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Updated: Aug 14, 2025

Biomimetic Materials to Characterize Bacteria-host Interactions
Published on: November 16, 2015
Structure-function correlates of fibrinogen binding by Acinetobacter adhesins critical in catheter-associated urinary
Kevin O Tamadonfar1,2, Gisela Di Venanzio1, Jerome S Pinkner1,2
1Department of Molecular Microbiology, Washington University School of Medicine, St Louis, MO 63110.
Abstract:
Multidrug-resistant Acinetobacter baumannii infections are an urgent clinical problem and can cause difficult-to-treat nosocomial infections. During such infections, like catheter-associated urinary tract infections (CAUTI), A. baumannii rely on adhesive, extracellular fibers, called chaperone-usher pathway (CUP) pili for critical binding interactions. The A. baumannii uropathogenic strain, UPAB1, and the pan-European subclone II isolate, ACICU, use the CUP pili Abp1 and Abp2 (previously termed Cup and Prp, respectively) in tandem to establish CAUTIs, specifically to facilitate bacterial adherence and biofilm formation on the implanted catheter. Abp1 and Abp2 pili are tipped with two domain tip adhesins, Abp1D and Abp2D, respectively. We discovered that both adhesins bind fibrinogen, a critical host wound response protein that is released into the bladder upon catheterization and is subsequently deposited on the catheter. The crystal structures of the Abp1D and Abp2D receptor-binding domains were determined and revealed that they both contain a large, distally oriented pocket, which mediates binding to fibrinogen and other glycoproteins. Genetic, biochemical, and biophysical studies revealed that interactions with host proteins are governed by several critical residues in and along the edge of the binding pocket, one of which regulates the structural stability of an anterior loop motif. K34, located outside of the pocket but interacting with the anterior loop, also regulates the binding affinity of the protein. This study illuminates the mechanistic basis of the critical fibrinogen-coated catheter colonization step in A. baumannii CAUTI pathogenesis.
Insights
Multidrug-resistant Acinetobacter baumannii uses chaperone-usher pathway pili to bind fibrinogen on catheters, causing catheter-associated urinary tract infections. Understanding this binding mechanism is key to treating these difficult infections.
Area of Science:
- Microbiology
- Structural Biology
- Infectious Diseases
Background:
- Multidrug-resistant Acinetobacter baumannii causes difficult-to-treat nosocomial infections.
- Catheter-associated urinary tract infections (CAUTI) are a significant clinical problem.
- Acinetobacter baumannii utilizes chaperone-usher pathway (CUP) pili for adherence and biofilm formation.
Purpose of the Study:
- To elucidate the mechanism by which Acinetobacter baumannii adheres to catheters via CUP pili.
- To investigate the role of Abp1 and Abp2 pili in CAUTI pathogenesis.
- To determine the structural basis of fibrinogen binding by Abp1D and Abp2D adhesins.
Main Methods:
- Crystal structure determination of Abp1D and Abp2D receptor-binding domains.
- Genetic, biochemical, and biophysical analyses of pili-host protein interactions.
- Characterization of key residues and motifs involved in fibrinogen binding.
Main Results:
- Both Abp1D and Abp2D adhesins bind to fibrinogen, a host protein deposited on catheters.
- Crystal structures revealed a large binding pocket in the adhesins for fibrinogen and glycoprotein interaction.
- Specific residues within and outside the binding pocket, including K34, regulate binding affinity and structural stability.
Conclusions:
- This study reveals the mechanistic basis of Acinetobacter baumannii colonization on fibrinogen-coated catheters.
- Understanding these interactions is crucial for developing strategies to combat A. baumannii CAUTIs.
- The findings provide insights into the pathogenesis of multidrug-resistant bacterial infections.
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