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Computational study of pH-dependent oligomerization and ligand binding in Alt a 1, a highly allergenic protein with a unique fold

Garrido-Arandia, María (författare)
Technical University of Madrid
Bretones, Jorge (författare)
Technical University of Madrid
Gómez-Casado, Cristina (författare)
Lund University,Lunds universitet,Slemhinnans immunologi,Forskargrupper vid Lunds universitet,Mucosal Immunology,Lund University Research Groups,Technical University of Madrid
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Cubells, Nuria (författare)
Technical University of Madrid
Díaz-Perales, Araceli (författare)
Technical University of Madrid
Pacios, Luis F. (författare)
Technical University of Madrid
visa färre...
 (creator_code:org_t)
2016-04-18
2016
Engelska 15 s.
Ingår i: Journal of Computer-Aided Molecular Design. - : Springer Science and Business Media LLC. - 0920-654X .- 1573-4951. ; 30:5, s. 365-379
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
Stäng  
  • Alt a 1 is a highly allergenic protein from Alternaria fungi responsible for several respiratory diseases. Its crystal structure revealed a unique β-barrel fold that defines a new family exclusive to fungi and forms a symmetrical dimer in a butterfly-like shape as well as tetramers. Its biological function is as yet unknown but its localization in cell wall of Alternaria spores and its interactions in the onset of allergy reactions point to a function to transport ligands. However, at odds with binding features in β-barrel proteins, monomeric Alt a 1 seems unable to harbor ligands because the barrel is too narrow. Tetrameric Alt a 1 is able to bind the flavonoid quercetin, yet the stability of the aggregate and the own ligand binding are pH-dependent. At pH 6.5, which Alt a 1 would meet when secreted by spores in bronchial epithelium, tetramer-quercetin complex is stable. At pH 5.5, which Alt a 1 would meet in apoplast when infecting plants, the complex breaks down. By means of a combined computational study that includes docking calculations, empirical pKa estimates, Poisson–Boltzmann electrostatic potentials, and Molecular Dynamics simulations, we identified a putative binding site at the dimeric interface between subunits in tetramer. We propose an explanation on the pH-dependence of both oligomerization states and protein–ligand affinity of Alt a 1 in terms of electrostatic variations associated to distinct protonation states at different pHs. The uniqueness of this singular protein can thus be tracked in the combination of all these features.

Ämnesord

MEDICIN OCH HÄLSOVETENSKAP  -- Medicinsk bioteknologi (hsv//swe)
MEDICAL AND HEALTH SCIENCES  -- Medical Biotechnology (hsv//eng)

Nyckelord

Allergenic proteins
Electrostatic potentials
Ligand–protein docking
Molecular dynamics
Oligomerization
Protein–ligand binding

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