Published in Nature on December 17, 1998
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Integrated biophysical studies implicate partial unfolding of NBD1 of CFTR in the molecular pathogenesis of F508del cystic fibrosis. Protein Sci (2010) 1.28
The two ATP binding sites of cystic fibrosis transmembrane conductance regulator (CFTR) play distinct roles in gating kinetics and energetics. J Gen Physiol (2006) 1.28
Normal gating of CFTR requires ATP binding to both nucleotide-binding domains and hydrolysis at the second nucleotide-binding domain. Proc Natl Acad Sci U S A (2004) 1.26
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Building an understanding of cystic fibrosis on the foundation of ABC transporter structures. J Bioenerg Biomembr (2007) 1.14
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A subunit of human nuclear RNase P has ATPase activity. Proc Natl Acad Sci U S A (2001) 1.03
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Involvement of F1296 and N1303 of CFTR in induced-fit conformational change in response to ATP binding at NBD2. J Gen Physiol (2010) 1.00
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Decoupling catalytic activity from biological function of the ATPase that powers lipopolysaccharide transport. Proc Natl Acad Sci U S A (2014) 0.98
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Interaction of transported drugs with the lipid bilayer and P-glycoprotein through a solvation exchange mechanism. Biophys J (2006) 0.97
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The remarkable transport mechanism of P-glycoprotein: a multidrug transporter. J Bioenerg Biomembr (2005) 0.96
The detergent-soluble maltose transporter is activated by maltose binding protein and verapamil. J Bacteriol (2000) 0.95
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Nucleotide binding domain interactions during the mechanochemical reaction cycle of ATP-binding cassette transporters. J Bioenerg Biomembr (2005) 0.93
Role of a conserved glutamate residue in the Escherichia coli SecA ATPase mechanism. J Biol Chem (2005) 0.92
Antibody C219 recognizes an alpha-helical epitope on P-glycoprotein. Proc Natl Acad Sci U S A (1999) 0.92
Functional analysis of the C-terminal boundary of the second nucleotide binding domain of the cystic fibrosis transmembrane conductance regulator and structural implications. Biochem J (2002) 0.91
The conformational coupling and translocation mechanism of vitamin B12 ATP-binding cassette transporter BtuCD. Biophys J (2007) 0.91
Functionally important ATP binding and hydrolysis sites in Escherichia coli MsbA. Biochemistry (2008) 0.90
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A cluster of negative charges at the amino terminal tail of CFTR regulates ATP-dependent channel gating. J Physiol (2001) 0.89
Distinct functions and cooperative interaction of the subunits of the transporter associated with antigen processing (TAP). Proc Natl Acad Sci U S A (2001) 0.88
Chicken TAP genes differ from their human orthologues in locus organisation, size, sequence features and polymorphism. Immunogenetics (2005) 0.88
Mutant cycles at CFTR's non-canonical ATP-binding site support little interface separation during gating. J Gen Physiol (2011) 0.88
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Crystal structures of all-alpha type membrane proteins. Eur Biophys J (2009) 0.88
Cystic fibrosis: a brief look at some highlights of a decade of research focused on elucidating and correcting the molecular basis of the disease. J Bioenerg Biomembr (2001) 0.87
Nucleotide-dependent conformational changes in HisP: molecular dynamics simulations of an ABC transporter nucleotide-binding domain. Biophys J (2004) 0.87
Cystic fibrosis transmembrane conductance regulator (ABCC7) structure. Cold Spring Harb Perspect Med (2013) 0.87
Role for SUR2A ED domain in allosteric coupling within the K(ATP) channel complex. J Gen Physiol (2008) 0.87
Novel missense mutations that affect the transport function of MalK, the ATP-binding-cassette subunit of the Salmonella enterica serovar typhimurium maltose transport system. J Bacteriol (2000) 0.87
Purification and characterization of the membrane-bound complex of an ABC transporter, the histidine permease. J Bioenerg Biomembr (2001) 0.87
How does protein architecture facilitate the transduction of ATP chemical-bond energy into mechanical work? The cases of nitrogenase and ATP binding-cassette proteins. Biophys J (2004) 0.87
Mutations in the linker domain of NBD2 of SUR inhibit transduction but not nucleotide binding. EMBO J (2002) 0.87
Conserved Asp327 of walker B motif in the N-terminal nucleotide binding domain (NBD-1) of Cdr1p of Candida albicans has acquired a new role in ATP hydrolysis. Biochemistry (2006) 0.87
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