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Please use this identifier to cite or link to this item: http://hdl.handle.net/2262/60810

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Title: Phenylketonuria as a protein misfolding disease: The mutation pG46S in phenylalanine hydroxylase promotes self-association and fibril formation
Keywords: hPAHhuman phenylalanine hydroxylase
rPAHrat phenylalanine hydroxylase
PKUphenylketonuria
l-Phel-phenylalanine
BH4(6R)-l-erythro-5,6,7,8-tetrahydrobiopterin
IPTGisopropyl-thio-β-d-galactoside
MBPmaltose binding protein
SECsize-exclusion chromatography
WTwild-type
TMtetramer
DMdimer
ANS8-anilino-1-naphthalenesulfonic acid
DMSOdimethyl sulfoxide
EMelectron microscopy
Phenylketonuria
phenylalanine hydroxylase
pG46S
polymerization
fibril formation
chaperones
Issue Date: 18-Nov-2010
Publisher: Elsevier
Abstract: Abstract The missense mutation pG46S in the regulatory (R) domain of human phenylalanine hydroxylase (hPAH), associated with a severe form of phenylketonuria, generates a misfolded protein which is rapidly degraded on expression in HEK293 cells. When overexpressed as a MBP-G46S fusion protein, soluble and fully active tetrameric/dimeric forms are assembled and recovered in a metastable conformational state. When MBP is cleaved off, G46S undergoes a conformational change and self-associates with a lag phase and an autocatalytic growth phase (tetramers >>dimers), as determined by light scattering. The self-association is controlled by pH, ionic strength, temperature, protein concentration and the phosphorylation state of Ser16; the net charge of the protein being a main modulator of the process. A superstoichiometric amount of WT dimers revealed a 2-fold enhancement of the rate of G46S dimer self-association. Electron microscopy demonstrates the formation of higher-order oligomers and linear polymers of variable length, partly as a branching network, and partly as individual long and twisted fibrils (diameter ~145-300Å). The heat-shock proteins Hsp70/Hsp40, Hsp90 and a proposed pharmacological PAH chaperone (3-amino-2-benzyl-7-nitro-4-(2-quinolyl)-1,2-dihydroisoquinolin-1-one) partly inhibit the self-association process. Our data indicate that the G46S mutation results in a N-terminal extension of α-helix 1 which perturbs the wild-type α-β sandwich motif in the R-domain and promotes new intermolecular contacts, self-association and nonamyloid fibril formation. The metastable conformational state of G46S as a MBP fusion protein, and its self-association propensity when released from MBP, may represent a model system for the study of other hPAH missense mutations characterized by misfolded proteins.
URI: http://hdl.handle.net/2262/60810
ISSN: 09254439 (ISSN)
DOI: 10.1016/j.bbadis.2010.09.015
Rights: 2010
Affiliation: Department of Biomedicine, University of Bergen - Jonas Lies vei 91--> , N-5009 Bergen--> - NORWAY (Leandro, João)
Metabolism and Genetics Group - iMed.UL--> , Faculty of Pharmacy--> , University of Lisbon--> , Av. Prof. Gama Pinto--> , 1649-003 Lisbon--> - PORTUGAL (Leandro, João)
Department of Biomedicine, University of Bergen - Jonas Lies vei 91--> , N-5009 Bergen--> - NORWAY (Simonsen, Nina)
Department of Biomedicine, University of Bergen - Jonas Lies vei 91--> , N-5009 Bergen--> - NORWAY (Saraste, Jaakko)
Metabolism and Genetics Group - iMed.UL--> , Faculty of Pharmacy--> , University of Lisbon--> , Av. Prof. Gama Pinto--> , 1649-003 Lisbon--> - PORTUGAL (Leandro, Paula)
Department of Biomedicine, University of Bergen - Jonas Lies vei 91--> , N-5009 Bergen--> - NORWAY (Flatmark, Torgeir)
NORWAY (Flatmark, Torgeir)
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