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Updated: Aug 11, 2026

Assays for Studying the Role of Vitronectin in Bacterial Adhesion and Serum Resistance
Published on: October 16, 2018
Binding of vitronectin by the Moraxella catarrhalis UspA2 protein interferes with late stages of the complement
Ahmed S Attia1, Sanjay Ram, Peter A Rice
1Department of Microbiology, University of Texas Southwestern Medical Center, 5323 Harry Hines Blvd., Dallas, TX 75390-9048, USA.
Abstract:
Many Moraxella catarrhalis strains are resistant to the bactericidal activity of normal human serum (NHS). The UspA2 protein of the serum-resistant strain O35E has previously been shown to be directly involved in conferring serum resistance on this strain. Testing of 11 additional serum-resistant M. catarrhalis wild-type isolates and their uspA1 and uspA2 mutants showed that the uspA1 mutants of all 11 strains were consistently serum resistant and that the uspA2 mutants of these same 11 strains were always serum sensitive. Analysis of complement deposition on four different serum-resistant M. catarrhalis strains and their serum-sensitive uspA2 mutants showed that, for three of these four strain sets, the wild-type and mutant strains bound similar amounts of early complement components. In contrast, there was a significant reduction in the amount of the polymerized C9 on the wild-type strains relative to that on the uspA2 mutants. These same three wild-type strains bound more vitronectin than did their uspA2 mutants. UspA2 proteins from these three strains, when expressed in Haemophilus influenzae, bound vitronectin and conferred serum resistance on this organism. Furthermore, vitronectin-depleted NHS exhibited bactericidal activity against these same three serum-resistant wild-type strains; addition of purified vitronectin to this serum restored serum resistance. In contrast, binding of the complement regulator C4b-binding protein by the M. catarrhalis strains used in this study was found to be highly variable and did not appear to correlate with the serum-resistant phenotype. These results indicate that binding of vitronectin by UspA2 is involved in the serum resistance of M. catarrhalis; this represents the first example of vitronectin-mediated serum resistance on a microbe.
Insights
Moraxella catarrhalis uses the UspA2 protein to bind vitronectin, conferring resistance to normal human serum (NHS). This study reveals vitronectin-mediated serum resistance as a novel microbial defense mechanism.
Area of Science:
- Microbiology
- Immunology
- Bacterial Pathogenesis
Background:
- Moraxella catarrhalis frequently exhibits resistance to normal human serum (NHS), hindering its clearance by the immune system.
- The UspA2 protein of M. catarrhalis O35E was previously implicated in serum resistance.
Purpose of the Study:
- To investigate the role of UspA1 and UspA2 proteins in the serum resistance of multiple M. catarrhalis strains.
- To elucidate the mechanism underlying UspA2-mediated serum resistance.
Main Methods:
- Serum resistance testing of wild-type M. catarrhalis strains and their uspA1/uspA2 mutants.
- Analysis of complement component deposition (including C9) and vitronectin binding on bacterial surfaces.
- Expression of UspA2 in Haemophilus influenzae to assess vitronectin binding and serum resistance conferral.
- Testing bactericidal activity of vitronectin-depleted NHS and the effect of vitronectin repletion.
Main Results:
- UspA2 mutants consistently lost serum resistance, while uspA1 mutants remained resistant.
- Serum-resistant wild-type strains bound significantly less C9 and more vitronectin compared to their uspA2 mutants.
- Heterologous expression of UspA2 in H. influenzae conferred both vitronectin binding and serum resistance.
- Vitronectin depletion rendered NHS bactericidal against resistant strains, with resistance restored upon vitronectin addition.
Conclusions:
- The UspA2 protein mediates serum resistance in M. catarrhalis through vitronectin binding.
- This study presents the first evidence of vitronectin-mediated serum resistance in any microbe.
- Vitronectin binding by UspA2 is a key factor in M. catarrhalis survival within human serum.
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