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Cefazolin administration and 2-methyl-1,3,4-thiadiazole-5-thiol in human tissue: possible relationship to
Thomas C Wood1, Kenneth L Johnson, Stephen Naylor
1Department of Molecular Pharmacology and Experimental Therapeutics, Mayo Medical School, Mayo Clinic, Mayo Foundation, Rochester, Minnesota 55905, USA.
Abstract:
Cephalosporin antibiotics with structures that include the heterocyclic leaving group 1-methyltetrazole-5-thiol (MTT) can cause hypoprothrombinemia and hemorrhage as a result of MTT-dependent inhibition of the gamma-carboxylation of glutamate. The structure of cefazolin also includes a heterocyclic thiol, 2-methyl-1,3,4-thiadiazole-5-thiol (MTD), and this compound can also inhibit the gamma-carboxylation of glutamate. However, unlike MTT, which is known to be present in vivo after the administration of drugs that include this structure, there have been no reports that MTD is present in vivo after cefazolin administration. We set out to determine whether MTD might be present in the tissues of patients treated with cefazolin prior to surgery. To do that, we took advantage of the fact that heterocyclic thiols can undergo S-methylation catalyzed by the genetically polymorphic drug-metabolizing enzyme thiopurine S-methyltransferase (TPMT). Initially, we tested recombinant human TPMT as a "reagent" to S-methylate MTD. MTD was a substrate for TPMT-catalyzed S-methylation, with an apparent K(m) value of 63 micro M. Recombinant TPMT, with [(14)C-methyl]S-adenosyl-L-methionine as a cosubstrate, was then used to radioactively label a methyl acceptor substrate present in liver and kidney cytosol preparations from patients who had been treated preoperatively with cefazolin. Pooled renal cytosol from 10 of those patients was used to purify and isolate the methylated product by reverse-phase high-performance liquid chromatography. That methylated compound coeluted with S-methyl MTD. When the methylated product was subjected to tandem mass spectrometry, it was identified as S-methyl MTD. Therefore, MTD is present in the tissues of patients treated with cefazolin. These observations also raise the possibility that the TPMT genetic polymorphism may represent a risk factor for cefazolin-induced hypoprothrombinemia since subjects who genetically lack TPMT would be unable to catalyze this MTD biotransformation pathway.
Insights
The antibiotic cefazolin contains a compound (MTD) that can inhibit blood clotting. This study found MTD in patient tissues, suggesting a link to bleeding risks and highlighting the role of TPMT genetic variations.
Area of Science:
- Pharmacology
- Biochemistry
- Drug Metabolism
Background:
- Cephalosporin antibiotics containing 1-methyltetrazole-5-thiol (MTT) can cause bleeding by inhibiting glutamate gamma-carboxylation.
- Cefazolin contains 2-methyl-1,3,4-thiadiazole-5-thiol (MTD), which also inhibits glutamate gamma-carboxylation, but its in vivo presence was unconfirmed.
- Thiopurine S-methyltransferase (TPMT) metabolizes heterocyclic thiols via S-methylation, and its genetic polymorphism is known.
Purpose of the Study:
- To determine if MTD is present in the tissues of patients treated with cefazolin.
- To investigate the role of TPMT in MTD metabolism.
Main Methods:
- Recombinant human TPMT was used to test MTD as a substrate for S-methylation.
- Radioactive labeling with [(14)C-methyl]S-adenosyl-L-methionine was employed to detect methylated products in patient liver and kidney cytosol.
- Purification via HPLC and identification using tandem mass spectrometry confirmed the methylated product.
Main Results:
- MTD was confirmed as a substrate for TPMT-catalyzed S-methylation (apparent K(m) = 63 micro M).
- S-methyl MTD was identified in the renal cytosol of patients treated with cefazolin.
- The methylated product coeluted with authentic S-methyl MTD and was confirmed by mass spectrometry.
Conclusions:
- MTD is present in the tissues of patients receiving cefazolin.
- TPMT catalyzes the S-methylation of MTD, representing a potential biotransformation pathway.
- TPMT genetic polymorphism may be a risk factor for cefazolin-induced hypoprothrombinemia.
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