Investigation of the sodium-binding sites in the sodium-coupled betaine transporter BetP
暂无分享,去创建一个
Matthias Quick | Lucy R Forrest | Christine Ziegler | Kamil Khafizov | L. Forrest | M. Quick | K. Khafizov | K. Fendler | C. Perez | C. Ziegler | Klaus Fendler | Camilo Perez | Caroline Koshy | Caroline Koshy
[1] E. Zomot,et al. Identification of a Lithium Interaction Site in the γ-Aminobutyric Acid (GABA) Transporter GAT-1* , 2006, Journal of Biological Chemistry.
[2] R. Krämer,et al. Substrate specificity and ion coupling in the Na+/betaine symporter BetP , 2011, The EMBO journal.
[3] C. Ginter,et al. Amino Acid Residues in Transmembrane Segment IX of the Na+/I– Symporter Play a Role in Its Na+ Dependence and Are Critical for Transport Activity* , 2007, Journal of Biological Chemistry.
[4] E. Gouaux,et al. Structure and Mechanism of a Na+-Independent Amino Acid Transporter , 2009, Science.
[5] L. Forrest,et al. Modeling and simulation of ion-coupled and ATP-driven membrane proteins. , 2011, Current Opinion in Structural Biology.
[6] So Iwata,et al. Molecular Basis of Alternating Access Membrane Transport by the Sodium-hydantoin Transporter Mhp1 , 2011 .
[7] J. Wouters,et al. Cation‐π (Na+‐Trp) interactions in the crystal structure of tetragonal lysozyme , 1998, Protein science : a publication of the Protein Society.
[8] Barry Honig,et al. Identification of a chloride ion binding site in Na+/Cl−-dependent transporters , 2007, Proceedings of the National Academy of Sciences.
[9] L. Forrest,et al. A study of the evolution of inverted-topology repeats from LeuT-fold transporters using AlignMe. , 2010, Biochemistry.
[10] Nicholas P. Vyleta,et al. Evidence for a third sodium-binding site in glutamate transporters suggests an ion/substrate coupling model , 2010, Proceedings of the National Academy of Sciences.
[11] Kay Diederichs,et al. Complete ion-coordination structure in the rotor ring of Na+-dependent F-ATP synthases. , 2009, Journal of molecular biology.
[12] R. Krämer,et al. Cation specificity of osmosensing by the betaine carrier BetP of Corynebacterium glutamicum , 2004, FEBS letters.
[13] Jonathan A. Javitch,et al. Mechanism of chloride interaction with neurotransmitter:sodium symporters , 2007, Nature.
[14] Benoît Roux,et al. Control of ion selectivity in LeuT: two Na+ binding sites with two different mechanisms. , 2008, Journal of molecular biology.
[15] Sergei Yu Noskov,et al. The role of local hydration and hydrogen-bonding dynamics in ion and solute release from ion-coupled secondary transporters. , 2011, Biochemistry.
[16] Lucy R Forrest,et al. The role of trimerization in the osmoregulated betaine transporter BetP , 2011, EMBO reports.
[17] S. Morbach,et al. Osmosensor and Osmoregulator Properties of the Betaine Carrier BetP from Corynebacterium glutamicum in Proteoliposomes* , 2000, The Journal of Biological Chemistry.
[18] Michael Grabe,et al. The mechanism of sodium and substrate release from the binding pocket of vSGLT , 2010, Nature.
[19] Sebastian Radestock,et al. The alternating-access mechanism of MFS transporters arises from inverted-topology repeats. , 2011, Journal of molecular biology.
[20] J. Rosenberg,et al. Water permeation through the sodium-dependent galactose cotransporter vSGLT. , 2010, Biophysical journal.
[21] C. Vonrhein,et al. Molecular basis of transport and regulation in the Na+/betaine symporter BetP , 2009, Nature.
[22] Harel Weinstein,et al. The mechanism of a neurotransmitter:sodium symporter--inward release of Na+ and substrate is triggered by substrate in a second binding site. , 2008, Molecular cell.
[23] Jing Li,et al. Ion-releasing state of a secondary membrane transporter. , 2009, Biophysical journal.
[24] Harel Weinstein,et al. Supporting Material , 2010 .
[25] Michael K Gilson,et al. Protein folding and binding: from biology to physics and back again. , 2011, Current opinion in structural biology.
[26] Lei Shi,et al. Conserved Tyrosine in the First Transmembrane Segment of Solute:Sodium Symporters Is Involved in Na+-coupled Substrate Co-transport* , 2011, The Journal of Biological Chemistry.
[27] Y. Kai,et al. Novel cation‐π interaction revealed by crystal structure of thermoalkalophilic lipase , 2007, Proteins.
[28] Shunsuke Yajima,et al. Structure and Molecular Mechanism of a Nucleobase–Cation–Symport-1 Family Transporter , 2008, Science.
[29] M. Rodgers,et al. Cation-pi interactions with a model for the side chain of tryptophan: structures and absolute binding energies of alkali metal cation-indole complexes. , 2005, The journal of physical chemistry. A.
[30] Li Xie,et al. Mechanism for alternating access in neurotransmitter transporters , 2008, Proceedings of the National Academy of Sciences.
[31] W. Kühlbrandt,et al. Structural basis of Na+-independent and cooperative substrate/product antiport in CaiT , 2010, Nature.
[32] Lin Tang,et al. Crystal structure of the carnitine transporter and insights into the antiport mechanism , 2010, Nature Structural &Molecular Biology.
[33] R. Krämer,et al. Glycine betaine uptake after hyperosmotic shift in Corynebacterium glutamicum , 1995, Journal of bacteriology.
[34] Harel Weinstein,et al. Ion/substrate-dependent conformational dynamics of a bacterial homolog of neurotransmitter:sodium symporters , 2010, Nature Structural &Molecular Biology.
[35] P. Schulz,et al. SSM-based electrophysiology. , 2008, Methods.
[36] D. Hanahan,et al. Differential plasmid rescue from transgenic mouse DNAs into Escherichia coli methylation-restriction mutants. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[37] Emad Tajkhorshid,et al. Modeling and Dynamics of the Inward-Facing State of a Na+/Cl− Dependent Neurotransmitter Transporter Homologue , 2010, PLoS Comput. Biol..
[38] L. Forrest,et al. The rocking bundle: a mechanism for ion-coupled solute flux by symmetrical transporters. , 2009, Physiology.
[39] Laxmikant V. Kalé,et al. Scalable molecular dynamics with NAMD , 2005, J. Comput. Chem..
[40] E. Carpenter,et al. Structure and Molecular Mechanism of a Nucleobase–Cation–Symport-1 Family Transporter , 2008, Science.
[41] Özkan Yildiz,et al. Alternating-access mechanism in conformationally asymmetric trimers of the betaine transporter BetP , 2012, Nature.
[42] L. Forrest,et al. The structural basis of secondary active transport mechanisms. , 2011, Biochimica et biophysica acta.
[43] H. Jayaram,et al. Structure of a Prokaryotic Virtual Proton Pump at 3.2 Å Resolution , 2009, Nature.
[44] Lei Xie,et al. Using multiple structure alignments, fast model building, and energetic analysis in fold recognition and homology modeling , 2003, Proteins.
[45] Jonathan A. Javitch,et al. Substrate-modulated gating dynamics in a Na+-coupled neurotransmitter transporter homolog , 2011, Nature.
[46] G. Gokel,et al. Synthetic receptors as models for alkali metal cation-pi binding sites in proteins. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[47] D. A. Dougherty,et al. The Cationminus signpi Interaction. , 1997, Chemical reviews.
[48] Birgit Schiøtt,et al. Substrate binding and formation of an occluded state in the leucine transporter. , 2008, Biophysical journal.
[49] B Honig,et al. An integrated approach to the analysis and modeling of protein sequences and structures. I. Protein structural alignment and a quantitative measure for protein structural distance. , 2000, Journal of molecular biology.
[50] J. Koch,et al. Regulatory properties and interaction of the C- and N-terminal domains of BetP, an osmoregulated betaine transporter from Corynebacterium glutamicum. , 2008, Biochemistry.
[51] E. Bremer,et al. The osmoprotectant proline betaine is a major substrate for the binding-protein-dependent transport system ProU of Escherichia coli K-12 , 1995, Molecular and General Genetics MGG.
[52] Thomas J. Crisman,et al. Inward-facing conformation of glutamate transporters as revealed by their inverted-topology structural repeats , 2009, Proceedings of the National Academy of Sciences.
[53] Ivet Bahar,et al. The sodium/galactose symporter crystal structure is a dynamic, not so occluded state. , 2010, Molecular bioSystems.
[54] Jonathan A. Javitch,et al. Single-molecule dynamics of gating in a neurotransmitter transporter homolog , 2010, Nature.
[55] D. Cascio,et al. The Crystal Structure of a Sodium Galactose Transporter Reveals Mechanistic Insights into Na+/Sugar Symport , 2008, Science.
[56] R. Krämer,et al. Structural asymmetry in a trimeric Na+/betaine symporter, BetP, from Corynebacterium glutamicum. , 2011, Journal of molecular biology.
[57] J. Lolkema,et al. Structural and mechanistic diversity of secondary transporters. , 2005, Current opinion in microbiology.
[58] Alexandra Hackmann,et al. Role of Ser-340 and Thr-341 in Transmembrane Domain IX of the Na+/Proline Transporter PutP of Escherichia coli in Ligand Binding and Transport* , 2008, Journal of Biological Chemistry.
[59] Benoît Roux,et al. Electrostatics of ion stabilization in a ClC chloride channel homologue from Escherichia coli. , 2004, Journal of molecular biology.
[60] Alexander D. MacKerell,et al. Extending the treatment of backbone energetics in protein force fields: Limitations of gas‐phase quantum mechanics in reproducing protein conformational distributions in molecular dynamics simulations , 2004, J. Comput. Chem..
[61] D. Beglov,et al. Atomic Radii for Continuum Electrostatics Calculations Based on Molecular Dynamics Free Energy Simulations , 1997 .
[62] K. Jung,et al. Function of transmembrane domain IX in the Na+/proline transporter PutP. , 2008, Journal of molecular biology.
[63] Harini Krishnamurthy,et al. X-ray structures of LeuT in substrate-free outward-open and apo inward-open states , 2012, Nature.
[64] Alexander D. MacKerell,et al. Polyunsaturated fatty acids in lipid bilayers: intrinsic and environmental contributions to their unique physical properties. , 2002, Journal of the American Chemical Society.
[65] Milton H. Saier,et al. TCDB: the Transporter Classification Database for membrane transport protein analyses and information , 2005, Nucleic Acids Res..