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Synthesis and characterization of the N-succinyl-l,l-diaminopimelic acid desuccinylase (DapE) alternate substrate
Zachary J Liveris1, Emma H Kelley1, Emma Simmons1
1Department of Chemistry and Biochemistry, Loyola University Chicago, 1032 West Sheridan Road, Chicago, IL 60660, United States.
Abstract:
Growing antibiotic resistance by pathogenic bacteria has led to a global crisis. The bacterial enzyme N-succinyl-l,l-diaminopimelic acid desuccinylase (DapE) provides a very attractive target for the discovery of a new class of antibiotics, as it resides exclusively in many pathogenic bacterial strains and is a key enzyme in the lysine biosynthetic pathway. This pathway is responsible for the production of lysine as well as meso-diaminopimelate (m-DAP), both of which are required for peptidoglycan cell-wall synthesis, and lysine for peptide synthesis. The enzyme DapE catalyzes the hydrolysis of N-succinyl-l,l-diaminopimelic acid (l,l-SDAP) to succinate and l,l-diaminopimelic acid (l,l-DAP), and due to its absence in humans, inhibition of DapE avoids mechanism-based side effects. We have executed the asymmetric synthesis of N,N-dimethyl-SDAP, an l,l-SDAP substrate analog and an analog of the synthetic substrate of our previously described DapE assay. Previous modeling studies advocated that N,N-dimethyl-SDAP might function as an inhibitor, however the compound behaves as a substrate, and we have demonstrated the use of N,N-dimethyl-SDAP as the substrate in a modified ninhydrin-based DapE assay. Thermal shift experiments of DapE in the presence of N,N-dimethyl-SDAP are consistent with a melt temperature (Tm) shifted by succinate, the product of enzymatic hydrolysis.
Insights
Researchers synthesized N,N-dimethyl-SDAP, a substrate analog for the bacterial enzyme N-succinyl-l,l-diaminopimelic acid desuccinylase (DapE). This analog is now a substrate in a new DapE assay, aiding antibiotic discovery.
Area of Science:
- Biochemistry
- Medicinal Chemistry
Background:
- Antibiotic resistance is a growing global health crisis.
- The bacterial enzyme N-succinyl-l,l-diaminopimelic acid desuccinylase (DapE) is a promising target for novel antibiotics due to its essential role in bacterial lysine biosynthesis and its absence in humans.
Purpose of the Study:
- To synthesize N,N-dimethyl-SDAP, a substrate analog of N-succinyl-l,l-diaminopimelic acid (l,l-SDAP).
- To evaluate N,N-dimethyl-SDAP as a substrate in a modified DapE assay for potential antibiotic development.
Main Methods:
- Asymmetric synthesis of N,N-dimethyl-SDAP.
- Development of a modified ninhydrin-based assay using N,N-dimethyl-SDAP as the substrate.
- Thermal shift experiments to analyze DapE-ligand interactions.
Main Results:
- N,N-dimethyl-SDAP was successfully synthesized as an analog of l,l-SDAP.
- N,N-dimethyl-SDAP functions as a substrate in the modified DapE assay, contrary to initial predictions of it being an inhibitor.
- Thermal shift data indicated that succinate, a product of enzymatic hydrolysis, affects the melt temperature of DapE.
Conclusions:
- N,N-dimethyl-SDAP is a viable substrate for DapE, enabling a new assay for enzyme activity.
- This work provides a foundation for developing DapE inhibitors as a new class of antibiotics to combat bacterial resistance.

