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

Plos Pathogens
|April 12, 2008
PubMed

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: Pathophysiology01:15

Ischemic Stroke ll: Pathophysiology

An ischemic stroke occurs when a cerebral blood vessel becomes obstructed, most often by a thrombus or embolus, interrupting the delivery of oxygen and glucose to brain tissue. Because neurons rely on continuous aerobic metabolism, energy failure begins within minutes of reduced perfusion. The region receiving the least blood flow becomes the infarct core, an area of irreversible cellular death. Surrounding this core lies the penumbra, a zone of hypoperfused but still viable tissue that is...
54
Bacterial Meningitis II: Pathophysiology01:26

Bacterial Meningitis II: Pathophysiology

Bacterial meningitis typically begins when pathogens such as Neisseria meningitidis and Streptococcus pneumoniae colonize the nasopharynx and invade the bloodstream. This process is facilitated by bacterial virulence factors, such as polysaccharide capsules, which resist phagocytosis and complement-mediated killing. Less commonly, bacteria reach the central nervous system via contiguous spread from infections like otitis media or sinusitis, through congenital or acquired dural defects, or...
24
Cerebral Edema ll: Pathophysiology01:22

Cerebral Edema ll: Pathophysiology

Vasogenic edema is a major form of cerebral edema characterized by abnormal accumulation of fluid in the brain’s extracellular space due to disruption of the blood–brain barrier (BBB). The BBB is a specialized structure composed of endothelial cells connected by tight junctions, supported by astrocytic endfeet and a basement membrane. Under normal conditions, it tightly regulates the movement of ions, proteins, and solutes between the bloodstream and brain parenchyma. When this...
19
Cytotoxic Edema: Pathophysiology01:21

Cytotoxic Edema: Pathophysiology

Cytotoxic edema is a form of cerebral edema characterized by intracellular swelling of neurons, astrocytes, and other glial cells. It develops when the mechanisms responsible for maintaining ionic gradients across the cell membrane become impaired. Under normal physiological conditions, the sodium–potassium ATPase actively transports sodium ions out of the cell and potassium ions into the cell, preserving osmotic balance and enabling electrical signaling. This pump requires a continuous...
20