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Divide, conquer and reconstruct: How to solve the 3D structure of recalcitrant Micro-Exon Gene (MEG) protein from Schistosoma mansoni

Micro-Exon Genes are a widespread class of genes known for their high variability, widespread in the genome of parasitic trematodes such as Schistosoma mansoni. In this study, we present a strategy that allowed us to solve the structures of three alternatively spliced isoforms from the Schistoma man...

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Autores principales: Nedvedova, Stepanka, Guillière, Florence, Miele, Adriana Erica, Cantrelle, François-Xavier, Dvorak, Jan, Walker, Olivier, Hologne, Maggy
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10399815/
https://www.ncbi.nlm.nih.gov/pubmed/37535563
http://dx.doi.org/10.1371/journal.pone.0289444
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author Nedvedova, Stepanka
Guillière, Florence
Miele, Adriana Erica
Cantrelle, François-Xavier
Dvorak, Jan
Walker, Olivier
Hologne, Maggy
author_facet Nedvedova, Stepanka
Guillière, Florence
Miele, Adriana Erica
Cantrelle, François-Xavier
Dvorak, Jan
Walker, Olivier
Hologne, Maggy
author_sort Nedvedova, Stepanka
collection PubMed
description Micro-Exon Genes are a widespread class of genes known for their high variability, widespread in the genome of parasitic trematodes such as Schistosoma mansoni. In this study, we present a strategy that allowed us to solve the structures of three alternatively spliced isoforms from the Schistoma mansoni MEG 2.1 family for the first time. All isoforms are hydrophobic, intrinsically disordered, and recalcitrant to be expressed in high yield in heterologous hosts. We resorted to the chemical synthesis of shorter pieces, before reconstructing the entire sequence. Here, we show that isoform 1 partially folds in a-helix in the presence of trifluoroethanol while isoform 2 features two rigid elbows, that maintain the peptide as disordered, preventing any structuring. Finally, isoform 3 is dominated by the signal peptide, which folds into a-helix. We demonstrated that combining biophysical techniques, like circular dichroism and nuclear magnetic resonance at natural abundance, with in silico molecular dynamics simulation for isoform 1 only, was the key to solve the structure of MEG 2.1. Our results provide a crucial piece to the puzzle of this elusive and highly variable class of proteins.
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spelling pubmed-103998152023-08-04 Divide, conquer and reconstruct: How to solve the 3D structure of recalcitrant Micro-Exon Gene (MEG) protein from Schistosoma mansoni Nedvedova, Stepanka Guillière, Florence Miele, Adriana Erica Cantrelle, François-Xavier Dvorak, Jan Walker, Olivier Hologne, Maggy PLoS One Research Article Micro-Exon Genes are a widespread class of genes known for their high variability, widespread in the genome of parasitic trematodes such as Schistosoma mansoni. In this study, we present a strategy that allowed us to solve the structures of three alternatively spliced isoforms from the Schistoma mansoni MEG 2.1 family for the first time. All isoforms are hydrophobic, intrinsically disordered, and recalcitrant to be expressed in high yield in heterologous hosts. We resorted to the chemical synthesis of shorter pieces, before reconstructing the entire sequence. Here, we show that isoform 1 partially folds in a-helix in the presence of trifluoroethanol while isoform 2 features two rigid elbows, that maintain the peptide as disordered, preventing any structuring. Finally, isoform 3 is dominated by the signal peptide, which folds into a-helix. We demonstrated that combining biophysical techniques, like circular dichroism and nuclear magnetic resonance at natural abundance, with in silico molecular dynamics simulation for isoform 1 only, was the key to solve the structure of MEG 2.1. Our results provide a crucial piece to the puzzle of this elusive and highly variable class of proteins. Public Library of Science 2023-08-03 /pmc/articles/PMC10399815/ /pubmed/37535563 http://dx.doi.org/10.1371/journal.pone.0289444 Text en © 2023 Nedvedova et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Nedvedova, Stepanka
Guillière, Florence
Miele, Adriana Erica
Cantrelle, François-Xavier
Dvorak, Jan
Walker, Olivier
Hologne, Maggy
Divide, conquer and reconstruct: How to solve the 3D structure of recalcitrant Micro-Exon Gene (MEG) protein from Schistosoma mansoni
title Divide, conquer and reconstruct: How to solve the 3D structure of recalcitrant Micro-Exon Gene (MEG) protein from Schistosoma mansoni
title_full Divide, conquer and reconstruct: How to solve the 3D structure of recalcitrant Micro-Exon Gene (MEG) protein from Schistosoma mansoni
title_fullStr Divide, conquer and reconstruct: How to solve the 3D structure of recalcitrant Micro-Exon Gene (MEG) protein from Schistosoma mansoni
title_full_unstemmed Divide, conquer and reconstruct: How to solve the 3D structure of recalcitrant Micro-Exon Gene (MEG) protein from Schistosoma mansoni
title_short Divide, conquer and reconstruct: How to solve the 3D structure of recalcitrant Micro-Exon Gene (MEG) protein from Schistosoma mansoni
title_sort divide, conquer and reconstruct: how to solve the 3d structure of recalcitrant micro-exon gene (meg) protein from schistosoma mansoni
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10399815/
https://www.ncbi.nlm.nih.gov/pubmed/37535563
http://dx.doi.org/10.1371/journal.pone.0289444
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