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Updated: May 20, 2026

Preparation of Mycobacterium tuberculosis Culture Filtrate to Understand TB Pathogenesis
Published on: March 28, 2025
Wild-type phosphoribosylpyrophosphate synthase (PRS) from Mycobacterium tuberculosis: a bacterial class II PRS?
Ardala Breda1, Leonardo K B Martinelli, Cristiano V Bizarro
1Instituto Nacional de Ciência e Tecnologia em Tuberculose (INCT-TB), Centro de Pesquisas em Biologia Molecular e Funcional (CPBMF), Programa de Pós-Graduação em Biologia Celular e Molecular, Pontifícia Universidade Católica do Rio Grande do Sul (PUCRS), Porto Alegre, Rio Grande do Sul, Brazil.
Abstract:
The 5-phospho-α-D-ribose 1-diphosphate (PRPP) metabolite plays essential roles in several biosynthetic pathways, including histidine, tryptophan, nucleotides, and, in mycobacteria, cell wall precursors. PRPP is synthesized from α-D-ribose 5-phosphate (R5P) and ATP by the Mycobacterium tuberculosis prsA gene product, phosphoribosylpyrophosphate synthase (MtPRS). Here, we report amplification, cloning, expression and purification of wild-type MtPRS. Glutaraldehyde cross-linking results suggest that MtPRS predominates as a hexamer, presenting varied oligomeric states due to distinct ligand binding. MtPRS activity measurements were carried out by a novel coupled continuous spectrophotometric assay. MtPRS enzyme activity could be detected in the absence of P(i). ADP, GDP and UMP inhibit MtPRS activity. Steady-state kinetics results indicate that MtPRS has broad substrate specificity, being able to accept ATP, GTP, CTP, and UTP as diphosphoryl group donors. Fluorescence spectroscopy data suggest that the enzyme mechanism for purine diphosphoryl donors follows a random order of substrate addition, and for pyrimidine diphosphoryl donors follows an ordered mechanism of substrate addition in which R5P binds first to free enzyme. An ordered mechanism for product dissociation is followed by MtPRS, in which PRPP is the first product to be released followed by the nucleoside monophosphate products to yield free enzyme for the next round of catalysis. The broad specificity for diphosphoryl group donors and detection of enzyme activity in the absence of P(i) would suggest that MtPRS belongs to Class II PRS proteins. On the other hand, the hexameric quaternary structure and allosteric ADP inhibition would place MtPRS in Class I PRSs. Further data are needed to classify MtPRS as belonging to a particular family of PRS proteins. The data here presented should help augment our understanding of MtPRS mode of action. Current efforts are toward experimental structure determination of MtPRS to provide a solid foundation for the rational design of specific inhibitors of this enzyme.
Insights
Mycobacterium tuberculosis phosphoribosylpyrophosphate synthase (MtPRS) was purified and characterized. This enzyme exhibits broad substrate specificity and complex regulatory mechanisms, providing insights into its essential role in mycobacterial biosynthesis.
Area of Science:
- Biochemistry
- Enzymology
- Mycobacterial Metabolism
Background:
- 5-phospho-α-D-ribose 1-diphosphate (PRPP) is a crucial metabolite in various biosynthetic pathways, including cell wall precursor synthesis in mycobacteria.
- Phosphoribosylpyrophosphate synthase (PRS) synthesizes PRPP using α-D-ribose 5-phosphate (R5P) and ATP.
- The Mycobacterium tuberculosis prsA gene encodes the specific PRS enzyme (MtPRS) involved in this essential process.
Purpose of the Study:
- To characterize the wild-type Mycobacterium tuberculosis phosphoribosylpyrophosphate synthase (MtPRS).
- To elucidate the oligomeric state, activity, substrate specificity, and kinetic mechanism of MtPRS.
- To provide foundational data for the rational design of potential MtPRS inhibitors.
Main Methods:
- Amplification, cloning, expression, and purification of wild-type MtPRS.
- Glutaraldehyde cross-linking to determine oligomeric state.
- Coupled continuous spectrophotometric assay for activity measurements.
- Steady-state kinetics and fluorescence spectroscopy to analyze substrate specificity and enzyme mechanism.
Main Results:
- MtPRS was successfully purified and predominantly exists as a hexamer, with variations in oligomeric states influenced by ligand binding.
- The enzyme displays broad substrate specificity, accepting various nucleotide triphosphates as diphosphoryl group donors, and shows activity without inorganic phosphate.
- Kinetic studies revealed distinct mechanisms for purine and pyrimidine diphosphoryl donors, and an ordered product release mechanism.
Conclusions:
- MtPRS exhibits characteristics of both Class I and Class II PRS proteins, indicating a unique classification requiring further investigation.
- The enzyme's broad substrate specificity and regulatory properties are key to its role in essential mycobacterial biosynthetic pathways.
- Understanding MtPRS function is critical for developing targeted inhibitors against Mycobacterium tuberculosis.
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