Tissue-specific isoforms of the single C. elegans Ryanodine receptor gene unc-68 control specific functions.
Ryanodine receptors (RyR) are essential regulators of cellular calcium homeostasis and signaling. Vertebrate genomes contain multiple RyR gene isoforms, expressed in different tissues and executing different functions. In contrast, invertebrate genomes contain a single RyR-encoding gene and it has l...
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Online Access: | https://doi.org/10.1371/journal.pgen.1009102 |
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doaj-d05b23d9ef8440bcbd92d02c358da3212021-04-21T14:36:21ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042020-10-011610e100910210.1371/journal.pgen.1009102Tissue-specific isoforms of the single C. elegans Ryanodine receptor gene unc-68 control specific functions.Filipe MarquesSaurabh ThapliyalAvelino JaverPriyanka ShresthaAndré E X BrownDominique A GlauserRyanodine receptors (RyR) are essential regulators of cellular calcium homeostasis and signaling. Vertebrate genomes contain multiple RyR gene isoforms, expressed in different tissues and executing different functions. In contrast, invertebrate genomes contain a single RyR-encoding gene and it has long been proposed that different transcripts generated by alternative splicing may diversify their functions. Here, we analyze the expression and function of alternative exons in the C. elegans RyR gene unc-68. We show that specific isoform subsets are created via alternative promoters and via alternative splicing in unc-68 Divergent Region 2 (DR2), which actually corresponds to a region of high sequence variability across vertebrate isoforms. The expression of specific unc-68 alternative exons is enriched in different tissues, such as in body wall muscle, neurons and pharyngeal muscle. In order to infer the function of specific alternative promoters and alternative exons of unc-68, we selectively deleted them by CRISPR/Cas9 genome editing. We evaluated pharyngeal function, as well as locomotor function in swimming and crawling with high-content computer-assisted postural and behavioral analysis. Our data provide a comprehensive map of the pleiotropic impact of isoform-specific mutations and highlight that tissue-specific unc-68 isoforms fulfill distinct functions. As a whole, our work clarifies how the C. elegans single RyR gene unc-68 can fulfill multiple tasks through tissue-specific isoforms, and provide a solid foundation to further develop C. elegans as a model to study RyR channel functions and malfunctions.https://doi.org/10.1371/journal.pgen.1009102 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Filipe Marques Saurabh Thapliyal Avelino Javer Priyanka Shrestha André E X Brown Dominique A Glauser |
spellingShingle |
Filipe Marques Saurabh Thapliyal Avelino Javer Priyanka Shrestha André E X Brown Dominique A Glauser Tissue-specific isoforms of the single C. elegans Ryanodine receptor gene unc-68 control specific functions. PLoS Genetics |
author_facet |
Filipe Marques Saurabh Thapliyal Avelino Javer Priyanka Shrestha André E X Brown Dominique A Glauser |
author_sort |
Filipe Marques |
title |
Tissue-specific isoforms of the single C. elegans Ryanodine receptor gene unc-68 control specific functions. |
title_short |
Tissue-specific isoforms of the single C. elegans Ryanodine receptor gene unc-68 control specific functions. |
title_full |
Tissue-specific isoforms of the single C. elegans Ryanodine receptor gene unc-68 control specific functions. |
title_fullStr |
Tissue-specific isoforms of the single C. elegans Ryanodine receptor gene unc-68 control specific functions. |
title_full_unstemmed |
Tissue-specific isoforms of the single C. elegans Ryanodine receptor gene unc-68 control specific functions. |
title_sort |
tissue-specific isoforms of the single c. elegans ryanodine receptor gene unc-68 control specific functions. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS Genetics |
issn |
1553-7390 1553-7404 |
publishDate |
2020-10-01 |
description |
Ryanodine receptors (RyR) are essential regulators of cellular calcium homeostasis and signaling. Vertebrate genomes contain multiple RyR gene isoforms, expressed in different tissues and executing different functions. In contrast, invertebrate genomes contain a single RyR-encoding gene and it has long been proposed that different transcripts generated by alternative splicing may diversify their functions. Here, we analyze the expression and function of alternative exons in the C. elegans RyR gene unc-68. We show that specific isoform subsets are created via alternative promoters and via alternative splicing in unc-68 Divergent Region 2 (DR2), which actually corresponds to a region of high sequence variability across vertebrate isoforms. The expression of specific unc-68 alternative exons is enriched in different tissues, such as in body wall muscle, neurons and pharyngeal muscle. In order to infer the function of specific alternative promoters and alternative exons of unc-68, we selectively deleted them by CRISPR/Cas9 genome editing. We evaluated pharyngeal function, as well as locomotor function in swimming and crawling with high-content computer-assisted postural and behavioral analysis. Our data provide a comprehensive map of the pleiotropic impact of isoform-specific mutations and highlight that tissue-specific unc-68 isoforms fulfill distinct functions. As a whole, our work clarifies how the C. elegans single RyR gene unc-68 can fulfill multiple tasks through tissue-specific isoforms, and provide a solid foundation to further develop C. elegans as a model to study RyR channel functions and malfunctions. |
url |
https://doi.org/10.1371/journal.pgen.1009102 |
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