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  1. 1.   Understanding antibody-antigen associations by molecular dynamics simulations: Detection of important intra- and inter-molecular salt bridges
  2. Sinha, N.; Li, Y. L.; Lipschultz, C. A.; Smith-Gill, S. J.
  3. Cell Biochemistry and Biophysics. 2007 47(3): 361-375.
  1. 2.   Crosstalk between chemokines and neuronal receptors bridges immune and nervous systems
  2. Zhang, N.; Oppenheim, J. J.
  3. Journal of Leukocyte Biology. 2005, DEC; 78(6): 1210-1214.
  1. 3.   Reconstruction of the conserved beta-bulge in mammalian defensins using D-amino acids
  2. Xie, C.; Prahl, A.; Ericksen, B.; Wu, Z. B.; Zeng, P. Y.; Li, X. Q.; Lu, W. Y.; Lubkowski, J.; Lu, W. Y.
  3. Journal of Biological Chemistry. 2005, SEP 23; 280(38): 32921-32929.
  1. 4.   Crystal structure of cockroach allergen Bla g 2, an unusual zinc binding aspartic protease with a novel mode of self-inhibition
  2. Gustchina, A.; Li, M.; Wunschmann, S.; Chapman, M. D.; Pomes, A.; Wlodawer, A.
  3. Journal of Molecular Biology. 2005, APR 29; 348(2): 433-444.
  1. 5.   Experiment-guided thermodynamic simulations on reversible two-state proteins: implications for protein thermostability
  2. Kumar, S.; Nussinov, R.
  3. Biophysical Chemistry. 2004, NOV 1; 111(3): 235-246.
  1. 6.   Different roles of electrostatics in heat and in cold: Adaptation by citrate synthase
  2. Kumar, S.; Nussinov, R.
  3. Chembiochem. 2004 5(3): 280-290.
  1. 7.   Structure of the scorpion toxin BmBKTtx1 solved from single wavelength anomalous scattering of sulfur
  2. Szyk, A.; Lu, W. Y.; Xu, C. Q.; Lubkowski, J.
  3. Journal of Structural Biology. 2004 145(3): 289-294.
  1. 9.   Dissection of binding interactions in the complex between the anti-lysozyme antibody HyHEL-63 and its antigen
  2. Li, Y. L.; Urrutia, M.; Smith-Gill, S. J.; Mariuzza, R. A.
  3. Biochemistry. 2003 42(1): 11-22.
  1. 10.   Differences in electrostatic properties at antibody-antigen binding sites: Implications for specificity and cross- reactivity
  2. Sinha, N.; Mohan, S.; Lipschultz, C. A.; Smith-Gill, S. J.
  3. Biophysical Journal. 2002 83(6): 2946-2968.
  1. 11.   Relationship between ion pair geometries and electrostatic strengths in proteins
  2. Kumar, S.; Nussinov, R.
  3. Biophysical Journal. 2002 83(3): 1595-1612.
  1. 12.   Protein structure to function via dynamics
  2. Sinha, N.; Smith-Gill, S. J.
  3. Protein and Peptide Letters. 2002 9(5): 367-377.
  1. 13.   Close-range electrostatic interactions in proteins
  2. Kumar, S.; Nussinov, R.
  3. Chembiochem. 2002 3(7): 604-617.
  1. 14.   Electrostatics in protein binding and function
  2. Sinha, N.; Smith-Gill, S. J.
  3. Current Protein & Peptide Science. 2002 3(6): 601-614.
  1. 15.   Fluctuations in ion pairs and their stabilities in proteins
  2. Kumar, S.; Nussinov, R.
  3. Proteins-Structure Function and Genetics. 2001 43(4): 433-454.
  1. 16.   Thermodynamic differences among homologous thermophilic and mesophilic proteins
  2. Kumar, S.; Tsai, C. J.; Nussinov, R.
  3. Biochemistry. 2001 40(47): 14152-14165.
  1. 17.   Interdomain interactions in hinge-bending transitions
  2. Sinha, N.; Kumar, S.; Nussinov, R.
  3. Structure. 2001 9(12): 1165-1181.
  1. 18.   How do thermophilic proteins deal with heat?
  2. Kumar, S.; Nussinov, R.
  3. Cellular and Molecular Life Sciences. 2001 58(9): 1216-1233.
  1. 19.   Fluctuations between stabilizing and destabilizing electrostatic contributions of ion pairs in conformers of the c-Myc-Max leucine zipper
  2. Kumar, S.; Nussinov, R.
  3. Proteins-Structure Function and Genetics. 2000 41(4): 485-497.
  1. 20.   Protein Binding Versus Protein Folding - the Role of Hydrophilic Bridges in Protein Associations
  2. Xu, D.; Lin, S. L.; Nussinov, R.
  3. Journal of Molecular Biology. 1997 265(1): 68-84.
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