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  1. 1.   CT-707 overcomes hypoxia-mediated sorafenib resistance in Hepatocellular carcinoma by inhibiting YAP signaling
  2. Chen,Zibo; Yuan, Tao; Yan, Fangjie; Ye, Song; Xie, Qin; Zhang, Bo; Lin, Nengmin; He, Qiaojun; Yang, Bo; Zhu, Hong
  3. BMC Cancer. 2022, Apr 19; 22(1): 425.
  1. 2.   Cell-Free DNA Next-Generation Sequencing Prediction of Response and Resistance to Third-Generation EGFR Inhibitor
  2. Helman, Elena; Nguyen, Minh; Karlovich, Chris; Despain, Darrin; Choquette, A Karin; Spira, Alexander I; Yu, Helena A; Camidge, D Ross; Harding, Thomas C; Lanman, Richard B; Simmons, Andrew D
  3. Clinical lung cancer. 2018, Nov; 19(6): 518-530.e7.
  1. 3.   Examining the ribonuclease H primer grip of HIV-1 reverse transcriptase by charge neutralization of RNA/DNA hybrids
  2. Dash, C.; Scarth, B. J.; Badorrek, C.; Gotte, M.; Le Grice, S.
  3. Nucleic Acids Research. 2008 36(20): 6363-6371.
  1. 4.   Examining interactions of HIV-1 reverse transcriptase with single-stranded template nucleotides by nucleoside analog interference
  2. Dash, C.; Fisher, T. S.; Prasad, V. R.; Le Grice, S. F. J.
  3. Journal of Biological Chemistry. 2006, Sep; 281(38): 27873-27881.
  1. 5.   T7 lytic phage-displayed peptide libraries exhibit less sequence bias than M13 filamentous phage-displayed peptide libraries
  2. Krumpe, L. R. H.; Atkinson, A. J.; Smythers, G. W.; Kandel, A.; Schumacher, K. M.; McMahon, J. B.; Makowski, L.; Mori, T.
  3. Proteomics. 2006, Aug; 6(15): 4210-4222.
  1. 6.   High-sensitivity bacterial detection using biotin-tagged phage and quantum-dot nanocomplexes
  2. Edgar, R.; McKinstry, M.; Hwang, J.; Oppenheim, A. B.; Fekete, R. A.; Giulian, G.; Merril, C.; Nagashima, K.; Adhya, S.
  3. Proceedings of the National Academy of Sciences of the United States of America. 2006, Mar; 103(13): 4841-4845.
  1. 7.   The use of phage-displayed peptide libraries to develop tumor-targeting drugs
  2. Krumpe, L. R. H.; Mori, T.
  3. International Journal of Peptide Research and Therapeutics. 2006, Mar; 12(1): 79-91.
  1. 8.   Enhanced soluble protein expression using two new fusion tags
  2. Chatterjee, D. K.; Esposito, D.
  3. Protein Expression and Purification. 2006, MAR; 46(1): 122-129.
  1. 10.   Using pyrrolo-deoxycytosine to probe RNA/DNA hybrids containing the human immunodeficiency virus type-1 3 ' polypurine tract
  2. Dash, C.; Rausch, J. W.; Le Grice, S. F. J.
  3. Nucleic Acids Research. 2004 32(4): 1539-1547.
  1. 11.   A novel cell-free protein synthesis system
  2. Sitaraman, K.; Esposito, D.; Klarmann, G.; Le Grice, S. F.; Hartley, J. L.; Chatterjee, D. K.
  3. Journal of Biotechnology. 2004 110(3): 257-263.
  1. 12.   Discovery of a stable dimeric mutant of cyanovirin-N (CV-N) from a T7 phage-displayed CV-N mutant library
  2. Han, Z. Z.; Xiong, C. Y.; Mori, T.; Boyd, M. R.
  3. Biochemical and Biophysical Research Communications. 2002 292(4): 1036-1043.
  1. 14.   Multiple antiviral activities of cyanovirin-N: Blocking of human immunodeficiency virus type 1 gp120 interaction with CD4 and coreceptor and inhibition of diverse enveloped viruses
  2. Dey, B.; Lerner, D. L.; Lusso, P.; Boyd, M. R.; Elder, J. H.; Berger, E. A.
  3. Journal of Virology. 2000 74(10): 4562-4569.
  1. 15.   Genetic Uncoupling of the Dsrna-Binding and Rna Cleavage Activities of the Escherichia Coli Endoribonuclease Rnase Iii - the Effect of Dsrna Binding On Gene Expression
  2. Dasgupta, S.; Fernandez, L.; Kameyama, L.; Inada, T.; Nakamura, Y.; Pappas, A.; Court, D. L.
  3. Molecular Microbiology. 1998 28(3): 629-640.
  1. 16.   Cotranscriptional Production of Chemically Modified RNA Nanoparticles.
  2. Kireeva, Maria; Afonin, Kirill A; Shapiro, Bruce; Kashlev, Mikhail
  3. Methods in molecular biology (Clifton, N.J.). 2017 1632: 91-105.
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