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Cryptosporidium parvum IMP dehydrogenase: identification of functional, structural, and dynamic properties that can
Nwakaso N Umejiego1, Catherine Li, Thomas Riera
1Department of Cellular Biology, Center for Tropical and Emerging Global Diseases, University of Georgia, Athens, Georgia 30602, USA.
Abstract:
The protozoan parasite Cryptosporidium parvum causes severe enteritis with substantial morbidity and mortality among AIDS patients and young children. No fully effective treatment is available. C. parvum relies on inosine 5'-monophosphate dehydrogenase (IMPDH) to produce guanine nucleotides and is highly susceptible to IMPDH inhibition. Furthermore, C. parvum obtained its IMPDH gene by lateral transfer from an epsilon-proteobacterium, suggesting that the parasite enzyme might have very different characteristics than the human counterpart. Here we describe the expression of recombinant C. parvum IMPDH in an Escherichia coli strain lacking the bacterial homolog. Expression of the parasite gene restores growth of this mutant on minimal medium, confirming that the protein has IMPDH activity. The recombinant protein was purified to homogeneity and used to probe the enzyme's mechanism, structure, and inhibition profile in a series of kinetic experiments. The mechanism of the C. parvum enzyme involves the random addition of substrates and ordered release of products with rate-limiting hydrolysis of a covalent enzyme intermediate. The pronounced resistance of C. parvum IMPDH to mycophenolic acid inhibition is in strong agreement with its bacterial origin. The values of Km for NAD and Ki for mycophenolic acid as well as the synergistic interaction between tiazofurin and ADP differ significantly from those of the human enzymes. These data suggest that the structure and dynamic properties of the NAD binding site of C. parvum IMPDH can be exploited to develop parasite-specific inhibitors.
Insights
Cryptosporidium parvum inosine 5'-monophosphate dehydrogenase (IMPDH) has unique properties due to its bacterial origin. Targeting this parasite-specific IMPDH offers a promising strategy for developing novel treatments against cryptosporidiosis.
Area of Science:
- Biochemistry
- Parasitology
- Drug Discovery
Background:
- Cryptosporidium parvum causes severe enteritis, particularly in immunocompromised individuals and young children.
- Currently, no fully effective treatments are available for cryptosporidiosis.
- The parasite relies on inosine 5'-monophosphate dehydrogenase (IMPDH) for survival and is susceptible to IMPDH inhibitors.
Purpose of the Study:
- To express and characterize recombinant Cryptosporidium parvum IMPDH.
- To investigate the enzyme's mechanism, structure, and inhibition profile.
- To explore the potential for developing parasite-specific inhibitors.
Main Methods:
- Recombinant C. parvum IMPDH was expressed in an Escherichia coli mutant.
- The parasite enzyme was purified to homogeneity.
- Kinetic experiments were performed to determine the enzyme's mechanism and inhibition profile.
Main Results:
- Expression of C. parvum IMPDH restored growth in the E. coli mutant, confirming its activity.
- The enzyme mechanism involves random substrate addition and ordered product release.
- C. parvum IMPDH showed pronounced resistance to mycophenolic acid and significant differences from human IMPDH in kinetic parameters.
Conclusions:
- The bacterial origin of C. parvum IMPDH contributes to its distinct biochemical properties.
- The unique characteristics of the parasite's NAD binding site present an opportunity for developing targeted inhibitors.
- Exploiting these differences could lead to novel therapeutic strategies against cryptosporidiosis.
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