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Competing Substrates for the Bifunctional Diaminopimelic Acid Epimerase/Glutamate Racemase Modulate Peptidoglycan
Raghuveer Singh1,2, Jessica A Slade1,2, Mary Brockett3
1Emerging Pathogens Institute, University of Florida, Gainesville, Florida, USA.
Abstract:
The Chlamydia trachomatis genome encodes multiple bifunctional enzymes, such as DapF, which is capable of both diaminopimelic acid (DAP) epimerase and glutamate racemase activity. Our previous work demonstrated the bifunctional activity of chlamydial DapF in vitro and in a heterologous system (Escherichia coli). In the present study, we employed a substrate competition strategy to demonstrate DapF function in vivo in C. trachomatis We reasoned that, because DapF utilizes a shared substrate-binding site for both racemase and epimerase activities, only one activity can occur at a time. Therefore, an excess of one substrate relative to another must determine which activity is favored. We show that the addition of excess l-glutamate or meso-DAP (mDAP) to C. trachomatis resulted in 90% reduction in bacterial titers, compared to untreated controls. Excess l-glutamate reduced in vivo synthesis of mDAP by C. trachomatis to undetectable levels, thus confirming that excess racemase substrate led to inhibition of DapF DAP epimerase activity. We previously showed that expression of dapF in a murI (racemase) ΔdapF (epimerase) double mutant of E. coli rescues the d-glutamate auxotrophic defect. Addition of excess mDAP inhibited growth of this strain, but overexpression of dapF allowed the mutant to overcome growth inhibition. These results confirm that DapF is the primary target of these mDAP and l-glutamate treatments. Our findings demonstrate that suppression of either the glutamate racemase or epimerase activity of DapF compromises the growth of C. trachomatis Thus, a substrate competition strategy can be a useful tool for in vivo validation of an essential bifunctional enzyme.
Insights
Chlamydia trachomatis DapF enzyme has two functions: diaminopimelic acid (DAP) epimerase and glutamate racemase. Competing its substrates in vivo inhibits growth, validating DapF as a drug target.
Area of Science:
- Microbiology
- Enzymology
- Molecular Biology
Background:
- Chlamydia trachomatis possesses bifunctional enzymes like DapF, crucial for cell wall synthesis.
- DapF exhibits both diaminopimelic acid (DAP) epimerase and glutamate racemase activity.
- Previous studies confirmed DapF's dual activity in vitro and in E. coli.
Purpose of the Study:
- To validate the in vivo function of Chlamydia trachomatis DapF using a substrate competition strategy.
- To investigate the essentiality of DapF's bifunctional activities for C. trachomatis growth.
- To confirm DapF as a potential therapeutic target.
Main Methods:
- Employing a substrate competition strategy by adding excess L-glutamate or meso-DAP (mDAP) to C. trachomatis cultures.
- Measuring bacterial titers and in vivo synthesis of mDAP.
- Utilizing a previously constructed E. coli double mutant (murIΔdapF) to assess DapF function under substrate competition.
Main Results:
- Excess L-glutamate or mDAP significantly reduced C. trachomatis titers by 90%.
- Excess L-glutamate abolished in vivo mDAP synthesis, confirming inhibition of DapF's epimerase activity.
- Excess mDAP inhibited growth of the E. coli double mutant, but DapF overexpression rescued this inhibition.
Conclusions:
- DapF's bifunctional activities are essential for C. trachomatis growth in vivo.
- Substrate competition effectively validates the in vivo function of essential bifunctional enzymes.
- Targeting either enzymatic activity of DapF compromises C. trachomatis viability, highlighting its potential as an antimicrobial target.
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