1984International Journal of Radiation Oncology*Biology*PhysicsRequires access

Metabolism and excretion of (/sup 3/H)misonidazole by hypoxic rate liver

B R Smith, Jan Born

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Abstract

This investigation was initiated to determine if misonidazole's biological activity is related to hypoxia-dependent, reductive biotransformation to form reactive metabolites. This study was facilitated by the synthesis of (/sup 3/H)misonidazole and by use of the isolated perfused rat liver as a model system for hypoxic tissue. Reductive metabolism of MISO by perfused livers was enhanced by hypoxic conditions. Formation of a MISO-derived glutathione conjugate (MISO-GSH) and covalent binding of MISO-derived radioactivity to tissue protein was also enhanced by hypoxia. Depletion of hepatic GSH with diethyl maleate increased the extent of covalent binding to protein under both aerobic and hypoxic conditions, and greatly diminished the formation of MISO-GSH. These results support the hypothesis that hypoxic conditions facilitate reductive metabolism of MISO to an alkylating agent, and that GSH plays an intervening role in the alkylation reaction.

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What this paper is about

This investigation was initiated to determine if misonidazole's biological activity is related to hypoxia-dependent, reductive biotransformation to form reactive metabolites. This study was facilitated by the synthesis of (/sup 3/H)misonidazole and by use of the isolated perfused rat liver as a model system for hypoxic tissue. Reductive metabolism of MISO by perfused livers was enhanced by hypoxic conditions. Formation of a MISO-derived glutathione conjugate (MISO-GSH) and covalent binding of MISO-derived radioactivity to tissue protein was also enhanced by hypoxia. Depletion of hepatic GSH with diethyl maleate increased the extent of covalent binding to protein under both aerobic and hypoxic conditions, and greatly diminished the formation of MISO-GSH. These results support the hypothesis that hypoxic conditions facilitate reductive metabolism of MISO to an alkylating agent, and that GSH plays an intervening role in the alkylation reaction.

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Available abstract

This investigation was initiated to determine if misonidazole's biological activity is related to hypoxia-dependent, reductive biotransformation to form reactive metabolites. This study was facilitated by the synthesis of (/sup 3/H)misonidazole and by use of the isolated perfused rat liver as a model system for hypoxic tissue. Reductive metabolism of MISO by perfused livers was enhanced by hypoxic conditions. Formation of a MISO-derived glutathione conjugate (MISO-GSH) and covalent binding of MISO-derived radioactivity to tissue protein was also enhanced by hypoxia. Depletion of hepatic GSH with diethyl maleate increased the extent of covalent binding to protein under both aerobic and hypoxic conditions, and greatly diminished the formation of MISO-GSH. These results support the hypothesis that hypoxic conditions facilitate reductive metabolism of MISO to an alkylating agent, and that GSH plays an intervening role in the alkylation reaction.

Key concepts: Misonidazole, Glutathione, Metabolism, Biotransformation, Conjugate, Hypoxia (environmental), Biochemistry, Covalent bond

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