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  1. 1.   A robust fluorogenic substrate for chikungunya virus protease (nsP2) activity
  2. Makhaik, Sparsh; Rut, Wioletta; Choudhary, Shruti; Upadhyay, Tulsi; Hao, Chenzhou; Westberg, Michael; Bobst, Cedric; Yoo,Euna; Fejzo, Jasna; Lin, Michael Z; Bogyo, Matthew; Thompson, Paul; Drag, Marcin; Hardy, Jeanne A
  3. Protein Science : a publication of the Protein Society. 2025, Mar; 34(3): e70069.
  1. 2.   Human Immunodeficiency Virus Type 1 Gag Polyprotein Modulates Membrane Physical Properties like a Surfactant: Potential Implications for Virus Assembly
  2. Denieva, Zaret G; Kuzmin, Peter I; Galimzyanov, Timur R; Datta,Siddhartha; Rein,Alan; Batishchev, Oleg V
  3. ACS Infectious Diseases. 2024, Jun 25;
  1. 3.   SARS-CoV-2 polyprotein substrate regulates the stepwise Mpro cleavage reaction
  2. Narwal, Manju; Armache, Jean-Paul; Edwards,Thomas; Murakami, Katsuhiko S
  3. The Journal of Biological Chemistry. 2023, Apr 10; 299(5): 104697.
  1. 4.   Crystal Structure of a Retroviral Polyprotein: Prototype Foamy Virus Protease-Reverse Transcriptase (PR-RT)
  2. Harrison, Jerry Joe E K; Tuske, Steve; Das, Kalyan; Ruiz, Francesc X; Bauman, Joseph D; Boyer,Paul; DeStefano, Jeffrey J; Hughes,Stephen; Arnold, Eddy
  3. Viruses. 2021, Aug; 13(8):
  1. 5.   Foamy Retrovirus Integrase Contains a Pol Dimerization Domain Required for Protease Activation
  2. Lee, E. G.; Roy, J.; Jackson, D.; Clark, P.; Boyer, P. L.; Hughes, S. H.; Linial, M. L.
  3. Journal of Virology. 2011, Feb; 85(4): 1655-1661.
  1. 6.   Highly conserved serine residue 40 in HIV-1 p6 regulates capsid processing and virus core assembly
  2. Votteler, J.; Neumann, L.; Hahn, S.; Hahn, F.; Rauch, P.; Schmidt, K.; Studtrucker, N.; Solbak, S. M. O.; Fossen, T.; Henklein, P.; Ott, D. E.; Holl, G.; Bannert, N.; Schubert, U.
  3. Retrovirology. 2011, Feb; 8: 16.
  1. 7.   HIV-1 Gag Extension: Conformational Changes Require Simultaneous Interaction with Membrane and Nucleic Acid
  2. Datta, S. A. K.; Heinrich, F.; Raghunandan, S.; Krueger, S.; Curtis, J. E.; Rein, A.; Nanda, H.
  3. Journal of Molecular Biology. 2011, Feb; 406(2): 205-214.
  1. 8.   Structural determinants of tobacco vein mottling virus protease substrate specificity
  2. Sun, P.; Austin, B. P.; Tozser, J.; Waugh, D. S.
  3. Protein Science. 2010, Nov; 19(11): 2240-2251.
  1. 9.   The capsid-spacer peptide 1 Gag processing intermediate is a dominant-negative inhibitor of HIV-1 maturation
  2. Checkley, M. A.; Luttge, B. G.; Soheilian, F.; Nagashima, K.; Freed, E. O.
  3. Virology. 2010, Apr; 400(1): 137-144.
  1. 10.   Polymorphisms in Gag spacer peptide 1 confer varying levels of resistance to the HIV-1 maturation inhibitor bevirimat
  2. Adamson, C. S.; Sakalian, M.; Salzwedel, K.; Freed, E. O.
  3. Retrovirology. 2010, Apr; 7: 8.
  1. 11.   Features, processing states and heterologous protein interactions in the modulation of the retroviral nucleocapsid protein function
  2. Mirambeau, G.; Lyonnais, S.; Gorelick, R. J.
  3. Rna Biology. 2010, Nov-Dec; 7(6): 724-734.
  1. 13.   The interaction of APOBEC3G with human immunodeficiency virus type 1 nucleocapsid inhibits tRNA(3)(Lys) annealing to viral RNA
  2. Guo, F.; Cen, S.; Niu, M. J.; Yang, Y. L.; Gorelick, R. J.; Kleiman, L.
  3. Journal of Virology. 2007, Oct; 81(20): 11322-11331.
  1. 14.   Molecular mechanisms of simian immunodeficiency virus SIVagm RNA encapsidation
  2. Fu, W.; Prasad, V.; Chen, J. B.; Nikolaitchik, O.; Hu, W. S.
  3. Virology. 2007, Jun; 363(1): 210-219.
  1. 15.   In vitro resistance to the human immunodeficiency virus type 1 maturation inhibitor PA-457 (Bevirimat)
  2. Adamson, C. S.; Ablan, S. D.; Boeras, I.; Goila-Gaur, R.; Soheilian, F.; Nagashima, K.; Li, F.; Salzwedel, K.; Sakalian, M.; Wild, C. T.; Freed, E. O.
  3. Journal of Virology. 2006, Nov; 80(22): 10957-10971.
  1. 16.   Effects of mutations in the human immunodeficiency virus type 1 gag gene on RNA packaging and recombination
  2. Nikolaitchik, O.; Rhodes, T. D.; Ott, D.; Hu, W. S.
  3. Journal of Virology. 2006, MAY; 80(10): 4691-4697.
  1. 17.   Characterization of the murine leukemia virus protease and its comparison with the human immunodeficiency virus type 1 protease
  2. Feher, A.; Boross, P.; Sperka, T.; Miklossy, G.; Kadas, J.; Bagossi, P.; Oroszlan, S.; Weber, I. T.; Tozser, J.
  3. Journal of General Virology. 2006, May; 87: 1321-1330.
  1. 18.   Synthesis, processing, and composition of the virion-associated HTLV-1 reverse transcriptase
  2. Mitchell, M. S.; Tozser, J.; Princler, G.; Lloyd, P. A.; Auth, A.; Derse, D.
  3. Journal of Biological Chemistry. 2006, FEB 17; 281(7): 3964-3971.
  1. 19.   Nucleic acid binding and chaperone properties of HIV-1 Gag and nucleocapsid proteins
  2. Cruceanu, M.; Urbaneja, M. A.; Hixson, C. V.; Johnson, D. G.; Datta, S. A.; Fivash, M. J.; Stephen, A. G.; Fisher, R. J.; Gorelick, R. J.; Casas-Finet, J. R.; Rein, A.; Rouzina, I.; Williams, M. C.
  3. Nucleic Acids Research. 2006 34(2): 593-605.
  1. 21.   Redundant roles for nucleocapsid and matrix RNA-binding sequences in human immunodeficiency virus type 1 assembly
  2. Ott, D. E.; Coren, L. V.; Gagliardi, T. D.
  3. Journal of Virology. 2005, NOV; 79(22): 13839-13847.
  1. 22.   Comparison of the substrate specificity of two potyvirus proteases
  2. Tozser, J.; Tropea, J. E.; Cherry, S.; Bagossi, P.; Copeland, T.; Wlodawer, A.; Waugh, D. S.
  3. Febs Journal. 2005, JAN; 272(2): 514-523.
  1. 23.   Cooperative effect of Gag proteins p12 and capsid during early events of murine leukemia virus replication
  2. Lee, S. K.; Nagashima, K.; Hu, W. S.
  3. Journal of Virology. 2005 79(7): 4159-4169.
  1. 24.   Role of murine leukemia virus nucleocapsid protein in virus assembly
  2. Muriaux, D.; Costes, S.; Nagashima, K.; Mirro, J.; Cho, E.; Lockett, S.; Rein, A.
  3. Journal of Virology. 2004, NOV; 78(22): 12378-12385.
  1. 25.   Late domain-dependent inhibition of equine infectious anemia virus budding
  2. Miranda, S. X.; Ablan, S.; Demirov, D. G.; Chen, C. P.; Montelaro, R. C.; Freed, E. O.
  3. Journal of Virology. 2004 78(2): 724-732.
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