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Structure-activity relationships of pyrimidines as dihydroorotate dehydrogenase inhibitors
S A DeFrees1, D P Sawick, B Cunningham
1Department of Medicinal Chemistry and Pharmacognosy, School of Pharmacy and Pharmacal Sciences, Purdue University, West Lafayette, IN 47907.
Abstract:
The activity of dihydroorotate dehydrogenase (DHO-dehase) has been reported to decrease both in vitro and in vivo in hepatocellular carcinomas. DHO-dehase, the fourth enzyme of the de novo pyrimidine biosynthetic pathway, is a mitochondrial enzyme which is both a potential rate-limiting reaction in the de novo pyrimidine biosynthetic pathway and a potential therapeutic target for tumor inhibitors. This paper reports results on a series of pyrimidine analogs of dihydroorotate (DHO) and orotic acid (OA) as inhibitors of DHO-dehase. The enzyme test results established that the intact amide and imide groups of the pyrimidine ring and the 6-carboxylic acid are required for significant enzyme inhibition. The testing of several functional groups similar in characteristics to that of the carboxylic acid, such as sulfonamide, tetrazole and phosphate, indicated that the carboxylic acid group is preferred by the enzyme. Using various 5-substituted OA and DHO derivatives, it was shown that there is a steric limitation of a methyl group at this position. The compound D,L-5-trans-methyl DHO (7) (Ki of 45 microM) was both an inhibitor and a weak substrate for the enzyme, demonstrating that mechanism-based enzyme inhibitors should be effective. The testing results further suggest that a negatively charged enzyme substituent may be present near the 5-position of the pyrimidine ring and that there may be an enzyme-substrate metal coordination site near the N-1 and carboxylic acid positions of the pyrimidine ring. The combined testing results were then used to define both conformational and steric substrate enzyme binding requirements from which a model was proposed for the binding of DHO and OA to the DHO-dehase active site.
Insights
Dihydroorotate dehydrogenase (DHO-dehase) inhibitors are explored for cancer therapy. Pyrimidine analogs targeting DHO-dehase show specific structural requirements for enzyme inhibition, suggesting therapeutic potential.
Area of Science:
- Biochemistry
- Enzymology
- Medicinal Chemistry
Background:
- Dihydroorotate dehydrogenase (DHO-dehase) activity is reduced in hepatocellular carcinomas.
- DHO-dehase is a mitochondrial enzyme crucial for de novo pyrimidine biosynthesis.
- It represents a potential therapeutic target for novel tumor inhibitors.
Purpose of the Study:
- To investigate pyrimidine analogs of dihydroorotate (DHO) and orotic acid (OA) as DHO-dehase inhibitors.
- To elucidate the structural requirements for DHO-dehase enzyme inhibition.
- To propose a model for substrate binding to the DHO-dehase active site.
Main Methods:
- Synthesis and testing of various pyrimidine analogs of DHO and OA.
- Enzyme inhibition assays to determine the efficacy of synthesized compounds.
- Structure-activity relationship analysis to identify key functional groups and steric constraints.
Main Results:
- Intact amide, imide groups, and a 6-carboxylic acid on the pyrimidine ring are essential for significant DHO-dehase inhibition.
- The carboxylic acid group is preferred over sulfonamide, tetrazole, or phosphate groups.
- A methyl group at the 5-position shows steric limitations; D,L-5-trans-methyl DHO (7) acts as a weak inhibitor and substrate (Ki = 45 microM).
Conclusions:
- Mechanism-based enzyme inhibitors targeting DHO-dehase are likely to be effective.
- The DHO-dehase active site likely possesses a negatively charged substituent near the 5-position and a metal coordination site near N-1 and the carboxylic acid.
- A model for DHO and OA binding to the DHO-dehase active site has been proposed based on conformational and steric requirements.