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Published on: July 31, 2019
Genetic diversity and kinetic properties of Trypanosoma cruzi dihydroorotate dehydrogenase isoforms
Idalia Sariego1, Takeshi Annoura, Takeshi Nara
1Department of Molecular and Cellular Parasitology, Juntendo University School of Medicine, Hongo 2-1-1, Bunkyo-ku, Tokyo 113-8421, Japan.
Insights
Dihydroorotate dehydrogenase (DHOD) is crucial for the parasite Trypanosoma cruzi, which causes Chagas' disease. Genetic variations in T. cruzi DHOD enzymes show conserved kinetic properties, supporting their potential as drug targets.
Area of Science:
- Biochemistry
- Parasitology
- Drug Discovery
Background:
- Dihydroorotate dehydrogenase (DHOD) is essential for de novo pyrimidine biosynthesis in Trypanosoma cruzi.
- T. cruzi DHOD exhibits distinct biochemical properties compared to human DHOD, indicating its potential as a chemotherapeutic target for Chagas' disease.
Purpose of the Study:
- To investigate nucleotide sequence polymorphisms and kinetic properties of T. cruzi DHOD enzymes.
- To evaluate the potential of T. cruzi DHOD as a drug target against Chagas' disease.
Main Methods:
- Sequencing of T. cruzi DHOD genes (DHOD1, DHOD2, DHOD3).
- Expression and purification of recombinant T. cruzi DHOD enzymes.
- Enzymatic assays to determine kinetic properties (Vmax, Km) and inhibition by orotate.
Main Results:
- Three DHOD genes (DHOD1, DHOD2, DHOD3) were identified in T. cruzi, differing by 26 nucleotides and 8 amino acid residues.
- Recombinant DHOD1 and DHOD2 showed similar kinetic properties, while DHOD3 exhibited higher Vmax and Km for substrates.
- All three DHOD enzymes were competitively inhibited by orotate at comparable levels.
Conclusions:
- Despite genetic variations, the kinetic properties of T. cruzi DHOD enzymes are largely conserved.
- T. cruzi DHOD remains a promising target for developing novel chemotherapeutic agents against Chagas' disease.
Abstract:
Dihydroorotate dehydrogenase (DHOD) is the fourth enzyme in the de novo pyrimidine biosynthetic pathway and is essential in Trypanosoma cruzi, the parasitic protist causing Chagas' disease. T. cruzi and human DHOD have different biochemical properties, including the electron acceptor capacities and cellular localization, suggesting that T. cruzi DHOD may be a potential chemotherapeutic target against Chagas' disease. Here, we report nucleotide sequence polymorphisms of T. cruzi DHOD genes and the kinetic properties of the recombinant enzymes. T. cruzi Tulahuen strain possesses three DHODgenes: DHOD1 and DHOD2, involved in the pyrimidine biosynthetic (pyr) gene cluster on an 800 and a 1000 kb chromosomal DNA, respectively, and DHOD3, located on an 800 kb DNA. The open reading frames of all three DHOD genes are comprised of 942 bp, and encode proteins of 314 amino acids. The three DHOD genes differ by 26 nucleotides, resulting in replacement of 8 amino acid residues. In contrast, all residues critical for constituting the active site are conserved among the three proteins. Recombinant T. cruzi DHOD1 and DHOD2 expressed in E. coli possess similar enzymatic properties, including optimal pH, optimal temperature, Vmax, and Km for dihydroorotate and fumarate. In contrast, DHOD3 had a higher Vmax and Km for both substrates. Orotate competitively inhibited all three DHOD enzymes to a comparable level. These results suggest that, despite their genetic variations, kinetic properties of the three T. cruziDHODs are conserved. Our findings facilitate further exploitation of T. cruzi DHOD inhibitors, as chemotherapeutic agents against Chagas' disease.
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