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Enrichment and Detection of Clostridium perfringens Toxinotypes in Retail Food Samples
Published on: October 18, 2019
Structural Basis of Clostridium perfringens Enterotoxin Activation and Oligomerization by Trypsin
Chinemerem P Ogbu1, Srajan Kapoor1, Alex J Vecchio1
1Department of Structural Biology, University at Buffalo, The State University of New York, Buffalo, NY 14203, USA.
Abstract:
Clostridium perfringens enterotoxin (CpE) is a β-pore forming toxin that disrupts gastrointestinal homeostasis in mammals by binding membrane protein receptors called claudins. Although structures of CpE fragments bound to claudins have been determined, the mechanisms that trigger CpE activation and oligomerization that lead to the formation of cytotoxic β-pores remain undetermined. Proteolysis of CpE in the gut by trypsin has been shown to play a role in this and subsequent cytotoxicity processes. Here, we report solution structures of full-length and trypsinized CpE using small-angle X-ray scattering (SAXS) and crystal structures of trypsinized CpE and its C-terminal claudin-binding domain (cCpE) using X-ray crystallography. Mass spectrometry and SAXS uncover that removal of the CpE N-terminus by trypsin alters the CpE structure to expose areas that are normally unexposed. Crystal structures of trypsinized CpE and cCpE reveal unique dimer interfaces that could serve as oligomerization sites. Moreover, comparisons of these structures to existing ones predict the functional implications of oligomerization in the contexts of cell receptor binding and β-pore formation. This study sheds light on trypsin's role in altering CpE structure to activate its function via inducing oligomerization on its path toward cytotoxic β-pore formation. Its findings can incite new approaches to inhibit CpE-based cytotoxicity with oligomer-disrupting therapeutics.
Insights
Trypsin proteolysis activates Clostridium perfringens enterotoxin (CpE) by altering its structure, exposing new sites for oligomerization and leading to cytotoxic pore formation. This reveals potential therapeutic targets for inhibiting CpE activity.
Area of Science:
- Structural biology
- Microbial pathogenesis
- Biochemistry
Background:
- Clostridium perfringens enterotoxin (CpE) disrupts gastrointestinal homeostasis by binding claudins.
- Mechanisms of CpE activation, oligomerization, and β-pore formation are not fully understood.
- Trypsin proteolysis is implicated in CpE-mediated cytotoxicity.
Purpose of the Study:
- To elucidate the structural mechanisms of CpE activation by trypsin.
- To investigate CpE oligomerization and its role in cytotoxicity.
- To identify potential therapeutic strategies against CpE.
Main Methods:
- Small-angle X-ray scattering (SAXS) for solution structures.
- X-ray crystallography for detailed structural analysis.
- Mass spectrometry to identify structural changes.
Main Results:
- Trypsin cleavage exposes normally hidden regions of CpE.
- Crystal structures reveal unique dimer interfaces in trypsinized CpE and cCpE.
- Oligomerization sites are identified, predicting functional implications for pore formation.
Conclusions:
- Trypsin proteolysis activates CpE by inducing structural changes that promote oligomerization.
- The findings provide insights into CpE-mediated cytotoxicity.
- This study suggests novel therapeutic approaches targeting CpE oligomerization.
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