Related Experiment Video
Updated: May 2, 2026

Real-Time Assessment of Spinal Cord Microperfusion in a Porcine Model of Ischemia/Reperfusion
Published on: December 10, 2020
Molecular and cellular basis of microvascular perfusion deficits induced by Clostridium perfringens and Clostridium
Michael J Hickey1, Rain Y Q Kwan, Milena M Awad
1Centre for Inflammatory Diseases, Monash University Department of Medicine, Monash Medical Centre, Clayton, Victoria, Australia. michael.hickey@med.monash.edu.au
Abstract:
Reduced tissue perfusion leading to tissue ischemia is a central component of the pathogenesis of myonecrosis caused by Clostridium perfringens. The C. perfringens alpha-toxin has been shown capable of inducing these changes, but its potential synergy with perfringolysin O (theta-toxin) is less well understood. Similarly, Clostridium septicum is a highly virulent causative agent of spontaneous gas gangrene, but its effect on the microcirculation has not been examined. Therefore, the aim of this study was to use intravital microscopy to examine the effects of C. perfringens and C. septicum on the functional microcirculation, coupled with the use of isogenic toxin mutants to elucidate the role of particular toxins in the resultant microvascular perfusion deficits. This study represents the first time this integrated approach has been used in the analysis of the pathological response to clostridial toxins. Culture supernatants from wild-type C. perfringens induced extensive cell death within 30 min, as assessed by in vivo uptake of propidium iodide. Furthermore, significant reductions in capillary perfusion were observed within 60 min. Depletion of either platelets or neutrophils reduced the alteration in perfusion, consistent with a role for these blood-borne cells in obstructing perfusion. In addition, mutation of either the alpha-toxin or perfringolysin O structural genes attenuated the reduction in perfusion, a process that was reversed by genetic complementation. C. septicum also induced a marked reduction in perfusion, with the degree of microvascular compromise correlating with the level of the C. septicum alpha-toxin. Together, these data indicate that as a result of its ability to produce alpha-toxin and perfringolysin O, C. perfringens rapidly induces irreversible cellular injury and a marked reduction in microvascular perfusion. Since C. septicum induces a similar reduction in microvascular perfusion, it is postulated that this function is central to the pathogenesis of clostridial myonecrosis, irrespective of the causative bacterium.
Insights
Clostridium perfringens and Clostridium septicum rapidly reduce microvascular perfusion, causing tissue ischemia in myonecrosis. Alpha-toxin and perfringolysin O from C. perfringens, and alpha-toxin from C. septicum, are key contributors to this microcirculatory dysfunction.
Area of Science:
- Microbiology
- Pathophysiology
- Vascular Biology
Background:
- Reduced tissue perfusion and ischemia are central to myonecrosis pathogenesis.
- Clostridium perfringens alpha-toxin induces microcirculatory changes, but its synergy with perfringolysin O is unclear.
- Clostridium septicum's impact on microcirculation in gas gangrene is unexamined.
Purpose of the Study:
- To investigate the effects of C. perfringens and C. septicum on microcirculation using intravital microscopy.
- To elucidate the role of specific toxins in microvascular perfusion deficits through isogenic toxin mutants.
- To analyze the pathological response to clostridial toxins with an integrated approach.
Main Methods:
- Intravital microscopy to observe functional microcirculation.
- Use of isogenic toxin mutants of C. perfringens and C. septicum.
- Assessment of cell death via propidium iodide uptake.
- Depletion of platelets and neutrophils to evaluate their role.
Main Results:
- C. perfringens culture supernatants caused rapid cell death and reduced capillary perfusion.
- Platelets and neutrophils contributed to perfusion alterations.
- Mutations in alpha-toxin or perfringolysin O genes attenuated perfusion reduction in C. perfringens.
- C. septicum significantly reduced perfusion, correlating with its alpha-toxin levels.
Conclusions:
- C. perfringens rapidly induces irreversible cellular injury and microvascular perfusion deficits via alpha-toxin and perfringolysin O.
- C. septicum also markedly reduces microvascular perfusion, suggesting this is a common pathogenic mechanism.
- Microvascular perfusion deficits are central to clostridial myonecrosis, regardless of the specific bacterium.
Related Concept Videos
Ischemic Stroke ll: Pathophysiology
Bacterial Meningitis II: Pathophysiology
Cerebral Edema ll: Pathophysiology
Cytotoxic Edema: Pathophysiology

