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  1. 1.   The elongation rate of RNA polymerase determines the fate of transcribed nucleosomes
  2. Bintu, L.; Kopaczynska, M.; Hodges, C.; Lubkowska, L.; Kashlev, M.; Bustamante, C.
  3. Nature Structural & Molecular Biology. 2011, Dec; 18(12): 1394-U112.
  1. 2.   Conformational coupling, bridge helix dynamics and active site dehydration in catalysis by RNA polymerase
  2. Seibold, S. A.; Singh, B. N.; Zhang, C. F.; Kireeva, M.; Domecq, C.; Bouchard, A.; Nazione, A. M.; Feig, M.; Cukier, R. I.; Coulombe, B.; Kashlev, M.; Hampsey, M.; Burton, Z. F.
  3. Biochimica Et Biophysica Acta-Gene Regulatory Mechanisms. 2010, Aug; 1799(8): 575-587.
  1. 3.   Synergistic action of RNA polymerases in overcoming the nucleosomal barrier
  2. Jin, J.; Bai, L.; Johnson, D. S.; Fulbright, R. M.; Kireeva, M. L.; Kashlev, M.; Wang, M. D.
  3. Nature Structural & Molecular Biology. 2010, Jun; 17(6): 745-U122.
  1. 4.   Translocation by multi-subunit RNA polymerases
  2. Kireeva, M.; Kashlev, M.; Burton, Z. F.
  3. Biochimica Et Biophysica Acta-Gene Regulatory Mechanisms. 2010, May-Jun; 1799(5-6): 389-401.
  1. 5.   Mechanism of sequence-specific pausing of bacterial RNA polymerase
  2. Kireeva, M. L.; Kashlev, M.
  3. Proceedings of the National Academy of Sciences of the United States of America. 2009 106(22): 8900-8905.
  1. 6.   Transcription through the nucleosome by mRNA-producing RNA polymerases
  2. Walter, W.; Kashlev, M.; Studitsky, V. M.
  3. CHROMATIN AND CHROMATIN REMODELING ENZYMES, PT C. 2004; 377 : 445-460.
  1. 7.   Chromatin remodeling by RNA polymerases
  2. Studitsky, V. M.; Walter, W.; Kireeva, M.; Kashlev, M.; Felsenfeld, G.
  3. Trends in Biochemical Sciences. 2004 29(3): 127-135.
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