The objective is to improve therapy of human disease, primarily cancer, with nucleoside analogs. The proposed studies are directed at aspects of the identification, purification and characterization of human enzymes for the activation of the purine C-nucleoside analogs tiazofurin and its recently synthesized analog selenazofurin and to assess the relationship of these enzyme systems to sensitivity and resistance of human cells to the drugs and to the metabolism of naturally occurring purine nucleosides. We will test the hypothesis that the C-nucleosides are activated in human lymphoid cells via alternate metabolic pathways, including the novel phosphorylation via a cellular nucleotidase. The following specific aims will be sought: i) isolation and characterization of new mutant lines with defective phosphorylation of the named compounds; ii) purification and characterization of the enzyme activities for the phosphorylation of tiazofurin and selenazofurin from human leukemic cells, including those with varied sensitivities to the drugs. Especially important will be attempts to characterize the nucleotidase(s) with respect to specificity for the phosphorylation of naturally occurring nucleosides and analogs. These studies may also uncover whether the nucleotidase serves as an anabolic route for inosine - or guanosine-type compounds that have demonstrated ability to cause differentiation of lymphoid cells. These studies will also examine the mechanism for a synergistic interaction between tiazofurin and the DNA damaging agent etoposide (VP16-213) in human leukemia cells. The goal is to correlate nucleotide pool depletions, repair enzyme activity and DNA strand-breaks and cytotoxicity in leukemia cells. These studies may reveal whether the active dinucleotide derivative of tiazofurin or selenazofurin may act as inhibitor of DNA repair synthesis in cells.

Agency
National Institute of Health (NIH)
Institute
National Institute of Allergy and Infectious Diseases (NIAID)
Type
Research Project (R01)
Project #
9R01AI031145-04
Application #
3146186
Study Section
AIDS and Related Research Study Section 4 (ARRD)
Project Start
1990-12-01
Project End
1993-11-30
Budget Start
1990-12-01
Budget End
1991-11-30
Support Year
4
Fiscal Year
1991
Total Cost
Indirect Cost
Name
St. Jude Children's Research Hospital
Department
Type
DUNS #
067717892
City
Memphis
State
TN
Country
United States
Zip Code
38105
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Aduma, P; Connelly, M C; Srinivas, R V et al. (1995) Metabolic diversity and antiviral activities of acyclic nucleoside phosphonates. Mol Pharmacol 47:816-22
Gong, Y F; Marshall, D R; Srinivas, R V et al. (1994) Susceptibilities of zidovudine-resistant variants of human immunodeficiency virus type 1 to inhibition by acyclic nucleoside phosphonates. Antimicrob Agents Chemother 38:1683-7
Robbins, B L; Rodman, J; McDonald, C et al. (1994) Enzymatic assay for measurement of zidovudine triphosphate in peripheral blood mononuclear cells. Antimicrob Agents Chemother 38:115-21
Connelly, M C; Robbins, B L; Fridland, A (1993) Mechanism of uptake of the phosphonate analog (S)-1-(3-hydroxy-2-phosphonylmethoxypropyl)cytosine (HPMPC) in Vero cells. Biochem Pharmacol 46:1053-7
Gong, Y F; Srinivas, R V; Fridland, A (1993) 5-Amino-4-imidazolecarboxamide riboside potentiates the metabolism and anti-human immunodeficiency virus activity of 2',3'-dideoxyinosine. Mol Pharmacol 44:30-6
Srinivas, R V; Robbins, B L; Connelly, M C et al. (1993) Metabolism and in vitro antiretroviral activities of bis(pivaloyloxymethyl) prodrugs of acyclic nucleoside phosphonates. Antimicrob Agents Chemother 37:2247-50
Bondoc Jr, L L; Ahluwalia, G; Cooney, D A et al. (1992) Metabolic pathways for the activation of the antiviral agent 2',3'-dideoxyguanosine in human lymphoid cells. Mol Pharmacol 42:525-30
Bondoc Jr, L L; Robbins, B L; Ahluwalia, G S et al. (1991) Modulation of metabolism and anti-HIV-1 activity of purine 2',3'-dideoxynucleosides by IMP dehydrogenase inhibitors. Adv Exp Med Biol 309A:49-53