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From Constructs to Crystals – Towards Structure Determination of β-barrel Outer Membrane Proteins
Published on: July 4, 2016
Crystal structure of the N-terminal domain of the group B streptococcus alpha C protein
Thierry C Aupérin1, Gilles R Bolduc, Miriam J Baron
1Department of Biological Chemistry and Molecular Pharmacology, Harvard Medical School, Boston, Massachusetts 02115, USA.
Insights
The crystal structure of Group B Streptococcus alpha C protein
Area of Science:
- Microbiology
- Structural Biology
- Biochemistry
Background:
- Group B Streptococcus (GBS) causes severe neonatal infections and significant maternal morbidity.
- GBS invasion of host tissues involves translocation across epithelial barriers.
- Alpha C protein (ACP) is a key GBS adhesin mediating bacterial internalization and translocation.
Purpose of the Study:
- To determine the crystal structure of the N-terminal domain of ACP (NtACP).
- To elucidate the structural basis for GBS epithelial cell invasion and identify potential binding sites.
Main Methods:
- X-ray crystallography was used to determine the 1.86-Å resolution structure of NtACP.
- Structural alignments and bioinformatic analyses identified conserved motifs and potential binding sites.
- Biochemical assays were performed to validate heparin binding and cell adhesion properties.
Main Results:
- NtACP possesses a unique two-domain structure: an N-terminal beta-sandwich (FnIII-like) and a C-terminal three-helix bundle.
- A potential integrin-binding motif (KT(146)D, R(110), D(118)) was identified.
- Heparin binding activity was confirmed, with a proposed binding site on the three-helix bundle and adjacent domains.
Conclusions:
- This is the first crystal structure of a Gram-positive surface alpha-like protein.
- The structure provides atomic-level insights into GBS internalization mechanisms.
- Understanding NtACP structure and function can inform strategies to combat GBS infections.
Abstract:
Group B Streptococcus (GBS) is the leading cause of bacterial pneumonia, sepsis, and meningitis among neonates and an important cause of morbidity among pregnant women and immunocompromised adults. Invasive diseases due to GBS are attributed to the ability of the pathogen to translocate across human epithelial surfaces. The alpha C protein (ACP) has been identified as an invasin that plays a role in internalization and translocation of GBS across epithelial cells. The soluble N-terminal domain of ACP (NtACP) blocks the internalization of GBS. We determined the 1.86-A resolution crystal structure of NtACP comprising residues Ser(52) through Leu(225) of the full-length ACP. NtACP has two domains, an N-terminal beta-sandwich and a C-terminal three-helix bundle. Structural and topological alignments reveal that the beta-sandwich shares structural elements with the type III fibronectin fold (FnIII), but includes structural elaborations that make it unique. We have identified a potential integrin-binding motif consisting of Lys-Thr-Asp(146), Arg(110), and Asp(118). A similar arrangement of charged residues has been described in other invasins. ACP shows a heparin binding activity that requires NtACP. We propose a possible heparin-binding site, including one surface of the three-helix bundle, and nearby portions of the sandwich and repeat domains. We have validated this prediction using assays of the heparin binding and cell-adhesion properties of engineered fragments of ACP. This is the first crystal structure of a member of the highly conserved Gram-positive surface alpha-like protein family, and it will enable the internalization mechanism of GBS to be dissected at the atomic level.
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