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The Modular Architecture of Metallothioneins Facilitates Domain Rearrangements and Contributes to Their Evolvability in Metal-Accumulating Mollusks

Protein domains are independent structural and functional modules that can rearrange to create new proteins. While the evolution of multidomain proteins through the shuffling of different preexisting domains has been well documented, the evolution of domain repeat proteins and the origin of new doma...

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Autores principales: Calatayud, Sara, Garcia-Risco, Mario, Pedrini-Martha, Veronika, Niederwanger, Michael, Dallinger, Reinhard, Palacios, Òscar, Capdevila, Mercè, Albalat, Ricard
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9781358/
https://www.ncbi.nlm.nih.gov/pubmed/36555472
http://dx.doi.org/10.3390/ijms232415824
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author Calatayud, Sara
Garcia-Risco, Mario
Pedrini-Martha, Veronika
Niederwanger, Michael
Dallinger, Reinhard
Palacios, Òscar
Capdevila, Mercè
Albalat, Ricard
author_facet Calatayud, Sara
Garcia-Risco, Mario
Pedrini-Martha, Veronika
Niederwanger, Michael
Dallinger, Reinhard
Palacios, Òscar
Capdevila, Mercè
Albalat, Ricard
author_sort Calatayud, Sara
collection PubMed
description Protein domains are independent structural and functional modules that can rearrange to create new proteins. While the evolution of multidomain proteins through the shuffling of different preexisting domains has been well documented, the evolution of domain repeat proteins and the origin of new domains are less understood. Metallothioneins (MTs) provide a good case study considering that they consist of metal-binding domain repeats, some of them with a likely de novo origin. In mollusks, for instance, most MTs are bidomain proteins that arose by lineage-specific rearrangements between six putative domains: α, β1, β2, β3, γ and δ. Some domains have been characterized in bivalves and gastropods, but nothing is known about the MTs and their domains of other Mollusca classes. To fill this gap, we investigated the metal-binding features of NpoMT1 of Nautilus pompilius (Cephalopoda class) and FcaMT1 of Falcidens caudatus (Caudofoveata class). Interestingly, whereas NpoMT1 consists of α and β1 domains and has a prototypical Cd(2+) preference, FcaMT1 has a singular preference for Zn(2+) ions and a distinct domain composition, including a new Caudofoveata-specific δ domain. Overall, our results suggest that the modular architecture of MTs has contributed to MT evolution during mollusk diversification, and exemplify how modularity increases MT evolvability.
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spelling pubmed-97813582022-12-24 The Modular Architecture of Metallothioneins Facilitates Domain Rearrangements and Contributes to Their Evolvability in Metal-Accumulating Mollusks Calatayud, Sara Garcia-Risco, Mario Pedrini-Martha, Veronika Niederwanger, Michael Dallinger, Reinhard Palacios, Òscar Capdevila, Mercè Albalat, Ricard Int J Mol Sci Article Protein domains are independent structural and functional modules that can rearrange to create new proteins. While the evolution of multidomain proteins through the shuffling of different preexisting domains has been well documented, the evolution of domain repeat proteins and the origin of new domains are less understood. Metallothioneins (MTs) provide a good case study considering that they consist of metal-binding domain repeats, some of them with a likely de novo origin. In mollusks, for instance, most MTs are bidomain proteins that arose by lineage-specific rearrangements between six putative domains: α, β1, β2, β3, γ and δ. Some domains have been characterized in bivalves and gastropods, but nothing is known about the MTs and their domains of other Mollusca classes. To fill this gap, we investigated the metal-binding features of NpoMT1 of Nautilus pompilius (Cephalopoda class) and FcaMT1 of Falcidens caudatus (Caudofoveata class). Interestingly, whereas NpoMT1 consists of α and β1 domains and has a prototypical Cd(2+) preference, FcaMT1 has a singular preference for Zn(2+) ions and a distinct domain composition, including a new Caudofoveata-specific δ domain. Overall, our results suggest that the modular architecture of MTs has contributed to MT evolution during mollusk diversification, and exemplify how modularity increases MT evolvability. MDPI 2022-12-13 /pmc/articles/PMC9781358/ /pubmed/36555472 http://dx.doi.org/10.3390/ijms232415824 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Calatayud, Sara
Garcia-Risco, Mario
Pedrini-Martha, Veronika
Niederwanger, Michael
Dallinger, Reinhard
Palacios, Òscar
Capdevila, Mercè
Albalat, Ricard
The Modular Architecture of Metallothioneins Facilitates Domain Rearrangements and Contributes to Their Evolvability in Metal-Accumulating Mollusks
title The Modular Architecture of Metallothioneins Facilitates Domain Rearrangements and Contributes to Their Evolvability in Metal-Accumulating Mollusks
title_full The Modular Architecture of Metallothioneins Facilitates Domain Rearrangements and Contributes to Their Evolvability in Metal-Accumulating Mollusks
title_fullStr The Modular Architecture of Metallothioneins Facilitates Domain Rearrangements and Contributes to Their Evolvability in Metal-Accumulating Mollusks
title_full_unstemmed The Modular Architecture of Metallothioneins Facilitates Domain Rearrangements and Contributes to Their Evolvability in Metal-Accumulating Mollusks
title_short The Modular Architecture of Metallothioneins Facilitates Domain Rearrangements and Contributes to Their Evolvability in Metal-Accumulating Mollusks
title_sort modular architecture of metallothioneins facilitates domain rearrangements and contributes to their evolvability in metal-accumulating mollusks
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9781358/
https://www.ncbi.nlm.nih.gov/pubmed/36555472
http://dx.doi.org/10.3390/ijms232415824
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