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Published on: January 14, 2021
Structural basis for spermidine recognition and modulation of Acinetobacter baumannii multidrug efflux regulator AmvR
Na Wang1, Xu Wang1, Mengxiang Zhou1
1Institute of Health Sciences and Technology, Institutes of Physical and Information Technology, Anhui University, Hefei, Anhui, China.
Abstract:
Acinetobacter baumannii is a gram-negative, opportunistic pathogen frequently associated with hospital-acquired infections. Due to its resistance to multiple antibiotics, it is emerging as a major nosocomial pathogen, causing a wide range of severe infections such as pneumonia, meningitis, and bloodstream infections. In many cases, the intrinsic activities of efflux pumps contribute to the development of drug resistance. The polyamine-binding protein AmvR regulates the multidrug efflux pump AmvA, which is pivotal for transporting polyamines, an abundant and prevalent class of amino acid-derived metabolites. Here, we report the crystal structure of the AmvR protein bound to its physiological substrate, spermidine, thereby offering structural and functional insights into AmvR. By employing electrophoretic mobility shift assays and DNase I footprinting, we identified the recognition sites of the intragenic regions of amvR and amvA by AmvR. Moreover, a fluorescence reporter assay revealed that AmvR repressed the expressions of AmvA and AmvR. In addition, isothermal titration calorimetry indicated that spermidine may be a natural ligand of AmvR. Collectively, these experiments provided a better understanding of substrate recognition for the discovery of potential inhibitors. Furthermore, our results revealed that substrate binding triggers a localized conformational change in the AmvR protein, as supported by size-exclusion chromatography and static light scattering, suggesting a distinctive regulatory mechanism within the TetR family transcription factors.
Importance:
Multidrug efflux pumps are key contributors to clinically significant drug resistance in various gram-negative pathogens responsible for hospital-acquired infections. These pathogens often possess multiple genes that encode potential multidrug efflux pumps. Identifying the specific regulatory proteins that control the expression of these pumps, along with elucidating the regulatory mechanisms triggered by effectors, presents a complex challenge. In this study, we have resolved the crystal structures of AmvR in both its unbound and spermidine-bound states. To the best of our knowledge, this represents the first validated structural model of a polyamine-bound transcriptional regulator. Through detailed structural analysis and functional assays, we have pinpointed the critical residues in AmvR responsible for substrate recognition, providing a foundation for the development of future inhibitors.
Insights
This study reveals the crystal structure of the AmvR protein bound to spermidine, offering insights into how this regulator controls multidrug efflux pumps in Acinetobacter baumannii. Understanding this mechanism aids in developing new strategies against antibiotic resistance.
Area of Science:
- Microbiology
- Structural Biology
- Molecular Biology
Background:
- Acinetobacter baumannii is a significant cause of hospital-acquired infections, often exhibiting multidrug resistance.
- Multidrug efflux pumps contribute to antibiotic resistance by exporting drugs from bacterial cells.
- The polyamine-binding protein AmvR regulates the AmvA efflux pump, crucial for polyamine transport and potentially drug resistance.
Purpose of the Study:
- To determine the crystal structure of the AmvR protein bound to its substrate, spermidine.
- To elucidate the regulatory mechanism of the AmvA multidrug efflux pump by AmvR.
- To identify potential targets for inhibitors to combat antibiotic resistance.
Main Methods:
- X-ray crystallography to determine AmvR structures (unbound and spermidine-bound).
- Electrophoretic mobility shift assays and DNase I footprinting to identify AmvR binding sites.
- Fluorescence reporter assays to assess gene expression regulation.
- Isothermal titration calorimetry, size-exclusion chromatography, and static light scattering to study protein-ligand interactions and conformational changes.
Main Results:
- The crystal structure of AmvR bound to spermidine was resolved, providing insights into substrate binding.
- AmvR was found to bind to regulatory regions of both amvR and amvA genes.
- AmvR represses the expression of both amvA and itself, indicating a negative feedback loop.
- Spermidine is identified as a likely natural ligand for AmvR.
- Substrate binding induces a localized conformational change in AmvR, characteristic of TetR family regulators.
Conclusions:
- This study provides the first structural model of a polyamine-bound transcriptional regulator.
- The findings offer a deeper understanding of the regulatory mechanism controlling the AmvA efflux pump.
- The identified substrate recognition sites and conformational changes pave the way for designing novel inhibitors against multidrug-resistant bacteria.
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