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Ionic self-complementarity induces amyloid-like fibril formation in an isolated domain of a plant copper metallochaperone protein

BACKGROUND: Arabidopsis thaliana copper metallochaperone CCH is a functional homologue of yeast antioxidant ATX1, involved in cytosolic copper transport. In higher plants, CCH has to be transported to specialised cells through plasmodesmata, being the only metallochaperone reported to date that leav...

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Autores principales: Mira, Helena, Vilar, Marçal, Esteve, Vicent, Martinell, Marc, Kogan, Marcelo J, Giralt, Ernest, Salom, David, Mingarro, Ismael, Peñarrubia, Lola, Pérez-Payá, Enrique
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2004
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC425589/
https://www.ncbi.nlm.nih.gov/pubmed/15180901
http://dx.doi.org/10.1186/1472-6807-4-7
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author Mira, Helena
Vilar, Marçal
Esteve, Vicent
Martinell, Marc
Kogan, Marcelo J
Giralt, Ernest
Salom, David
Mingarro, Ismael
Peñarrubia, Lola
Pérez-Payá, Enrique
author_facet Mira, Helena
Vilar, Marçal
Esteve, Vicent
Martinell, Marc
Kogan, Marcelo J
Giralt, Ernest
Salom, David
Mingarro, Ismael
Peñarrubia, Lola
Pérez-Payá, Enrique
author_sort Mira, Helena
collection PubMed
description BACKGROUND: Arabidopsis thaliana copper metallochaperone CCH is a functional homologue of yeast antioxidant ATX1, involved in cytosolic copper transport. In higher plants, CCH has to be transported to specialised cells through plasmodesmata, being the only metallochaperone reported to date that leaves the cell where it is synthesised. CCH has two different domains, the N-terminal domain conserved among other copper-metallochaperones and a C-terminal domain absent in all the identified non-plant metallochaperones. The aim of the present study was the biochemical and biophysical characterisation of the C-terminal domain of the copper metallochaperone CCH. RESULTS: The conformational behaviour of the isolated C-domain in solution is complex and implies the adoption of mixed conformations in different environments. The ionic self-complementary peptide KTEAETKTEAKVDAKADVE, derived from the C-domain of CCH, adopts and extended conformation in solution with a high content in β-sheet structure that induces a pH-dependent fibril formation. Freeze drying electron microscopy studies revealed the existence of well ordered amyloid-like fibrils in preparations from both the C-domain and its derivative peptide. CONCLUSION: A number of proteins related with copper homeostasis have a high tendency to form fibrils. The determinants for fibril formation, as well as the possible physiological role are not fully understood. Here we show that the plant exclusive C-domain of the copper metallochaperone CCH has conformational plasticity and forms fibrils at defined experimental conditions. The putative influence of these properties with plant copper delivery will be addressed in the future.
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spelling pubmed-4255892004-06-18 Ionic self-complementarity induces amyloid-like fibril formation in an isolated domain of a plant copper metallochaperone protein Mira, Helena Vilar, Marçal Esteve, Vicent Martinell, Marc Kogan, Marcelo J Giralt, Ernest Salom, David Mingarro, Ismael Peñarrubia, Lola Pérez-Payá, Enrique BMC Struct Biol Research Article BACKGROUND: Arabidopsis thaliana copper metallochaperone CCH is a functional homologue of yeast antioxidant ATX1, involved in cytosolic copper transport. In higher plants, CCH has to be transported to specialised cells through plasmodesmata, being the only metallochaperone reported to date that leaves the cell where it is synthesised. CCH has two different domains, the N-terminal domain conserved among other copper-metallochaperones and a C-terminal domain absent in all the identified non-plant metallochaperones. The aim of the present study was the biochemical and biophysical characterisation of the C-terminal domain of the copper metallochaperone CCH. RESULTS: The conformational behaviour of the isolated C-domain in solution is complex and implies the adoption of mixed conformations in different environments. The ionic self-complementary peptide KTEAETKTEAKVDAKADVE, derived from the C-domain of CCH, adopts and extended conformation in solution with a high content in β-sheet structure that induces a pH-dependent fibril formation. Freeze drying electron microscopy studies revealed the existence of well ordered amyloid-like fibrils in preparations from both the C-domain and its derivative peptide. CONCLUSION: A number of proteins related with copper homeostasis have a high tendency to form fibrils. The determinants for fibril formation, as well as the possible physiological role are not fully understood. Here we show that the plant exclusive C-domain of the copper metallochaperone CCH has conformational plasticity and forms fibrils at defined experimental conditions. The putative influence of these properties with plant copper delivery will be addressed in the future. BioMed Central 2004-06-04 /pmc/articles/PMC425589/ /pubmed/15180901 http://dx.doi.org/10.1186/1472-6807-4-7 Text en Copyright © 2004 Mira et al; licensee BioMed Central Ltd. This is an Open Access article: verbatim copying and redistribution of this article are permitted in all media for any purpose, provided this notice is preserved along with the article's original URL.
spellingShingle Research Article
Mira, Helena
Vilar, Marçal
Esteve, Vicent
Martinell, Marc
Kogan, Marcelo J
Giralt, Ernest
Salom, David
Mingarro, Ismael
Peñarrubia, Lola
Pérez-Payá, Enrique
Ionic self-complementarity induces amyloid-like fibril formation in an isolated domain of a plant copper metallochaperone protein
title Ionic self-complementarity induces amyloid-like fibril formation in an isolated domain of a plant copper metallochaperone protein
title_full Ionic self-complementarity induces amyloid-like fibril formation in an isolated domain of a plant copper metallochaperone protein
title_fullStr Ionic self-complementarity induces amyloid-like fibril formation in an isolated domain of a plant copper metallochaperone protein
title_full_unstemmed Ionic self-complementarity induces amyloid-like fibril formation in an isolated domain of a plant copper metallochaperone protein
title_short Ionic self-complementarity induces amyloid-like fibril formation in an isolated domain of a plant copper metallochaperone protein
title_sort ionic self-complementarity induces amyloid-like fibril formation in an isolated domain of a plant copper metallochaperone protein
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC425589/
https://www.ncbi.nlm.nih.gov/pubmed/15180901
http://dx.doi.org/10.1186/1472-6807-4-7
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