Molecular basis of complement activation in ischemic myocardium: identification of specific molecules of

A Kagiyama1, H E Savage, L H Michael

  • 1Laboratory for Immunology Research, Veterans Administration Medical Center, Houston, TX 77211.

Circulation Research
|March 1, 1989
PubMed

Insights

Mitochondria release molecules that activate the complement system during heart attack. These molecules trigger inflammation by attracting immune cells to the injured heart tissue.

Area of Science:

  • Biochemistry
  • Immunology
  • Cardiovascular Science

Background:

  • Mitochondria are implicated as a source of complement-activating molecules during myocardial ischemic injury.
  • This activation may stimulate polymorphonuclear leukocyte infiltration, contributing to tissue damage.

Purpose of the Study:

  • To identify specific molecules released from cardiac mitochondria that activate the classical complement pathway.
  • To understand the role of these molecules in the inflammatory response following myocardial ischemia.

Main Methods:

  • Detergent lysates of canine cardiac mitochondria were fractionated using polyacrylamide gel electrophoresis.
  • Nitrocellulose paper replicas were incubated with C1q and serum to identify complement-consuming molecules.
  • Complement localization was assessed using antisera against complement components (C1q, C3, C5, C9).

Main Results:

  • Twelve C1q-binding molecules (23-67 kDa) were identified, capable of fixing downstream complement components.
  • Specific molecular weight ranges (45-53 kDa, 34, 30, 26, 23 kDa) were found to consume complement.
  • At least two identified molecules reacted with antisera from canine cardiac lymph post-occlusion.

Conclusions:

  • Specific mitochondrial molecules can activate the complement cascade following myocardial ischemic injury.
  • These findings provide direct evidence linking mitochondrial components to complement activation and inflammation in the heart.
  • This activation may play a significant role in the inflammatory response and subsequent tissue damage after heart attack.

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