A Systematic Comparison of Free and Bound Antibodies Reveals Binding-Related Conformational Changes
暂无分享,去创建一个
Yanay Ofran | Shahar Alon | Inbal Sela-Culang | Inbal Sela-Culang | Y. Ofran | S. Alon | Yanay Ofran | Shahar Alon
[1] Marie-Paule Lefranc,et al. IMGT/3Dstructure-DB and IMGT/DomainGapAlign: a database and a tool for immunoglobulins or antibodies, T cell receptors, MHC, IgSF and MhcSF , 2009, Nucleic Acids Res..
[2] M. Turner,et al. Human constant regions influence the antibody binding characteristics of mouse‐human chimeric IgG subclasses , 1996, Immunology.
[3] W. Kabsch,et al. Dictionary of protein secondary structure: Pattern recognition of hydrogen‐bonded and geometrical features , 1983, Biopolymers.
[4] N. Greenspan,et al. Role of heavy chain constant domains in antibody-antigen interaction. Apparent specificity differences among streptococcal IgG antibodies expressing identical variable domains. , 1993, Journal of immunology.
[5] P. Colman,et al. Structure of antibody-antigen complexes: implications for immune recognition. , 1988, Advances in immunology.
[6] A. Casadevall,et al. Isotype Can Affect the Fine Specificity of an Antibody for a Polysaccharide Antigen1 , 2002, The Journal of Immunology.
[7] Jeffrey J. Gray,et al. RosettaAntibody: antibody variable region homology modeling server , 2009, Nucleic Acids Res..
[8] L. Cavacini,et al. Expression and functional activity of isotype and subclass switched human monoclonal antibody reactive with the base of the V3 loop of HIV-1 gp120. , 2003, AIDS research and human retroviruses.
[9] I. Wilson,et al. Antigen-induced conformational changes in antibodies: a problem for structural prediction and design. , 1994, Trends in biotechnology.
[10] Todd O. Yeates,et al. Why protein crystals favour some space-groups over others , 1995, Nature Structural Biology.
[11] Masayuki Oda,et al. Evidence of allosteric conformational changes in the antibody constant region upon antigen binding. , 2003, International immunology.
[12] I. Roterman,et al. The Indirect Generation of Long‐distance Structural Changes in Antibodies upon their Binding to Antigen , 2006, Chemical biology & drug design.
[13] A. Casadevall,et al. Circular Dichroism reveals evidence of coupling between immunoglobulin constant and variable region secondary structure. , 2010, Molecular immunology.
[14] P E Bourne,et al. Protein structure alignment by incremental combinatorial extension (CE) of the optimal path. , 1998, Protein engineering.
[15] Marie-Paule Lefranc,et al. IMGT/3Dstructure-DB and IMGT/StructuralQuery, a database and a tool for immunoglobulin, T cell receptor and MHC structural data , 2004, Nucleic Acids Res..
[16] Kengo Kinoshita,et al. Domain distribution and intrinsic disorder in hubs in the human protein–protein interaction network , 2010, Protein science : a publication of the Protein Society.
[17] Haruki Nakamura,et al. Structural classification of CDR‐H3 revisited: A lesson in antibody modeling , 2008, Proteins.
[18] R L Stanfield,et al. Antibody-antigen interactions: new structures and new conformational changes. , 1994, Current opinion in structural biology.
[19] Jinyan Li,et al. Antibody-Specified B-Cell Epitope Prediction in Line with the Principle of Context-Awareness , 2011, IEEE/ACM Transactions on Computational Biology and Bioinformatics.
[20] A. Casadevall,et al. The immunoglobulin constant region contributes to affinity and specificity. , 2008, Trends in immunology.
[21] E. Padlan,et al. Anatomy of the antibody molecule. , 1994, Molecular immunology.
[22] Geoffrey J. Barton,et al. Jalview Version 2—a multiple sequence alignment editor and analysis workbench , 2009, Bioinform..
[23] B. Silverman,et al. Using molecular principal axes for structural comparison: determining the tertiary changes of a FAB antibody domain induced by antigenic binding , 2007, BMC Structural Biology.
[24] B. Rost,et al. Automated Identification of Complementarity Determining Regions (CDRs) Reveals Peculiar Characteristics of CDRs and B Cell Epitopes1 , 2008, The Journal of Immunology.
[25] M. Buckle,et al. Can immunoglobulin C(H)1 constant region domain modulate antigen binding affinity of antibodies? , 1996, The Journal of clinical investigation.
[26] Andrew C. R. Martin,et al. Analysis and prediction of VH/VL packing in antibodies. , 2010, Protein engineering, design & selection : PEDS.
[27] Mayuko Takeda-Shitaka,et al. Interaction between the antigen and antibody is controlled by the constant domains: Normal mode dynamics of the HEL–HyHEL‐10 complex , 2003, Protein science : a publication of the Protein Society.
[28] A. Casadevall,et al. The Immunoglobulin Heavy Chain Constant Region Affects Kinetic and Thermodynamic Parameters of Antibody Variable Region Interactions with Antigen* , 2007, Journal of Biological Chemistry.
[29] B. Rode,et al. Ligand-induced domain movement in an antibody Fab: molecular dynamics studies confirm the unique domain movement observed experimentally for Fab NC6.8 upon complexation and reveal its segmental flexibility. , 1998, Journal of molecular biology.
[30] P. Labute,et al. Antibody modeling assessment , 2011, Proteins.
[31] Thomas L. Madden,et al. Gapped BLAST and PSI-BLAST: a new generation of protein database search programs. , 1997, Nucleic acids research.
[32] I. Wilson,et al. Detailed analysis of the free and bound conformations of an antibody. X-ray structures of Fab 17/9 and three different Fab-peptide complexes. , 1993, Journal of molecular biology.
[33] R. Poljak,et al. Structural features of the reactions between antibodies and protein antigens , 1995, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[34] Julie D Thompson,et al. Multiple Sequence Alignment Using ClustalW and ClustalX , 2003, Current protocols in bioinformatics.
[35] J. Tainer,et al. Unraveling the effect of changes in conformation and compactness at the antibody VL‐VH interface upon antigen binding , 1999, Journal of molecular recognition : JMR.
[36] P. Alzari,et al. Can isotype switch modulate antigen‐binding affinity and influence clonal selection? , 2000, European journal of immunology.
[37] L. Lopalco,et al. Isotype modulates epitope specificity, affinity, and antiviral activities of anti–HIV-1 human broadly neutralizing 2F5 antibody , 2012, Proceedings of the National Academy of Sciences.
[38] Jeffrey J. Gray,et al. SnugDock: Paratope Structural Optimization during Antibody-Antigen Docking Compensates for Errors in Antibody Homology Models , 2010, PLoS Comput. Biol..
[39] J. Albar,et al. Structural requirements of rabbit IgG F(ab')2 fragment for activation of the complement system through the alternative pathway--I. Disulfide bonds. , 1981, Molecular immunology.
[40] S. Smith‐Gill,et al. Three-dimensional structures of the free and antigen-bound Fab from monoclonal antilysozyme antibody HyHEL-63(,). , 2000, Biochemistry.
[41] Ozlem Keskin,et al. Binding induced conformational changes of proteins correlate with their intrinsic fluctuations: a case study of antibodies , 2007, BMC Structural Biology.
[42] A. Casadevall,et al. Isothermal Titration Calorimetry Reveals Differential Binding Thermodynamics of Variable Region-identical Antibodies Differing in Constant Region for a Univalent Ligand* , 2008, Journal of Biological Chemistry.
[43] P. Argos,et al. Knowledge‐based protein secondary structure assignment , 1995, Proteins.
[44] Soila Sukupolvi-Petty,et al. Dengue virus neutralization is modulated by IgG antibody subclass and Fcgamma receptor subtype. , 2009, Virology.
[45] Herman W. T. van Vlijmen,et al. Trends in Antibody Sequence Changes during the Somatic Hypermutation Process , 2006, The Journal of Immunology.
[46] I. Wilson,et al. Structural analysis of antibody specificity. Detailed comparison of five Fab'-steroid complexes. , 1994, Journal of molecular biology.
[47] Geoffrey J. Barton,et al. The Jalview Java alignment editor , 2004, Bioinform..
[48] F. J. Luque,et al. Protein flexibility and ligand recognition: challenges for molecular modeling. , 2011, Current topics in medicinal chemistry.
[49] R. Nussinov,et al. How different are structurally flexible and rigid binding sites? Sequence and structural features discriminating proteins that do and do not undergo conformational change upon ligand binding. , 2007, Journal of molecular biology.
[50] Dan S. Tawfik,et al. Antibody Multispecificity Mediated by Conformational Diversity , 2003, Science.
[51] J. N. Varghese,et al. Three-dimensional structure of a complex of antibody with influenza virus neuraminidase , 1987, Nature.
[52] T. Michaelsen,et al. Binding properties and anti-bacterial activities of V-region identical, human IgG and IgM antibodies, against group B Neisseria meningitidis. , 2003, Biochemical Society transactions.
[53] Benjamin D. Sellers,et al. Energy-based analysis and prediction of the orientation between light- and heavy-chain antibody variable domains. , 2009, Journal of molecular biology.
[54] Vladimir N Uversky,et al. Local Flexibility in Molecular Function Paradigm* , 2006, Molecular & Cellular Proteomics.
[55] Tanja Kortemme,et al. Multi‐constraint computational design suggests that native sequences of germline antibody H3 loops are nearly optimal for conformational flexibility , 2009, Proteins.
[56] K. Pritchard,et al. Heat Shock Protein 90 Mediates the Balance of Nitric Oxide and Superoxide Anion from Endothelial Nitric-oxide Synthase* , 2001, The Journal of Biological Chemistry.
[57] A. Casadevall,et al. Variable-Region-Identical Antibodies Differing in Isotype Demonstrate Differences in Fine Specificity and Idiotype1 , 2005, The Journal of Immunology.
[58] Anna Tramontano,et al. The association of heavy and light chain variable domains in antibodies: implications for antigen specificity , 2011, The FEBS journal.
[59] L Vidarte,et al. Serine 132 is the C3 covalent attachment point on the CH1 domain of human IgG1. , 2001, The Journal of biological chemistry.
[60] S. Pincus,et al. Effect of H chain V region on complement activation by immobilized immune complexes. , 1992, Journal of immunology.
[61] Marie-Paule Lefranc,et al. IMGT , the international ImMunoGeneTics information system , 2003 .