x
Filter:
Filters applied
- Glycobiology and Extracellular Matrices
- Boudko, Sergei PRemove Boudko, Sergei P filter
Publication Date
Please choose a date range between 2019 and 2021.
Author
- Hudson, Billy G4
- Pedchenko, Vadim3
- Bauer, Ryan2
- Fidler, Aaron L2
- Pokidysheva, Elena N2
- Voziyan, Paul A2
- Abrahamson, Dale1
- Al-Shaer, Alaa1
- Barber, Mary1
- Bergmann, Carsten1
- Chetyrkin, Sergei1
- Chetyrkin, Sergei V1
- Cui, Zhao Wei1
- Delpire, Eric1
- Fervenza, Fernando C1
- Fogo, Agnes B1
- Forde, Nancy R1
- Gaspert, Ariana1
- Grohmann, Maik1
- Gross, Oliver1
- Haddad, George1
- Harmange, Jean-Christophe1
- Harris, Raymond C1
- Ivanov, Sergey1
Glycobiology and Extracellular Matrices
4 Results
- Research Article Editors' pickOpen Access
Collagen IVα345 dysfunction in glomerular basement membrane diseases. I. Discovery of a COL4A3 variant in familial Goodpasture’s and Alport diseases
Journal of Biological ChemistryVol. 296100590Published online: March 24, 2021- Elena N. Pokidysheva
- Harald Seeger
- Vadim Pedchenko
- Sergei Chetyrkin
- Carsten Bergmann
- Dale Abrahamson
- and others
Cited in Scopus: 10Diseases of the glomerular basement membrane (GBM), such as Goodpasture’s disease (GP) and Alport syndrome (AS), are a major cause of chronic kidney failure and an unmet medical need. Collagen IVα345 is an important architectural element of the GBM that was discovered in previous research on GP and AS. How this collagen enables GBM to function as a permselective filter and how structural defects cause renal failure remain an enigma. We found a distinctive genetic variant of collagen IVα345 in both a familial GP case and four AS kindreds that provided insights into these mechanisms. - Research ArticleOpen Access
Collagen IVα345 dysfunction in glomerular basement membrane diseases. II. Crystal structure of the α345 hexamer
Journal of Biological ChemistryVol. 296100591Published online: March 25, 2021- Sergei P. Boudko
- Ryan Bauer
- Sergei V. Chetyrkin
- Sergey Ivanov
- Jarrod Smith
- Paul A. Voziyan
- and others
Cited in Scopus: 7Our 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. - Research ArticleOpen Access
Collagen IVα345 dysfunction in glomerular basement membrane diseases. III. A functional framework for α345 hexamer assembly
Journal of Biological ChemistryVol. 296100592Published online: March 25, 2021- Vadim Pedchenko
- Sergei P. Boudko
- Mary Barber
- Tatiana Mikhailova
- Juan Saus
- Jean-Christophe Harmange
- and others
Cited in Scopus: 10We identified a genetic variant, an 8-residue appendage, of the α345 hexamer of collagen IV present in patients with glomerular basement membrane diseases, Goodpasture’s disease and Alport syndrome, and determined the long-awaited crystal structure of the hexamer. We sought to elucidate how variants cause glomerular basement membrane disease by exploring the mechanism of the hexamer assembly. Chloride ions induced in vitro hexamer assembly in a composition-specific manner in the presence of equimolar concentrations of α3, α4, and α5 NC1 monomers. - Glycobiology and Extracellular MatricesOpen Access
A chloride ring is an ancient evolutionary innovation mediating the assembly of the collagen IV scaffold of basement membranes
Journal of Biological ChemistryVol. 294Issue 20p7968–7981Published online: March 28, 2019- Vadim Pedchenko
- Ryan Bauer
- Elena N. Pokidysheva
- Alaa Al-Shaer
- Nancy R. Forde
- Aaron L. Fidler
- and others
Cited in Scopus: 9Collagen IV scaffold is a principal component of the basement membrane (BM), a specialized extracellular matrix that is essential for animal multicellularity and tissue evolution. Scaffold assembly begins with the trimerization of α-chains into protomers inside the cell, which then are secreted and undergo oligomerization outside the cell. For the ubiquitous scaffold composed of α1- and α2-chains, both intracellular and extracellular stages are mediated by the noncollagenous domain (NC1). The association of protomers is chloride-dependent, whereby chloride ions induce interactions of the protomers’ trimeric NC1 domains leading to NC1 hexamer formation.