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Collagen IV(α345) dysfunction in glomerular basement membrane diseases. II. Crystal structure of the α345 hexamer

Our recent work identified a genetic variant of the α345 hexamer of the collagen IV scaffold that is present in patients with glomerular basement membrane diseases, Goodpasture’s disease (GP) and Alport syndrome (AS), and phenocopies of AS in knock-in mice. To understand the context of this “Zurich”...

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Autores principales: Boudko, Sergei P., Bauer, Ryan, Chetyrkin, Sergei V., Ivanov, Sergey, Smith, Jarrod, Voziyan, Paul A., Hudson, Billy G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8093946/
https://www.ncbi.nlm.nih.gov/pubmed/33775698
http://dx.doi.org/10.1016/j.jbc.2021.100591
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author Boudko, Sergei P.
Bauer, Ryan
Chetyrkin, Sergei V.
Ivanov, Sergey
Smith, Jarrod
Voziyan, Paul A.
Hudson, Billy G.
author_facet Boudko, Sergei P.
Bauer, Ryan
Chetyrkin, Sergei V.
Ivanov, Sergey
Smith, Jarrod
Voziyan, Paul A.
Hudson, Billy G.
author_sort Boudko, Sergei P.
collection PubMed
description Our recent work identified a genetic variant of the α345 hexamer of the collagen IV scaffold that is present in patients with glomerular basement membrane diseases, Goodpasture’s disease (GP) and Alport syndrome (AS), and phenocopies of AS in knock-in mice. To understand the context of this “Zurich” variant, an 8-amino acid appendage, we developed a construct of the WT α345 hexamer using the single-chain NC1 trimer technology, which allowed us to solve a crystal structure of this key connection module. The α345 hexamer structure revealed a ring of 12 chloride ions at the trimer–trimer interface, analogous to the collagen α121 hexamer, and the location of the 170 AS variants. The hexamer surface is marked by multiple pores and crevices that are potentially accessible to small molecules. Loop-crevice-loop features constitute bioactive sites, where pathogenic pathways converge that are linked to AS and GP, and, potentially, diabetic nephropathy. In Pedchenko et al., we demonstrate that these sites exhibit conformational plasticity, a dynamic property underlying assembly of bioactive sites and hexamer dysfunction. The α345 hexamer structure is a platform to decipher how variants cause AS and how hypoepitopes can be triggered, causing GP. Furthermore, the bioactive sites, along with the pores and crevices on the hexamer surface, are prospective targets for therapeutic interventions.
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spelling pubmed-80939462021-05-13 Collagen IV(α345) dysfunction in glomerular basement membrane diseases. II. Crystal structure of the α345 hexamer Boudko, Sergei P. Bauer, Ryan Chetyrkin, Sergei V. Ivanov, Sergey Smith, Jarrod Voziyan, Paul A. Hudson, Billy G. J Biol Chem Research Article Our recent work identified a genetic variant of the α345 hexamer of the collagen IV scaffold that is present in patients with glomerular basement membrane diseases, Goodpasture’s disease (GP) and Alport syndrome (AS), and phenocopies of AS in knock-in mice. To understand the context of this “Zurich” variant, an 8-amino acid appendage, we developed a construct of the WT α345 hexamer using the single-chain NC1 trimer technology, which allowed us to solve a crystal structure of this key connection module. The α345 hexamer structure revealed a ring of 12 chloride ions at the trimer–trimer interface, analogous to the collagen α121 hexamer, and the location of the 170 AS variants. The hexamer surface is marked by multiple pores and crevices that are potentially accessible to small molecules. Loop-crevice-loop features constitute bioactive sites, where pathogenic pathways converge that are linked to AS and GP, and, potentially, diabetic nephropathy. In Pedchenko et al., we demonstrate that these sites exhibit conformational plasticity, a dynamic property underlying assembly of bioactive sites and hexamer dysfunction. The α345 hexamer structure is a platform to decipher how variants cause AS and how hypoepitopes can be triggered, causing GP. Furthermore, the bioactive sites, along with the pores and crevices on the hexamer surface, are prospective targets for therapeutic interventions. American Society for Biochemistry and Molecular Biology 2021-03-26 /pmc/articles/PMC8093946/ /pubmed/33775698 http://dx.doi.org/10.1016/j.jbc.2021.100591 Text en © 2021 The Authors 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 Research Article
Boudko, Sergei P.
Bauer, Ryan
Chetyrkin, Sergei V.
Ivanov, Sergey
Smith, Jarrod
Voziyan, Paul A.
Hudson, Billy G.
Collagen IV(α345) dysfunction in glomerular basement membrane diseases. II. Crystal structure of the α345 hexamer
title Collagen IV(α345) dysfunction in glomerular basement membrane diseases. II. Crystal structure of the α345 hexamer
title_full Collagen IV(α345) dysfunction in glomerular basement membrane diseases. II. Crystal structure of the α345 hexamer
title_fullStr Collagen IV(α345) dysfunction in glomerular basement membrane diseases. II. Crystal structure of the α345 hexamer
title_full_unstemmed Collagen IV(α345) dysfunction in glomerular basement membrane diseases. II. Crystal structure of the α345 hexamer
title_short Collagen IV(α345) dysfunction in glomerular basement membrane diseases. II. Crystal structure of the α345 hexamer
title_sort collagen iv(α345) dysfunction in glomerular basement membrane diseases. ii. crystal structure of the α345 hexamer
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8093946/
https://www.ncbi.nlm.nih.gov/pubmed/33775698
http://dx.doi.org/10.1016/j.jbc.2021.100591
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