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Enzymatic and Structural Characterization of the Naegleria fowleri Glucokinase
Jillian E Milanes1, Jimmy Suryadi1, Jan Abendroth2
1Eukaryotic Pathogens Innovation Center, Department of Genetics and Biochemistry, Clemson University, Clemson, South Carolina, USA.
Abstract:
Infection with the free-living amoeba Naegleria fowleri leads to life-threatening primary amoebic meningoencephalitis. Efficacious treatment options for these infections are limited, and the mortality rate is very high (∼98%). Parasite metabolism may provide suitable targets for therapeutic design. Like most other organisms, glucose metabolism is critical for parasite viability, being required for growth in culture. The first enzyme required for glucose metabolism is typically a hexokinase (HK), which transfers a phosphate from ATP to glucose. The products of this enzyme are required for both glycolysis and the pentose phosphate pathway. However, the N. fowleri genome lacks an obvious HK homolog and instead harbors a glucokinase (Glck). The N. fowleri Glck (NfGlck) shares limited (25%) amino acid identity with the mammalian host enzyme (Homo sapiens Glck), suggesting that parasite-specific inhibitors with anti-amoeba activity can be generated. Following heterologous expression, NfGlck was found to have a limited hexose substrate range, with the greatest activity observed with glucose. The enzyme had apparent Km values of 42.5 ± 7.3 μM and 141.6 ± 9.9 μM for glucose and ATP, respectively. The NfGlck structure was determined and refined to 2.2-Å resolution, revealing that the enzyme shares greatest structural similarity with the Trypanosoma cruzi Glck. These similarities include binding modes and binding environments for substrates. To identify inhibitors of NfGlck, we screened a small collection of inhibitors of glucose-phosphorylating enzymes and identified several small molecules with 50% inhibitory concentration values of <1 μM that may prove useful as hit chemotypes for further leads and therapeutic development against N. fowleri.
Insights
Naegleria fowleri infections are deadly due to limited treatments. Researchers identified and characterized the parasite's unique glucokinase (NfGlck), finding potential drug targets for treating primary amoebic meningoencephalitis.
Area of Science:
- Biochemistry
- Parasitology
- Drug Discovery
Background:
- Primary amoebic meningoencephalitis, caused by Naegleria fowleri, has a high mortality rate due to limited treatment options.
- Targeting parasite metabolism, specifically glucose metabolism, is a promising therapeutic strategy.
Purpose of the Study:
- To investigate the Naegleria fowleri glucokinase (NfGlck) as a potential drug target.
- To characterize NfGlck's biochemical properties and structural features.
- To identify potential inhibitors of NfGlck.
Main Methods:
- Heterologous expression and biochemical characterization of NfGlck.
- Determination of NfGlck crystal structure.
- Screening of glucose-phosphorylating enzyme inhibitors against NfGlck.
Main Results:
- NfGlck was successfully expressed and characterized, showing highest activity with glucose.
- NfGlck shares structural similarities with Trypanosoma cruzi Glck, suggesting conserved substrate binding.
- Several small molecules were identified as potent NfGlck inhibitors (IC50 < 1 μM).
Conclusions:
- NfGlck is a viable drug target for Naegleria fowleri infections.
- The identified inhibitors serve as promising chemotypes for developing novel anti-Naegleria therapeutics.
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