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  1. 1.   Symmetry-Based Self-assembled Nanotubes Constructed Using Native Protein Structures: The Key Role of Flexible Linkers
  2. Buch, I.; Tsai, C. J.; Wolfson, H. J.; Nussinov, R.
  3. Protein and Peptide Letters. 2011, Apr; 18(4): 362-372.
  1. 2.   Principles of nanostructure design with protein building blocks
  2. Tsai, C. J.; Zheng, J.; Zanuy, D.; Haspel, N.; Wolfson, H.; Aleman, C.; Nussinov, R.
  3. Proteins-Structure Function and Bioinformatics. 2007, Jul; 68(1): 1-12.
  1. 3.   Combinatorial docking approach for structure prediction of large proteins and multi-molecular assemblies
  2. Inbar, Y.; Benyamini, H.; Nussinov, R.; Wolfson, H. J.
  3. Physical Biology. 2005, DEC; 2(4, Sp. Iss.): S156-S165.
  1. 4.   Engineering DNA topology with locked nucleosides: A structural study
  2. Maderia, M.; Wu, J.; Bax, A.; Shenoy, S.; O'Keefe, B.; Marquez, V. E.; Barchi, J. J.
  3. Nucleosides Nucleotides & Nucleic Acids. 2005 24(5-7, Sp. Iss.): 687-690.
  1. 5.   In silico protein design by combinatorial assembly of protein building blocks
  2. Tsai, H. H.; Tsai, C. J.; Ma, B. Y.; Nussinov, R.
  3. Protein Science. 2004, OCT; 13(10): 2753-2765.
  1. 6.   Tuning spectral properties of fullerenes by substitutional doping
  2. Xie, R. H.; Bryant, G. W.; Sun, G. Y.; Kar, T.; Chen, Z. F.; Smith, V. H.; Araki, Y.; Tagmatarchis, N.; Shinohara, H.; Ito, O.
  3. Physical Review B. 2004 69(20, Art. No. 201403):
  1. 7.   Reducing the computational complexity of protein folding via fragment folding and assembly
  2. Haspel, N.; Tsai, C. J.; Wolfson, H.; Nussinov, R.
  3. Protein Science. 2003 12(6): 1177-1187.
  1. 8.   Hierarchical protein folding pathways: A computational study of protein fragments
  2. Haspel, N.; Tsai, C. J.; Wolfson, H.; Nussinov, R.
  3. Proteins-Structure Function and Genetics. 2003 51(2): 203-215.
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