Optimal charged mutations in the complementarity-determining regions that prevent domain antibody aggregation are dependent on the antibody scaffold.
暂无分享,去创建一个
Peter M Tessier | P. Tessier | Christine C. Lee | Joseph M Perchiacca | J. M. Perchiacca | Christine C Lee | Joseph M. Perchiacca
[1] D. Brems,et al. Determination of the dipole moments of RNAse SA wild type and a basic mutant , 2012, Proteins: Structure, Function, and Bioinformatics.
[2] Brian Kuhlman,et al. Structure-based design of supercharged, highly thermoresistant antibodies. , 2012, Chemistry & biology.
[3] D. Hoover,et al. DNAWorks: an automated method for designing oligonucleotides for PCR-based gene synthesis. , 2002, Nucleic acids research.
[4] D. Christ,et al. Selection of human VH single domains with improved biophysical properties by phage display. , 2012, Methods in molecular biology.
[5] D. Stock,et al. General strategy for the generation of human antibody variable domains with increased aggregation resistance , 2012, Proceedings of the National Academy of Sciences.
[6] Sandeep Yadav,et al. The influence of charge distribution on self-association and viscosity behavior of monoclonal antibody solutions. , 2012, Molecular pharmaceutics.
[7] C. J. Bond,et al. Comprehensive Analysis of the Factors Contributing to the Stability and Solubility of Autonomous Human VH Domains* , 2008, Journal of Biological Chemistry.
[8] L. Jermutus,et al. Aggregation, stability, and formulation of human antibody therapeutics. , 2011, Advances in protein chemistry and structural biology.
[9] P. Tessier,et al. Engineering aggregation-resistant antibodies. , 2012, Annual review of chemical and biomolecular engineering.
[10] D. Christ,et al. Sequence determinants of protein aggregation in human VH domains. , 2008, Protein engineering, design & selection : PEDS.
[11] B. Finlay,et al. Phage display: applications, innovations, and issues in phage and host biology. , 1998, Canadian journal of microbiology.
[12] J. Sussman,et al. Insights into protein adaptation to a saturated salt environment from the crystal structure of a halophilic 2Fe-2S ferredoxin , 1996, Nature Structural Biology.
[13] J. Tanha,et al. Aggregation-resistant VHs selected by in vitro evolution tend to have disulfide-bonded loops and acidic isoelectric points. , 2008, Protein engineering, design & selection : PEDS.
[14] J. Tanha,et al. Isolation of Monomeric Human VHS by a Phage Selection* , 2005, Journal of Biological Chemistry.
[15] Francesc X. Avilés,et al. AGGRESCAN: a server for the prediction and evaluation of "hot spots" of aggregation in polypeptides , 2007, BMC Bioinform..
[16] P. Tessier,et al. Structure-based design of conformation- and sequence-specific antibodies against amyloid β , 2011, Proceedings of the National Academy of Sciences.
[17] L. James,et al. Crystal structure of HEL4, a soluble, refoldable human V(H) single domain with a germ-line scaffold. , 2004, Journal of molecular biology.
[18] Paul H. Bessette,et al. Efficient folding of proteins with multiple disulfide bonds in the Escherichia coli cytoplasm. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[19] A. Honegger,et al. Engineering antibodies for stability and efficient folding. , 2008, Handbook of experimental pharmacology.
[20] P. Tessier,et al. Aggregation-resistant domain antibodies engineered with charged mutations near the edges of the complementarity-determining regions. , 2012, Protein engineering, design & selection : PEDS.
[21] O. Dym,et al. Structural Features That Stabilize Halophilic Malate Dehydrogenase from an Archaebacterium , 1995, Science.
[22] Alexander D. MacKerell,et al. The structure of aqueous guanidinium chloride solutions. , 2004, Journal of the American Chemical Society.
[23] Julie C. Mitchell,et al. Charge and hydrophobicity patterning along the sequence predicts the folding mechanism and aggregation of proteins: a computational approach. , 2004, Journal of proteome research.
[24] C. Pace,et al. Amino acid contribution to protein solubility: Asp, Glu, and Ser contribute more favorably than the other hydrophilic amino acids in RNase Sa. , 2007, Journal of molecular biology.
[25] Pierre Baldi,et al. SCRATCH: a protein structure and structural feature prediction server , 2005, Nucleic Acids Res..
[26] Peter M Tessier,et al. Mutational analysis of domain antibodies reveals aggregation hotspots within and near the complementarity determining regions , 2011, Proteins.
[27] D. Waugh,et al. Making the most of affinity tags. , 2005, Trends in biotechnology.
[28] C. Pace,et al. Toward a molecular understanding of protein solubility: increased negative surface charge correlates with increased solubility. , 2012, Biophysical journal.
[29] G. Benedek,et al. Aeolotopic interactions of globular proteins. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[30] G. Gilliland,et al. Structure-based engineering of a monoclonal antibody for improved solubility. , 2010, Protein engineering, design & selection : PEDS.
[31] Sachdev S Sidhu,et al. Contributions of CDR3 to V H H domain stability and the design of monobody scaffolds for naive antibody libraries. , 2003, Journal of molecular biology.
[32] Shandar Ahmad,et al. ASAView: Database and tool for solvent accessibility representation in proteins , 2003, BMC Bioinformatics.
[33] L. Riechmann,et al. Single antibody domains as small recognition units: design and in vitro antigen selection of camelized, human VH domains with improved protein stability. , 1996, Protein engineering.
[34] M. Sierks,et al. Physico-chemical determinants of soluble intrabody expression in mammalian cell cytoplasm. , 2010, Protein engineering, design & selection : PEDS.
[35] Shoji Takada,et al. Bimodal protein solubility distribution revealed by an aggregation analysis of the entire ensemble of Escherichia coli proteins , 2009, Proceedings of the National Academy of Sciences.
[36] K. D. Collins,et al. Charge density-dependent strength of hydration and biological structure. , 1997, Biophysical journal.
[37] Bernhardt L. Trout,et al. Design of therapeutic proteins with enhanced stability , 2009, Proceedings of the National Academy of Sciences.
[38] A. Jungbauer,et al. The FLAG peptide, a versatile fusion tag for the purification of recombinant proteins. , 2001, Journal of biochemical and biophysical methods.
[39] J. Cruickshank,et al. The hydration structure of guanidinium and thiocyanate ions: Implications for protein stability in aqueous solution , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[40] Theodore W Randolph,et al. Roles of conformational stability and colloidal stability in the aggregation of recombinant human granulocyte colony‐stimulating factor , 2003, Protein science : a publication of the Protein Society.
[41] P. Schuck,et al. An antibody single-domain phage display library of a native heavy chain variable region: isolation of functional single-domain VH molecules with a unique interface. , 1999, Journal of molecular biology.
[42] L. Silvian,et al. Improving the solubility of anti‐LINGO‐1 monoclonal antibody Li33 by isotype switching and targeted mutagenesis , 2010, Protein science : a publication of the Protein Society.
[43] Sandeep Kumar,et al. Potential aggregation prone regions in biotherapeutics , 2009, mAbs.
[44] Sandeep Kumar,et al. Potential Aggregation-Prone Regions in Complementarity-Determining Regions of Antibodies and Their Contribution Towards Antigen Recognition: A Computational Analysis , 2010, Pharmaceutical Research.
[45] David R. Liu,et al. Supercharging proteins can impart unusual resilience. , 2007, Journal of the American Chemical Society.
[46] Steven J Shire,et al. Formulation and manufacturability of biologics. , 2009, Current opinion in biotechnology.
[47] F. Studier,et al. Protein production by auto-induction in high density shaking cultures. , 2005, Protein expression and purification.
[48] Steven J. Shire,et al. Establishing a Link Between Amino Acid Sequences and Self-Associating and Viscoelastic Behavior of Two Closely Related Monoclonal Antibodies , 2011, Pharmaceutical Research.
[49] Bernhardt L Trout,et al. Computational methods to predict therapeutic protein aggregation. , 2012, Methods in molecular biology.
[50] Irwin D. Kuntz,et al. Hydration of macromolecules. III. Hydration of polypeptides , 1971 .
[51] Silvio C. E. Tosatto,et al. The PASTA server for protein aggregation prediction. , 2007, Protein engineering, design & selection : PEDS.
[52] D. W. Bolen,et al. Unfolding free energy changes determined by the linear extrapolation method. 1. Unfolding of phenylmethanesulfonyl alpha-chymotrypsin using different denaturants. , 1988, Biochemistry.
[53] L. Serrano,et al. A comparative study of the relationship between protein structure and beta-aggregation in globular and intrinsically disordered proteins. , 2004, Journal of molecular biology.
[54] P. T. Jones,et al. Binding activities of a repertoire of single immunoglobulin variable domains secreted from Escherichia coli , 1989, Nature.
[55] Paul Labute,et al. Calibrative approaches to protein solubility modeling of a mutant series using physicochemical descriptors , 2010, J. Comput. Aided Mol. Des..
[56] Sergey Lyskov,et al. Alternative Computational Protocols for Supercharging Protein Surfaces for Reversible Unfolding and Retention of Stability , 2013, PloS one.
[57] David Eisenberg,et al. Identifying the amylome, proteins capable of forming amyloid-like fibrils , 2010, Proceedings of the National Academy of Sciences.
[58] T. Clackson,et al. Making antibody fragments using phage display libraries , 1991, Nature.
[59] J. Tanha,et al. Selection of non-aggregating VH binders from synthetic VH phage-display libraries. , 2009, Methods in molecular biology.
[60] G. Winter,et al. Aggregation-resistant domain antibodies selected on phage by heat denaturation , 2004, Nature Biotechnology.
[61] N. Greenfield. Using circular dichroism collected as a function of temperature to determine the thermodynamics of protein unfolding and binding interactions , 2006, Nature Protocols.