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Dynamical interplay between the human high-affinity copper transporter hCtr1 and its cognate metal ion

Abnormal cellular copper levels have been clearly implicated in genetic diseases, cancer, and neurodegeneration. Ctr1, a high-affinity copper transporter, is a homotrimeric integral membrane protein that provides the main route for cellular copper uptake. Together with a sophisticated copper transpo...

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Autores principales: Walke, Gulshan, Aupič, Jana, Kashoua, Hadeel, Janoš, Pavel, Meron, Shelly, Shenberger, Yulia, Qasem, Zena, Gevorkyan-Airapetov, Lada, Magistrato, Alessandra, Ruthstein, Sharon
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Biophysical Society 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9034245/
https://www.ncbi.nlm.nih.gov/pubmed/35202609
http://dx.doi.org/10.1016/j.bpj.2022.02.033
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author Walke, Gulshan
Aupič, Jana
Kashoua, Hadeel
Janoš, Pavel
Meron, Shelly
Shenberger, Yulia
Qasem, Zena
Gevorkyan-Airapetov, Lada
Magistrato, Alessandra
Ruthstein, Sharon
author_facet Walke, Gulshan
Aupič, Jana
Kashoua, Hadeel
Janoš, Pavel
Meron, Shelly
Shenberger, Yulia
Qasem, Zena
Gevorkyan-Airapetov, Lada
Magistrato, Alessandra
Ruthstein, Sharon
author_sort Walke, Gulshan
collection PubMed
description Abnormal cellular copper levels have been clearly implicated in genetic diseases, cancer, and neurodegeneration. Ctr1, a high-affinity copper transporter, is a homotrimeric integral membrane protein that provides the main route for cellular copper uptake. Together with a sophisticated copper transport system, Ctr1 regulates Cu(I) metabolism in eukaryotes. Despite its pivotal role in normal cell function, the molecular mechanism of copper uptake and transport via Ctr1 remains elusive. In this study, electron paramagnetic resonance (EPR), UV-visible spectroscopy, and all-atom simulations were employed to explore Cu(I) binding to full-length human Ctr1 (hCtr1), thereby elucidating how metal binding at multiple distinct sites affects the hCtr1 conformational dynamics. We demonstrate that each hCtr1 monomer binds up to five Cu(I) ions and that progressive Cu(I) binding triggers a marked structural rearrangement in the hCtr1 C-terminal region. The observed Cu(I)-induced conformational remodeling suggests that the C-terminal region may play a dual role, serving both as a channel gate and as a shuttle mediating the delivery of copper ions from the extracellular hCtr1 selectivity filter to intracellular metallochaperones. Our findings thus contribute to a more complete understanding of the mechanism of hCtr1-mediated Cu(I) uptake and provide a conceptual basis for developing mechanism-based therapeutics for treating pathological conditions linked to de-regulated copper metabolism.
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spelling pubmed-90342452023-04-05 Dynamical interplay between the human high-affinity copper transporter hCtr1 and its cognate metal ion Walke, Gulshan Aupič, Jana Kashoua, Hadeel Janoš, Pavel Meron, Shelly Shenberger, Yulia Qasem, Zena Gevorkyan-Airapetov, Lada Magistrato, Alessandra Ruthstein, Sharon Biophys J Articles Abnormal cellular copper levels have been clearly implicated in genetic diseases, cancer, and neurodegeneration. Ctr1, a high-affinity copper transporter, is a homotrimeric integral membrane protein that provides the main route for cellular copper uptake. Together with a sophisticated copper transport system, Ctr1 regulates Cu(I) metabolism in eukaryotes. Despite its pivotal role in normal cell function, the molecular mechanism of copper uptake and transport via Ctr1 remains elusive. In this study, electron paramagnetic resonance (EPR), UV-visible spectroscopy, and all-atom simulations were employed to explore Cu(I) binding to full-length human Ctr1 (hCtr1), thereby elucidating how metal binding at multiple distinct sites affects the hCtr1 conformational dynamics. We demonstrate that each hCtr1 monomer binds up to five Cu(I) ions and that progressive Cu(I) binding triggers a marked structural rearrangement in the hCtr1 C-terminal region. The observed Cu(I)-induced conformational remodeling suggests that the C-terminal region may play a dual role, serving both as a channel gate and as a shuttle mediating the delivery of copper ions from the extracellular hCtr1 selectivity filter to intracellular metallochaperones. Our findings thus contribute to a more complete understanding of the mechanism of hCtr1-mediated Cu(I) uptake and provide a conceptual basis for developing mechanism-based therapeutics for treating pathological conditions linked to de-regulated copper metabolism. The Biophysical Society 2022-04-05 2022-02-22 /pmc/articles/PMC9034245/ /pubmed/35202609 http://dx.doi.org/10.1016/j.bpj.2022.02.033 Text en © 2022 Biophysical Society. https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Articles
Walke, Gulshan
Aupič, Jana
Kashoua, Hadeel
Janoš, Pavel
Meron, Shelly
Shenberger, Yulia
Qasem, Zena
Gevorkyan-Airapetov, Lada
Magistrato, Alessandra
Ruthstein, Sharon
Dynamical interplay between the human high-affinity copper transporter hCtr1 and its cognate metal ion
title Dynamical interplay between the human high-affinity copper transporter hCtr1 and its cognate metal ion
title_full Dynamical interplay between the human high-affinity copper transporter hCtr1 and its cognate metal ion
title_fullStr Dynamical interplay between the human high-affinity copper transporter hCtr1 and its cognate metal ion
title_full_unstemmed Dynamical interplay between the human high-affinity copper transporter hCtr1 and its cognate metal ion
title_short Dynamical interplay between the human high-affinity copper transporter hCtr1 and its cognate metal ion
title_sort dynamical interplay between the human high-affinity copper transporter hctr1 and its cognate metal ion
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9034245/
https://www.ncbi.nlm.nih.gov/pubmed/35202609
http://dx.doi.org/10.1016/j.bpj.2022.02.033
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