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Conserved exchange of paralog proteins during neuronal differentiation

Gene duplication enables the emergence of new functions by lowering the evolutionary pressure that is posed on the ancestral genes. Previous studies have highlighted the role of specific paralog genes during cell differentiation, for example, in chromatin remodeling complexes. It remains unexplored...

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Autores principales: Di Fraia, Domenico, Anitei, Mihaela, Mackmull, Marie-Therese, Parca, Luca, Behrendt, Laura, Andres-Pons, Amparo, Gilmour, Darren, Helmer Citterich, Manuela, Kaether, Christoph, Beck, Martin, Ori‬‬, Alessandro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Life Science Alliance LLC 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8917807/
https://www.ncbi.nlm.nih.gov/pubmed/35273078
http://dx.doi.org/10.26508/lsa.202201397
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author Di Fraia, Domenico
Anitei, Mihaela
Mackmull, Marie-Therese
Parca, Luca
Behrendt, Laura
Andres-Pons, Amparo
Gilmour, Darren
Helmer Citterich, Manuela
Kaether, Christoph
Beck, Martin
Ori‬‬, Alessandro
author_facet Di Fraia, Domenico
Anitei, Mihaela
Mackmull, Marie-Therese
Parca, Luca
Behrendt, Laura
Andres-Pons, Amparo
Gilmour, Darren
Helmer Citterich, Manuela
Kaether, Christoph
Beck, Martin
Ori‬‬, Alessandro
author_sort Di Fraia, Domenico
collection PubMed
description Gene duplication enables the emergence of new functions by lowering the evolutionary pressure that is posed on the ancestral genes. Previous studies have highlighted the role of specific paralog genes during cell differentiation, for example, in chromatin remodeling complexes. It remains unexplored whether similar mechanisms extend to other biological functions and whether the regulation of paralog genes is conserved across species. Here, we analyze the expression of paralogs across human tissues, during development and neuronal differentiation in fish, rodents and humans. Whereas ∼80% of paralog genes are co-regulated, a subset of paralogs shows divergent expression profiles, contributing to variability of protein complexes. We identify 78 substitutions of paralog pairs that occur during neuronal differentiation and are conserved across species. Among these, we highlight a substitution between the paralogs SEC23A and SEC23B members of the COPII complex. Altering the ratio between these two genes via RNAi-mediated knockdown is sufficient to influence neuron differentiation. We propose that remodeling of the vesicular transport system via paralog substitutions is an evolutionary conserved mechanism enabling neuronal differentiation.
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spelling pubmed-89178072022-03-28 Conserved exchange of paralog proteins during neuronal differentiation Di Fraia, Domenico Anitei, Mihaela Mackmull, Marie-Therese Parca, Luca Behrendt, Laura Andres-Pons, Amparo Gilmour, Darren Helmer Citterich, Manuela Kaether, Christoph Beck, Martin Ori‬‬, Alessandro Life Sci Alliance Research Articles Gene duplication enables the emergence of new functions by lowering the evolutionary pressure that is posed on the ancestral genes. Previous studies have highlighted the role of specific paralog genes during cell differentiation, for example, in chromatin remodeling complexes. It remains unexplored whether similar mechanisms extend to other biological functions and whether the regulation of paralog genes is conserved across species. Here, we analyze the expression of paralogs across human tissues, during development and neuronal differentiation in fish, rodents and humans. Whereas ∼80% of paralog genes are co-regulated, a subset of paralogs shows divergent expression profiles, contributing to variability of protein complexes. We identify 78 substitutions of paralog pairs that occur during neuronal differentiation and are conserved across species. Among these, we highlight a substitution between the paralogs SEC23A and SEC23B members of the COPII complex. Altering the ratio between these two genes via RNAi-mediated knockdown is sufficient to influence neuron differentiation. We propose that remodeling of the vesicular transport system via paralog substitutions is an evolutionary conserved mechanism enabling neuronal differentiation. Life Science Alliance LLC 2022-03-10 /pmc/articles/PMC8917807/ /pubmed/35273078 http://dx.doi.org/10.26508/lsa.202201397 Text en © 2022 Di Fraia et al. https://creativecommons.org/licenses/by/4.0/This article is available under a Creative Commons License (Attribution 4.0 International, as described at https://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Articles
Di Fraia, Domenico
Anitei, Mihaela
Mackmull, Marie-Therese
Parca, Luca
Behrendt, Laura
Andres-Pons, Amparo
Gilmour, Darren
Helmer Citterich, Manuela
Kaether, Christoph
Beck, Martin
Ori‬‬, Alessandro
Conserved exchange of paralog proteins during neuronal differentiation
title Conserved exchange of paralog proteins during neuronal differentiation
title_full Conserved exchange of paralog proteins during neuronal differentiation
title_fullStr Conserved exchange of paralog proteins during neuronal differentiation
title_full_unstemmed Conserved exchange of paralog proteins during neuronal differentiation
title_short Conserved exchange of paralog proteins during neuronal differentiation
title_sort conserved exchange of paralog proteins during neuronal differentiation
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8917807/
https://www.ncbi.nlm.nih.gov/pubmed/35273078
http://dx.doi.org/10.26508/lsa.202201397
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