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Functional Mapping of Human Dynamin-1-Like GTPase Domain Based on X-ray Structure Analyses

Human dynamin-1-like protein (DNM1L) is a GTP-driven molecular machine that segregates mitochondria and peroxisomes. To obtain insights into its catalytic mechanism, we determined crystal structures of a construct comprising the GTPase domain and the bundle signaling element (BSE) in the nucleotide-...

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Autores principales: Wenger, Julia, Klinglmayr, Eva, Fröhlich, Chris, Eibl, Clarissa, Gimeno, Ana, Hessenberger, Manuel, Puehringer, Sandra, Daumke, Oliver, Goettig, Peter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3747075/
https://www.ncbi.nlm.nih.gov/pubmed/23977156
http://dx.doi.org/10.1371/journal.pone.0071835
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author Wenger, Julia
Klinglmayr, Eva
Fröhlich, Chris
Eibl, Clarissa
Gimeno, Ana
Hessenberger, Manuel
Puehringer, Sandra
Daumke, Oliver
Goettig, Peter
author_facet Wenger, Julia
Klinglmayr, Eva
Fröhlich, Chris
Eibl, Clarissa
Gimeno, Ana
Hessenberger, Manuel
Puehringer, Sandra
Daumke, Oliver
Goettig, Peter
author_sort Wenger, Julia
collection PubMed
description Human dynamin-1-like protein (DNM1L) is a GTP-driven molecular machine that segregates mitochondria and peroxisomes. To obtain insights into its catalytic mechanism, we determined crystal structures of a construct comprising the GTPase domain and the bundle signaling element (BSE) in the nucleotide-free and GTP-analogue-bound states. The GTPase domain of DNM1L is structurally related to that of dynamin and binds the nucleotide 5′-Guanylyl-imidodiphosphate (GMP-PNP) via five highly conserved motifs, whereas the BSE folds into a pocket at the opposite side. Based on these structures, the GTPase center was systematically mapped by alanine mutagenesis and kinetic measurements. Thus, residues essential for the GTPase reaction were characterized, among them Lys38, Ser39 and Ser40 in the phosphate binding loop, Thr59 from switch I, Asp146 and Gly149 from switch II, Lys216 and Asp218 in the G4 element, as well as Asn246 in the G5 element. Also, mutated Glu81 and Glu82 in the unique 16-residue insertion of DNM1L influence the activity significantly. Mutations of Gln34, Ser35, and Asp190 in the predicted assembly interface interfered with dimerization of the GTPase domain induced by a transition state analogue and led to a loss of the lipid-stimulated GTPase activity. Our data point to related catalytic mechanisms of DNM1L and dynamin involving dimerization of their GTPase domains.
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spelling pubmed-37470752013-08-23 Functional Mapping of Human Dynamin-1-Like GTPase Domain Based on X-ray Structure Analyses Wenger, Julia Klinglmayr, Eva Fröhlich, Chris Eibl, Clarissa Gimeno, Ana Hessenberger, Manuel Puehringer, Sandra Daumke, Oliver Goettig, Peter PLoS One Research Article Human dynamin-1-like protein (DNM1L) is a GTP-driven molecular machine that segregates mitochondria and peroxisomes. To obtain insights into its catalytic mechanism, we determined crystal structures of a construct comprising the GTPase domain and the bundle signaling element (BSE) in the nucleotide-free and GTP-analogue-bound states. The GTPase domain of DNM1L is structurally related to that of dynamin and binds the nucleotide 5′-Guanylyl-imidodiphosphate (GMP-PNP) via five highly conserved motifs, whereas the BSE folds into a pocket at the opposite side. Based on these structures, the GTPase center was systematically mapped by alanine mutagenesis and kinetic measurements. Thus, residues essential for the GTPase reaction were characterized, among them Lys38, Ser39 and Ser40 in the phosphate binding loop, Thr59 from switch I, Asp146 and Gly149 from switch II, Lys216 and Asp218 in the G4 element, as well as Asn246 in the G5 element. Also, mutated Glu81 and Glu82 in the unique 16-residue insertion of DNM1L influence the activity significantly. Mutations of Gln34, Ser35, and Asp190 in the predicted assembly interface interfered with dimerization of the GTPase domain induced by a transition state analogue and led to a loss of the lipid-stimulated GTPase activity. Our data point to related catalytic mechanisms of DNM1L and dynamin involving dimerization of their GTPase domains. Public Library of Science 2013-08-19 /pmc/articles/PMC3747075/ /pubmed/23977156 http://dx.doi.org/10.1371/journal.pone.0071835 Text en © 2013 Wenger 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
Wenger, Julia
Klinglmayr, Eva
Fröhlich, Chris
Eibl, Clarissa
Gimeno, Ana
Hessenberger, Manuel
Puehringer, Sandra
Daumke, Oliver
Goettig, Peter
Functional Mapping of Human Dynamin-1-Like GTPase Domain Based on X-ray Structure Analyses
title Functional Mapping of Human Dynamin-1-Like GTPase Domain Based on X-ray Structure Analyses
title_full Functional Mapping of Human Dynamin-1-Like GTPase Domain Based on X-ray Structure Analyses
title_fullStr Functional Mapping of Human Dynamin-1-Like GTPase Domain Based on X-ray Structure Analyses
title_full_unstemmed Functional Mapping of Human Dynamin-1-Like GTPase Domain Based on X-ray Structure Analyses
title_short Functional Mapping of Human Dynamin-1-Like GTPase Domain Based on X-ray Structure Analyses
title_sort functional mapping of human dynamin-1-like gtpase domain based on x-ray structure analyses
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3747075/
https://www.ncbi.nlm.nih.gov/pubmed/23977156
http://dx.doi.org/10.1371/journal.pone.0071835
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