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PBP1A Directly Interacts with the Divisome Complex to Promote Septal Peptidoglycan Synthesis in Acinetobacter
Katie N Kang1,2, Joseph M Boll1
1Department of Biology, University of Texas Arlington, Arlington, Texas, USA.
Insights
Acinetobacter baumannii PBP1A directly interacts with PBP3 to promote cell division, highlighting its essential role in peptidoglycan synthesis and bacterial growth. This finding is crucial for understanding drug resistance in this nosocomial pathogen.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Class A penicillin-binding proteins (aPBPs), PBP1A and PBP1B, are key peptidoglycan synthases in Escherichia coli, with semiredundant roles in cell wall biosynthesis.
- Acinetobacter baumannii, a multidrug-resistant nosocomial pathogen, possesses both PBP1A and PBP1B, but their functional redundancy differs from E. coli.
Purpose of the Study:
- To investigate the direct role of Acinetobacter baumannii PBP1A in cell division and peptidoglycan biosynthesis at the septum.
- To elucidate the interaction between PBP1A and other essential divisome components, specifically PBP3.
Main Methods:
- Genetic manipulation of A. baumannii strains to create deletions and overexpress specific genes (e.g., ΔmrcA, PBP3 overexpression).
- Microscopy to observe cell morphology and localization of proteins.
- Analysis of protein interactions and functional complementation assays.
Main Results:
- A. baumannii PBP1A localizes to the septum and directly interacts with the essential division protein PBP3.
- PBP3 overexpression rescues the division defect in ΔmrcA cells, but PBP1A overexpression does not rescue septal defects when PBP3 is inhibited, indicating non-redundant activity.
- Overexpression of PBP5 restores normal coccobacillary morphology in ΔmrcA cells.
Conclusions:
- PBP1A plays a direct, essential role in A. baumannii cell division by acting as a septal peptidoglycan synthase.
- The interaction between PBP1A and PBP3 is critical for division and is not functionally redundant.
- Understanding PBP1A's role is vital for developing new therapeutic strategies against multidrug-resistant A. baumannii.
Abstract:
The class A penicillin-binding proteins (aPBPs), PBP1A and PBP1B, are major peptidoglycan synthases that synthesize more than half of the peptidoglycan per generation in Escherichia coli. Whereas aPBPs have distinct roles in peptidoglycan biosynthesis during growth (i.e., elongation and division), they are semiredundant; disruption of either is rescued by the other to maintain envelope homeostasis and promote proper growth. Acinetobacter baumannii is a nosocomial pathogen that has a high propensity to overcome antimicrobial treatment. A. baumannii contains both PBP1A and PBP1B (encoded by mrcA and mrcB, respectively), but only mrcA deletion decreased fitness and contributed to colistin resistance through inactivation of lipooligosaccharide biosynthesis, indicating that PBP1B was not functionally redundant with the PBP1A activity. While previous studies suggested a distinct role for PBP1A in division, it was unknown whether its role in septal peptidoglycan biosynthesis was direct. Here, we show that A. baumannii PBP1A has a direct role in division through interactions with divisome components. PBP1A localizes to septal sites during growth, where it interacts with the transpeptidase PBP3, an essential division component that regulates daughter cell formation. PBP3 overexpression was sufficient to rescue the division defect in ΔmrcA A. baumannii; however, PBP1A overexpression was not sufficient to rescue the septal defect when PBP3 was inhibited, suggesting that their activity is not redundant. Overexpression of a major dd-carboxypeptidase, PBP5, also restored the canonical A. baumannii coccobacilli morphology in ΔmrcA cells. Together, these data support a direct role for PBP1A in A. baumannii division and highlights its role as a septal peptidoglycan synthase. IMPORTANCE Peptidoglycan biosynthesis is a validated target of β-lactam antibiotics, and it is critical that we understand essential processes in multidrug-resistant pathogens such as Acinetobacter baumannii. While model systems such as Escherichia coli have shown that PBP1A is associated with side wall peptidoglycan synthesis, we show herein that A. baumannii PBP1A directly interacts with the divisome component PBP3 to promote division, suggesting a unique role for the enzyme in this highly drug-resistant nosocomial pathogen. A. baumannii demonstrated unanticipated resistance and tolerance to envelope-targeting antibiotics, which may be driven by rewired peptidoglycan machinery and may underlie therapeutic failure during antibiotic treatment.
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