Cargando…

Zinc and the iron donor frataxin regulate oligomerization of the scaffold protein to form new Fe–S cluster assembly centers

Early studies of the bacterial Fe–S cluster assembly system provided structural details for how the scaffold protein and the cysteine desulfurase interact. This work and additional work on the yeast and human systems elucidated a conserved mechanism for sulfur donation but did not provide any conclu...

Descripción completa

Detalles Bibliográficos
Autores principales: Galeano, B. K., Ranatunga, W., Gakh, O., Smith, D. Y., Thompson, J. R., Isaya, G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5552075/
https://www.ncbi.nlm.nih.gov/pubmed/28548666
http://dx.doi.org/10.1039/c7mt00089h
_version_ 1783256403089031168
author Galeano, B. K.
Ranatunga, W.
Gakh, O.
Smith, D. Y.
Thompson, J. R.
Isaya, G.
author_facet Galeano, B. K.
Ranatunga, W.
Gakh, O.
Smith, D. Y.
Thompson, J. R.
Isaya, G.
author_sort Galeano, B. K.
collection PubMed
description Early studies of the bacterial Fe–S cluster assembly system provided structural details for how the scaffold protein and the cysteine desulfurase interact. This work and additional work on the yeast and human systems elucidated a conserved mechanism for sulfur donation but did not provide any conclusive insights into the mechanism for iron delivery from the iron donor, frataxin, to the scaffold. We previously showed that oligomerization is a mechanism by which yeast frataxin (Yfh1) can promote assembly of the core machinery for Fe–S cluster synthesis both in vitro and in cells, in such a manner that the scaffold protein, Isu1, can bind to Yfh1 independent of the presence of the cysteine desulfurase, Nfs1. Here, in the absence of Yfh1, Isu1 was found to exist in two forms, one mostly monomeric with limited tendency to dimerize, and one with a strong propensity to oligomerize. Whereas the monomeric form is stabilized by zinc, the loss of zinc promotes formation of dimer and higher order oligomers. However, upon binding to oligomeric Yfh1, both forms take on a similar symmetrical trimeric configuration that places the Fe–S cluster coordinating residues of Isu1 in close proximity of iron-binding residues of Yfh1. This configuration is suitable for docking of Nfs1 in a manner that provides a structural context for coordinate iron and sulfur donation to the scaffold. Moreover, distinct structural features suggest that in physiological conditions the zinc-regulated abundance of monomeric vs. oligomeric Isu1 yields [Yfh1]·[Isu1] complexes with different Isu1 configurations that afford unique functional properties for Fe–S cluster assembly and delivery.
format Online
Article
Text
id pubmed-5552075
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-55520752018-01-05 Zinc and the iron donor frataxin regulate oligomerization of the scaffold protein to form new Fe–S cluster assembly centers Galeano, B. K. Ranatunga, W. Gakh, O. Smith, D. Y. Thompson, J. R. Isaya, G. Metallomics Chemistry Early studies of the bacterial Fe–S cluster assembly system provided structural details for how the scaffold protein and the cysteine desulfurase interact. This work and additional work on the yeast and human systems elucidated a conserved mechanism for sulfur donation but did not provide any conclusive insights into the mechanism for iron delivery from the iron donor, frataxin, to the scaffold. We previously showed that oligomerization is a mechanism by which yeast frataxin (Yfh1) can promote assembly of the core machinery for Fe–S cluster synthesis both in vitro and in cells, in such a manner that the scaffold protein, Isu1, can bind to Yfh1 independent of the presence of the cysteine desulfurase, Nfs1. Here, in the absence of Yfh1, Isu1 was found to exist in two forms, one mostly monomeric with limited tendency to dimerize, and one with a strong propensity to oligomerize. Whereas the monomeric form is stabilized by zinc, the loss of zinc promotes formation of dimer and higher order oligomers. However, upon binding to oligomeric Yfh1, both forms take on a similar symmetrical trimeric configuration that places the Fe–S cluster coordinating residues of Isu1 in close proximity of iron-binding residues of Yfh1. This configuration is suitable for docking of Nfs1 in a manner that provides a structural context for coordinate iron and sulfur donation to the scaffold. Moreover, distinct structural features suggest that in physiological conditions the zinc-regulated abundance of monomeric vs. oligomeric Isu1 yields [Yfh1]·[Isu1] complexes with different Isu1 configurations that afford unique functional properties for Fe–S cluster assembly and delivery. Royal Society of Chemistry 2017-06-01 2017-05-26 /pmc/articles/PMC5552075/ /pubmed/28548666 http://dx.doi.org/10.1039/c7mt00089h Text en This journal is © The Royal Society of Chemistry 2017 http://creativecommons.org/licenses/by-nc/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Galeano, B. K.
Ranatunga, W.
Gakh, O.
Smith, D. Y.
Thompson, J. R.
Isaya, G.
Zinc and the iron donor frataxin regulate oligomerization of the scaffold protein to form new Fe–S cluster assembly centers
title Zinc and the iron donor frataxin regulate oligomerization of the scaffold protein to form new Fe–S cluster assembly centers
title_full Zinc and the iron donor frataxin regulate oligomerization of the scaffold protein to form new Fe–S cluster assembly centers
title_fullStr Zinc and the iron donor frataxin regulate oligomerization of the scaffold protein to form new Fe–S cluster assembly centers
title_full_unstemmed Zinc and the iron donor frataxin regulate oligomerization of the scaffold protein to form new Fe–S cluster assembly centers
title_short Zinc and the iron donor frataxin regulate oligomerization of the scaffold protein to form new Fe–S cluster assembly centers
title_sort zinc and the iron donor frataxin regulate oligomerization of the scaffold protein to form new fe–s cluster assembly centers
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5552075/
https://www.ncbi.nlm.nih.gov/pubmed/28548666
http://dx.doi.org/10.1039/c7mt00089h
work_keys_str_mv AT galeanobk zincandtheirondonorfrataxinregulateoligomerizationofthescaffoldproteintoformnewfesclusterassemblycenters
AT ranatungaw zincandtheirondonorfrataxinregulateoligomerizationofthescaffoldproteintoformnewfesclusterassemblycenters
AT gakho zincandtheirondonorfrataxinregulateoligomerizationofthescaffoldproteintoformnewfesclusterassemblycenters
AT smithdy zincandtheirondonorfrataxinregulateoligomerizationofthescaffoldproteintoformnewfesclusterassemblycenters
AT thompsonjr zincandtheirondonorfrataxinregulateoligomerizationofthescaffoldproteintoformnewfesclusterassemblycenters
AT isayag zincandtheirondonorfrataxinregulateoligomerizationofthescaffoldproteintoformnewfesclusterassemblycenters