. Large Conductance Ca(2+)-Activated K(+) Channel (BK(Ca)) α-Subunit Splice Variants in Resistance Arteries from Rat Cerebral and Skeletal Muscle Vasculature |
title | Large Conductance Ca(2+)-Activated K(+) Channel (BK(Ca)) α-Subunit Splice Variants in Resistance Arteries from Rat Cerebral and Skeletal Muscle Vasculature |
title_full | Large Conductance Ca(2+)-Activated K(+) Channel (BK(Ca)) α-Subunit Splice Variants in Resistance Arteries from Rat Cerebral and Skeletal Muscle Vasculature |
title_fullStr | Large Conductance Ca(2+)-Activated K(+) Channel (BK(Ca)) α-Subunit Splice Variants in Resistance Arteries from Rat Cerebral and Skeletal Muscle Vasculature |
title_full_unstemmed | Large Conductance Ca(2+)-Activated K(+) Channel (BK(Ca)) α-Subunit Splice Variants in Resistance Arteries from Rat Cerebral and Skeletal Muscle Vasculature |
title_short | Large Conductance Ca(2+)-Activated K(+) Channel (BK(Ca)) α-Subunit Splice Variants in Resistance Arteries from Rat Cerebral and Skeletal Muscle Vasculature |
title_sort | large conductance ca(2+)-activated k(+) channel (bk(ca)) α-subunit splice variants in resistance arteries from rat cerebral and skeletal muscle vasculature |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4055454/ https://www.ncbi.nlm.nih.gov/pubmed/24921651 http://dx.doi.org/10.1371/journal.pone.0098863 |
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