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  1. 1.   The Metabolic Basis of Kidney Cancer
  2. Linehan, W. Marston; Schmidt,Laura; Crooks, Daniel R.; Wei, Darmood; Srinivasan, Ramaprasad; Lang, Martin; Ricketts, Christopher J.
  3. Cancer discovery. 2019, AUG; 9(8): 1006-1021.
  1. 2.   HECT and RING finger families of E3 ubiquitin ligases at a glance
  2. Metzger, M. B.; Hristova, V. A.; Weissman, A. M.
  3. Journal of Cell Science. 2012, Feb; 125(3): 531-537.
  1. 3.   Preferred drifting along the DNA major groove and cooperative anchoring of the p53 core domain: mechanisms and scenarios
  2. Pan, Y. P.; Nussinov, R.
  3. Journal of Molecular Recognition. 2010, Mar-Apr; 23(2): 232-240.
  1. 5.   Targeting the ubiquitin-proteasome system for cancer therapy
  2. Yang, Y. L.; Kitagaki, J.; Wang, H.; Hou, D. X.; Perantoni, A. O.
  3. Cancer Science. 2009 100(1): 24-28.
  1. 6.   Allosteric effects in the marginally stable von Hippel-Lindau tumor suppressor protein and allostery-based rescue mutant design
  2. Liu, J.; Nussinov, R.
  3. Proceedings of the National Academy of Sciences of the United States of America. 2008 105(3): 901-906.
  1. 7.   P53-induced DNA bending: The interplay between p53-ONA and p53-p53 interactions
  2. Pan, Y. P.; Nussinov, R.
  3. Journal of Physical Chemistry B. 2008 112(21): 6716-6724.
  1. 8.   Cataloging and organizing p73 interactions in cell cycle arrest and apoptosis
  2. Tozluoglu, M.; Karaca, E.; Haliloglu, T.; Nussinov, R.
  3. Nucleic Acids Research. 2008 36(15): 5033-5049.
  1. 9.   Hypoxic repression of STAT1 and its downstream genes by a pVHL/HIF-1 target DEC1/STRA13
  2. Ivanov, S. V.; Salnikow, K.; Ivanova, A. V.; Bai, L.; Lerman, M. I.
  3. Oncogene. 2007, Feb; 26(6): 802-812.
  1. 10.   Structural basis for p53 binding-induced DNA bending
  2. Pan, Y. P.; Nussinov, R.
  3. Journal of Biological Chemistry. 2007, Jan; 282(1): 691-699.
  1. 11.   Novel mutations in FH and expansion of the spectrum of phenotypes expressed in families with hereditary leiomyomatosis and renal cell cancer
  2. Wei, M. H.; Toure, O.; Glenn, G. M.; Pithukpakorn, M.; Neckers, L.; Stolle, C.; Choyke, P.; Grubb, R.; Middelton, L.; Turner, M. L.; Walther, M. M.; Merino, M. J.; Zbar, B.; Linehan, W. M.; Toro, J. R.
  3. Journal of Medical Genetics. 2006, JAN; 43(1): 18-27.
  1. 12.   Multiple roles of Rbx1 in the VBC-Cul2 ubiquitin ligase complex
  2. Megumi, Y.; Miyauchi, Y.; Sakurai, H.; Nobeyama, H.; Lorick, K.; Nakamura, E.; Chiba, T.; Tanaka, K.; Weissman, A. M.; Kirisako, T.; Ogawa, O.; Iwai, K.
  3. Genes to Cells. 2005, JUL; 10(7): 679-691.
  1. 13.   Small molecule inhibitors of HDM2 ubiquitin ligase activity stabilize and activate p53 in cells
  2. Yang, Y. L.; Ludwig, R. L.; Jensen, J. P.; Pierre, S. A.; Medaglia, M. V.; Davydov, I. V.; Safiran, Y. J.; Oberoi, P.; Kenten, J. H.; Phillips, A. C.; Weissman, A. M.; Vousden, K. H.
  3. Cancer Cell. 2005, JUN; 7(6): 547-559.
  1. 14.   The contribution of the Trp/Met/Phe residues to physical interactions of p53 with cellular proteins
  2. Ma, B. Y.; Pan, Y. P.; Gunasekaran, K.; Keskin, O.; Venkataraghavan, R. B.; Levine, A. J.; Nussinov, R.
  3. Physical Biology. 2005, JUN; 2(2): S56-S66.
  1. 15.   Comparison of the protein-protein interfaces in the p53-DNA crystal structures: Towards elucidation of the biological interface
  2. Ma, B. Y.; Pan, Y. P.; Gunasekaran, K.; Venkataraghavan, R. B.; Levine, A. J.; Nussinov, R.
  3. Proceedings of the National Academy of Sciences of the United States of America. 2005, MAR 15; 102(11): 3988-3993.
  1. 16.   Depletion of intracellular ascorbate by the carcinogenic metals nickel and cobalt results in the induction of hypoxic stress
  2. Salnikow, K.; Donald, S. P.; Bruick, R. K.; Zhitkovich, A.; Phang, J. M.; Kasprzak, K. S.
  3. Journal of Biological Chemistry. 2004, SEP 24; 279(39): 40337-40344.
  1. 17.   Mdm2 regulates p53 independently of p19(ARF) in homeostatic tissues
  2. O'Leary, K. A.; Mendrysa, S. M.; Vaccaro, A.; Perry, M. E.
  3. Molecular and Cellular Biology. 2004 24(1): 186-191.
  1. 18.   Regulating the p53 system through ubiquitination
  2. Yang, Y. L.; Li, C. C. H.; Weissman, A. M.
  3. Oncogene. 2004 23(11): 2096-2106.
  1. 19.   Menin associates with a trithorax family histone methyltransferase complex and with the Hoxc8 locus
  2. Hughes, C. M.; Rozenblatt-Rosen, O.; Milne, T. A.; Copeland, T. D.; Levine, S. S.; Lee, J. C.; Hayes, D. N.; Shanmugam, K. S.; Bhattacharjee, A.; Biondi, C. A.; Kay, G. F.; Hayward, N. K.; Hess, J. L.; Meyerson, M.
  3. Molecular Cell. 2004 13(4): 587-597.
  1. 20.   Regulation of apoptosis: the ubiquitous way
  2. Yang, Y. L.; Yu, X. D.
  3. Faseb Journal. 2003 17(8): 790-799.
  1. 21.   Expression of hypoxia-lnducible cell-surface transmembrane carbonic anhydrases in human cancer
  2. Ivanov, S.; Liao, S. Y.; Ivanova, A.; Danilkovitch-Miagkova, A.; Tarasova, N.; Weirich, G.; Merrill, M. J.; Proescholdt, M. A.; Oldfield, E. H.; Lee, J.; Zavada, J.; Waheed, A.; Sly, W.; Lerman, M. I.; Stanbridge, E. J.
  3. American Journal of Pathology. 2001 158(3): 905-919.
  1. 22.   Expression of prostaglandin endoperoxide H synthase-2 induced by nitric oxide in conditionally immortalized murine colonic epithelial cells
  2. Mei, J. M.; Hord, N. G.; Winterstein, D. F.; Donald, S. P.; Phang, J. M.
  3. Faseb Journal. 2000 14(9): 1188-1201.
  1. 23.   Phosphorylation status and function of p53 are inversely related to protein kinase C activation
  2. Nakamura, K.; Sun, Y.; Yokoyama, Y.; Ferris, D.; Singh, N.; Ichikawa, T.; Shinozuka, K.; Kunitomo, M.; Colburn, N.
  3. Anticancer Research. 2000 20(1A): 1-5.
  1. 24.   Inactivation of p53 by human T-cell lymphotropic virus type 1 tax requires activation of the NF-kappa B pathway and is dependent on p53 phosphorylation
  2. Pise-Masison, C. A.; Mahieux, R.; Jiang, H.; Ashcroft, M.; Radonovich, M.; Duvall, J.; Guillerm, C.; Brady, J. N.
  3. Molecular and Cellular Biology. 2000 20(10): 3377-3386.
  1. 25.   Regulation and activation of p53 and its family members
  2. Lohrum, M. A. E.; Vousden, K. H.
  3. Cell Death and Differentiation. 1999 6(12): 1162-1168.
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