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Mechanistic and biophysical characterization of polymyxin resistance response regulator PmrA in Acinetobacter
Zhenlin Ouyang1, Wenbo He1, Min Jiao1
1Shaanxi Provincial Key Laboratory of Sepsis in Critical Care Medicine, Department of Critical Care Medicine, Center for Microbiome Research of Med-X Institute, The First Affiliated Hospital, Xi'an Jiaotong University, Xi'an, China.
Introduction:
Acinetobacter baumannii PmrAB is a crucial two-component regulatory system (TCS) that plays a vital role in conferring resistance to polymyxin. PmrA, a response regulator belonging to the OmpR/PhoB family, is composed of a C-terminal DNA-binding effector domain and an N-terminal receiver domain. The receiver domain can be phosphorylated by PmrB, a transmembrane sensor histidine kinase that interacts with PmrA. Once phosphorylated, PmrA undergoes a conformational change, resulting in the formation of a symmetric dimer in the receiver domain. This conformational change facilitates the recognition of promoter DNA by the DNA-binding domain of PmrA, leading to the activation of adaptive responses.
Methods:
X-ray crystallography was carried out to solve the structure of PmrA receiver domain. Electrophoretic mobility shift assay and Isothermal titration calorimetry were recruited to validate the interaction between the recombinant PmrA protein and target DNA. Field-emission scanning electron microscopy (FE-SEM) was employed to characterize the surface morphology of A. baumannii in both the PmrA knockout and mutation strains.
Results:
The receiver domain of PmrA follows the canonical α5β5 response regulator assembly, which undergoes dimerization upon phosphorylation and activation. Beryllium trifluoride is utilized as an aspartate phosphorylation mimic in this process. Mutations involved in phosphorylation and dimerization significantly affected the expression of downstream pmrC and naxD genes. This impact resulted in an enhanced cell surface smoothness with fewer modifications, ultimately contributing to a decrease in colistin (polymyxin E) and polymyxin B resistance. Additionally, a conservative direct-repeat DNA PmrA binding sequence TTTAAGNNNNNTTTAAG was identified at the promoter region of the pmrC and naxD gene. These findings provide structural insights into the PmrA receiver domain and reveal the mechanism of polymyxin resistance, suggesting that PmrA could be a potential drug target to reverse polymyxin resistance in Acinetobacter baumannii.
Insights
The PmrAB system in Acinetobacter baumannii regulates polymyxin resistance. Understanding PmrA structure and function reveals a potential drug target to combat antibiotic resistance.
Area of Science:
- Microbiology
- Structural Biology
- Molecular Biology
Background:
- The PmrAB two-component regulatory system (TCS) in *Acinetobacter baumannii* is essential for polymyxin resistance.
- PmrA, a response regulator, contains receiver and DNA-binding domains, activated by phosphorylation from sensor kinase PmrB.
- Phosphorylation induces PmrA dimerization, enabling promoter recognition and adaptive resistance responses.
Purpose of the Study:
- To elucidate the structure of the PmrA receiver domain.
- To investigate the mechanism of PmrA-mediated polymyxin resistance.
- To identify PmrA as a potential drug target for reversing polymyxin resistance.
Main Methods:
- X-ray crystallography to determine PmrA receiver domain structure.
- Electrophoretic mobility shift assay and isothermal titration calorimetry for DNA-protein interactions.
- Field-emission scanning electron microscopy (FE-SEM) to analyze bacterial surface morphology.
Main Results:
- The PmrA receiver domain adopts a canonical α5β5 fold, dimerizing upon phosphorylation (mimicked by BeF3-).
- Mutations affecting phosphorylation and dimerization altered *pmrC* and *naxD* gene expression.
- Reduced polymyxin resistance correlated with smoother bacterial cell surfaces in knockout/mutant strains.
- A conserved PmrA binding site (TTTAAGNNNNNTTTAAG) was identified in *pmrC* and *naxD* promoters.
Conclusions:
- Structural and functional insights into PmrA dimerization and DNA binding.
- Demonstrated link between PmrA activity, gene regulation, and polymyxin resistance.
- PmrA represents a promising therapeutic target to overcome polymyxin resistance in *A. baumannii*.
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