Related Experiment Video
Updated: Feb 7, 2026

Crystal Structure of the N-terminal Domain of Ryanodine Receptor from Plutella xylostella
Published on: November 30, 2018
Structure of ScpC, a virulence protease from Streptococcus pyogenes, reveals the functional domains and maturation
Chacko Jobichen1, Ying Chong Tan1, Mahalakshmi Tirumuru Prabhakar1
1Department of Biological Sciences, 14 Science Drive 4, National University of Singapore, Singapore 117543.
Abstract:
Group A Streptococcus (GAS; Streptococcus pyogenes) causes a wide range of infections, including pharyngitis, impetigo, and necrotizing fasciitis, and results in over half a million deaths annually. GAS ScpC (SpyCEP), a 180-kDa surface-exposed, subtilisin-like serine protease, acts as an essential virulence factor that helps S. pyogenes evade the innate immune response by cleaving and inactivating C-X-C chemokines. ScpC is thus a key candidate for the development of a vaccine against GAS and other pathogenic streptococcal species. Here, we report the crystal structures of full-length ScpC wild-type, the inactive mutant, and the ScpC-AEBSF inhibitor complex. We show ScpC to be a multi-domain, modular protein consisting of nine structural domains, of which the first five constitute the PR + A region required for catalytic activity. The four unique C-terminal domains of this protein are similar to collagen-binding and pilin proteins, suggesting an additional role for ScpC as an adhesin that might mediate the attachment of S. pyogenes to various host tissues. The Cat domain of ScpC is similar to subtilisin-like proteases with significant difference to dictate its specificity toward C-X-C chemokines. We further show that ScpC does not undergo structural rearrangement upon maturation. In the ScpC-inhibitor complex, the bound inhibitor breaks the hydrogen bond between active-site residues, which is essential for catalysis. Guided by our structure, we designed various epitopes and raised antibodies capable of neutralizing ScpC activity. Collectively, our results demonstrate the structure, maturation process, inhibition, and substrate recognition of GAS ScpC, and reveal the presence of functional domains at the C-terminal region.
Insights
Group A Streptococcus ScpC protease is crucial for bacterial survival. Structural analysis reveals its multi-domain nature and potential as a vaccine target by inhibiting its function.
Area of Science:
- Microbiology
- Structural Biology
- Immunology
Background:
- Group A Streptococcus (GAS) causes severe infections and significant mortality.
- The GAS ScpC (SpyCEP) protease is a key virulence factor, evading host immunity by cleaving chemokines.
- ScpC is a promising target for vaccines against GAS.
Purpose of the Study:
- To determine the crystal structures of GAS ScpC.
- To elucidate the structure, maturation, inhibition, and substrate recognition of ScpC.
- To explore ScpC's potential role as an adhesin.
Main Methods:
- X-ray crystallography of wild-type ScpC, inactive mutant, and ScpC-inhibitor complex.
- Structural domain analysis and comparison with known proteins.
- Epitope design and antibody generation for ScpC neutralization.
Main Results:
- ScpC is a nine-domain modular protein; the N-terminal five domains (PR+A) are essential for catalysis.
- The C-terminal four domains show similarity to collagen-binding and pilin proteins, suggesting adhesive functions.
- ScpC does not undergo structural changes during maturation, and inhibitor binding disrupts catalytic activity.
- Antibodies were generated that neutralize ScpC activity.
Conclusions:
- The study provides detailed structural insights into GAS ScpC, its catalytic mechanism, and its potential adhesive role.
- Understanding ScpC's structure and function facilitates the development of novel therapeutic strategies and vaccines against GAS infections.
- ScpC represents a validated target for anti-streptococcal interventions.
More Related Videos
11:32Following in Real Time the Impact of Pneumococcal Virulence Factors in an Acute Mouse Pneumonia Model Using Bioluminescent Bacteria
Published on: February 23, 2014
13:02Production, Crystallization, and Structure Determination of the IKK-binding Domain of NEMO
Published on: December 28, 2019
Related Concept Videos
Mechanical Protein Functions
Fruit Development, Structure, and Function
Mechanisms of Membrane Domain Formation
Another mechanism for membrane domain formation involves membrane proteins interacting with...
Structural Protein Function
Collagen, the most abundant protein in mammals, is found throughout the body. In connective tissue, such as skin, ligaments, and tendons, it provides tensile strength and elasticity. In bones and teeth, it mineralizes to...
Conservation of Protein Domains Over Different Proteins
A limited set of protein domains often duplicate and recombine during evolution. These domains can be organized in different combinations to...
Mechanical Protein Function