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Updated: Jan 21, 2026

Biochemical and Structural Characterization of the Carbohydrate Transport Substrate-binding-protein SP0092
Published on: October 2, 2017
Structure of the UspA1 protein fragment from Moraxella catarrhalis responsible for C3d binding
Kornelia M Mikula1, Robert Kolodziejczyk1, Adrian Goldman2
1Molecular and Integrative Biosciences, Faculty of Biological and Environmental Sciences, University of Helsinki, Helsinki, Finland.
Abstract:
The gram-negative bacterium Moraxella catarrhalis infects humans exclusively, causing various respiratory tract diseases, including acute otitis media in children, septicaemia or meningitis in adults, and pneumonia in the elderly. To do so, M. catarrhalis expresses virulence factors facilitating its entry and survival in the host. Among them are the ubiquitous surface proteins (Usps): A1, A2, and A2H, which all belong to the trimeric autotransporter adhesin family. They bind extracellular matrix molecules and inhibit the classical and alternative pathways of the complement cascade by recruiting complement regulators C3d and C4b binding protein. Here, we report the 2.5 Å resolution X-ray structure of UspA1299-452, which previous work had suggested contained the canonical C3d binding site found in both UspA1 and UspA2. We show that this fragment of the passenger domain contains part of the long neck domain (residues 299-336) and a fragment of the stalk (residues 337-452). The coiled-coil stalk is left-handed, with 7 polar residues from each chain facing the core and coordinating chloride ions or water molecules. Despite the previous reports of tight binding in serum-based assays, we were not able to demonstrate binding between C3d and UspA1299-452 using ELISA or biolayer interferometry, and the two proteins run separately on size-exclusion chromatography. Microscale thermophoresis suggested that the dissociation constant was 140.5 ± 8.4 μM. We therefore suggest that full-length proteins or other additional factors are important in UspA1-C3d interactions. Other molecules on the bacterial surface or present in serum may enhance binding of those two molecules.
Insights
Moraxella catarrhalis uses ubiquitous surface proteins (Usps) to evade the immune system. This study determined the structure of a UspA1 fragment, finding no direct C3d binding, suggesting other factors mediate this interaction.
Area of Science:
- Microbiology
- Structural Biology
- Immunology
Background:
- Moraxella catarrhalis is a human pathogen causing respiratory infections.
- Ubiquitous surface proteins (Usps) like UspA1 are virulence factors involved in host immune evasion.
- Usps are proposed to bind complement regulators such as C3d.
Purpose of the Study:
- To determine the X-ray structure of the UspA1 fragment (UspA1299-452) implicated in C3d binding.
- To investigate the direct binding interaction between UspA1299-452 and C3d.
Main Methods:
- X-ray crystallography at 2.5 Å resolution.
- Biochemical assays including ELISA, biolayer interferometry, and size-exclusion chromatography.
- Microscale thermophoresis to determine dissociation constant.
Main Results:
- The crystal structure revealed UspA1299-452 comprises part of the neck and stalk domains with a left-handed coiled-coil stalk.
- No direct binding was detected between UspA1299-452 and C3d using ELISA or biolayer interferometry.
- Microscale thermophoresis indicated a weak interaction with a dissociation constant of 140.5 ± 8.4 μM.
Conclusions:
- The UspA1299-452 fragment does not directly bind C3d effectively.
- Full-length UspA1 or additional factors may be required for significant UspA1-C3d interactions.
- Bacterial surface molecules or serum components might enhance the binding between UspA1 and C3d.
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