Abstract
WNDP (Wilson's disease protein) is a copper-transporting ATPase that plays an essential role in human physiology. Mutations in WNDP result in copper accumulation in tissues and cause a severe hepato-neurological disorder known as Wilson's disease. Several mutations were surmised to affect the nucleotide binding and hydrolysis by WNDP; however, how the nucleotides bind to normal and mutated WNDP remains unknown. To aid such studies, we performed the molecular modelling of the spatial structure and dynamics of the ATP-binding domain of WNDP and its interactions with ATP. The three-dimensional models of this domain in two conformations were built using the X-ray structures of the Ca2+-ATPase in the E1 and E2 states. To study the functional aspects of the models, they were subjected to long-term molecular dynamics simulations in an explicit solvent; similar calculations were performed for the ATP-binding domain of Ca2+-ATPase. In both cases, we found large-scale motions that lead to significant changes of distances between several functionally important residues. The ATP docking revealed two possible modes of ATP binding: via adenosine buried in the cleft near residues H1069, R1151 and D1164, and via phosphate moiety 'anchored' by H-bonds with residues in the vicinity of catalytic D1027. Furthermore, interaction of ATP with both sites occurs if they are spatially close to each other. This may be achieved after relative domain motions of the 'closure' type observed in molecular dynamics simulations. The results provide a framework for analysis of disease mutations and for future mutagenesis studies.
MeSH Terms
Adenosine Triphosphatases/chemistry,genetics,metabolism,physiology
Adenosine Triphosphate/metabolism
Amino Acid Sequence/genetics
Binding Sites
Calcium-Transporting ATPases/metabolism
Cation Transport Proteins/chemistry,genetics,metabolism,physiology
Circular Dichroism/methods
Computer Simulation
Copper-Transporting ATPases
Hepatolenticular Degeneration/genetics,pathology
Models, Molecular
Models, Structural
Molecular Sequence Data
Mutagenesis/genetics,physiology
Mutation/genetics,physiology
Nucleotides/metabolism
Peptides/chemistry,metabolism
Protein Binding
Protein Structure, Tertiary
Chemicals
Cation Transport Proteins
Nucleotides
Peptides
Adenosine Triphosphate
Adenosine Triphosphatases
Calcium-Transporting ATPases
Copper-Transporting ATPases
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Efremov Roman G
M. M. Shemyakin & Yu. A. Ovchinnikov Institute of Bioorganic Chemistry, Russian Academy of Sciences, Ul. Miklukho-Maklaya, 16/10, Moscow V-437, 117997 GSP, Russia. efremov@nmr.ru
Kosinsky Yuri A
Nolde Dmitry E
Tsivkovskii Ruslan
Arseniev Alexander S
Lutsenko Svetlana
References (30)
30 references, click to expand
-
The role of the invariant His-1069 in folding and function of the Wilson's disease protein, the human copper-transporting ATPase ATP7B.
J Biol Chem. 2003 Apr 11;278(15):13302-8
PMID: 12551905
-
Mutational analysis of the Menkes copper P-type ATPase (ATP7A).
Biochem Biophys Res Commun. 2003 Feb 7;301(2):488-94
PMID: 12565888
-
ATP-induced conformational changes of the nucleotide-binding domain of Na,K-ATPase.
Nat Struct Biol. 2003 Jun;10(6):468-74
PMID: 12730684
-
Substrate-induced conformational fit and headpiece closure in the Ca2+ATPase (SERCA).
J Biol Chem. 2003 Aug 1;278(31):28938-43
PMID: 12750373
-
Diagnosis and phenotypic classification of Wilson disease.
Liver Int. 2003 Jun;23(3):139-42
PMID: 12955875
-
Structural basis of ion pumping by Ca(2+)-ATPase of sarcoplasmic reticulum.
FEBS Lett. 2003 Nov 27;555(1):106-10
PMID: 14630328
-
The nucleotide-binding domain of the Zn2+-transporting P-type ATPase from Escherichia coli carries a glycine motif that may be involved in binding of ATP.
Biochem J. 2004 Jan 1;377(Pt 1):95-105
PMID: 14510639
-
Wilson disease.
Gastroenterology. 2003 Dec;125(6):1868-77
PMID: 14724838
-
The distinct functional properties of the nucleotide-binding domain of ATP7B, the human copper-transporting ATPase: analysis of the Wilson disease mutations E1064A, H1069Q, R1151H, and C1104F.
J Biol Chem. 2004 Aug 27;279(35):36363-71
PMID: 15205462
-
Dictionary of protein secondary structure: pattern recognition of hydrogen-bonded and geometrical features.
Biopolymers. 1983 Dec;22(12):2577-637
PMID: 6667333
-
A method to identify protein sequences that fold into a known three-dimensional structure.
Science. 1991 Jul 12;253(5016):164-70
PMID: 1853201
-
Assessment of protein models with three-dimensional profiles.
Nature. 1992 Mar 5;356(6364):83-5
PMID: 1538787
-
Prediction of protein secondary structure at better than 70% accuracy.
J Mol Biol. 1993 Jul 20;232(2):584-99
PMID: 8345525
-
The glycine-rich sequence of protein kinases: a multifunctional element.
Trends Biochem Sci. 1994 May;19(5):201-5
PMID: 8048162
-
Derivation of rules for comparative protein modeling from a database of protein structure alignments.
Protein Sci. 1994 Sep;3(9):1582-96
PMID: 7833817
-
Development and validation of a genetic algorithm for flexible docking.
J Mol Biol. 1997 Apr 4;267(3):727-48
PMID: 9126849
-
Haplotype and mutation analysis in Japanese patients with Wilson disease.
Am J Hum Genet. 1997 Jun;60(6):1423-9
PMID: 9199563
-
Mutations of ATP7B gene in Wilson disease in Japan: identification of nine mutations and lack of clear founder effect in a Japanese population.
Hum Mutat. 1998;Suppl 1:S320-2
PMID: 9452121
-
Systematic analysis of domain motions in proteins from conformational change: new results on citrate synthase and T4 lysozyme.
Proteins. 1998 Feb 1;30(2):144-54
PMID: 9489922
-
Identification of three novel mutations and a high frequency of the Arg778Leu mutation in Korean patients with Wilson disease.
Hum Mutat. 1998;11(4):275-8
PMID: 9554743
-
GenTHREADER: an efficient and reliable protein fold recognition method for genomic sequences.
J Mol Biol. 1999 Apr 9;287(4):797-815
PMID: 10191147
-
Mutation analysis in patients of Mediterranean descent with Wilson disease: identification of 19 novel mutations.
J Med Genet. 1999 Nov;36(11):833-6
PMID: 10544227
-
Crystal structure of the calcium pump of sarcoplasmic reticulum at 2.6 A resolution.
Nature. 2000 Jun 8;405(6787):647-55
PMID: 10864315
-
Estimation of protein secondary structure from circular dichroism spectra: comparison of CONTIN, SELCON, and CDSSTR methods with an expanded reference set.
Anal Biochem. 2000 Dec 15;287(2):252-60
PMID: 11112271
-
The Lys1010-Lys1325 fragment of the Wilson's disease protein binds nucleotides and interacts with the N-terminal domain of this protein in a copper-dependent manner.
J Biol Chem. 2001 Jan 19;276(3):2234-42
PMID: 11053407
-
Functional properties of the copper-transporting ATPase ATP7B (the Wilson's disease protein) expressed in insect cells.
J Biol Chem. 2002 Jan 11;277(2):976-83
PMID: 11677246
-
Protein structure prediction in 2002.
Curr Opin Struct Biol. 2002 Jun;12(3):348-54
PMID: 12127454
-
Structural changes in the calcium pump accompanying the dissociation of calcium.
Nature. 2002 Aug 8;418(6898):605-11
PMID: 12167852
-
Human copper-transporting ATPase ATP7B (the Wilson's disease protein): biochemical properties and regulation.
J Bioenerg Biomembr. 2002 Oct;34(5):351-62
PMID: 12539962
-
Importance of conserved N-domain residues Thr441, Glu442, Lys515, Arg560, and Leu562 of sarcoplasmic reticulum Ca2+-ATPase for MgATP binding and subsequent catalytic steps. Plasticity of the nucleotide-binding site.
J Biol Chem. 2003 May 30;278(22):20245-58
PMID: 12649284