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  1. 1.   Interactions between immunoglobulin-like and catalytic modules in Clostridium thermocellum cellulosomal cellobiohydrolase CbhA
  2. Kataeva, I. A.; Uversky, V. N.; Brewer, J. M.; Schubot, F.; Rose, J. P.; Wang, B. C.; Ljungdahl, L. G.
  3. Protein Engineering Design & Selection. 2004, NOV; 17(11): 759-769.
  1. 2.   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. 3.   MRNA molecules containing murine leukemia virus packaging signals are encapsidated as dimers
  2. Hibbert, C. S.; Mirro, J.; Rein, A.
  3. Journal of Virology. 2004, OCT; 78(20): 10927-10938.
  1. 4.   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. 5.   Temperature range of thermodynamic stability for the native state of reversible two-state proteins
  2. Kumar, S.; Tsai, C. J.; Nussinov, R.
  3. Biochemistry. 2003 42(17): 4864-4873.
  1. 6.   Protein structure to function via dynamics
  2. Sinha, N.; Smith-Gill, S. J.
  3. Protein and Peptide Letters. 2002 9(5): 367-377.
  1. 7.   How do thermophilic proteins deal with heat?
  2. Kumar, S.; Nussinov, R.
  3. Cellular and Molecular Life Sciences. 2001 58(9): 1216-1233.
  1. 8.   Factors enhancing protein thermostability
  2. Kumar, S.; Tsai, C. J.; Nussinov, R.
  3. Protein Engineering. 2000 13(3): 179-191.
  1. 9.   Electrostatic strengths of salt bridges in thermophilic and mesophilic glutamate dehydrogenase monomers
  2. Kumar, S.; Ma, B. Y.; Tsai, C. J.; Nussinov, R.
  3. Proteins. 2000 38(4): 368-383.
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