Posted in

INFARCTION – Self Learning Series # 5, P # 71, Ch: # 3

INFARCTION - Self Learning Series # 5, P # 71, Ch: # 3
  • An infarct = an area of ischemic necrosis caused by blockage of the blood supply to a tissue.
  • Infarction commonly affects the heart and brain and is a major cause of illness and death.
  • Other important sites include:
    • lungs
    • bowel
    • distal extremities → ischemic necrosis may produce gangrene, especially in diabetes
  • The vast majority of infarctions result from:
    • arterial thrombosis, or
    • arterial embolism.
  • Less common causes of arterial obstruction include:
    • vasospasm
    • hemorrhage into an atherosclerotic plaque → plaque expands and narrows the vessel
    • external compression of a vessel by:
      • tumor
      • dissecting aortic aneurysm
      • severe edema within a confined space, such as anterior tibial compartment syndrome
  • Other uncommon causes include:
    • twisting of vessels → testicular torsion or bowel volvulus
    • traumatic rupture of a vessel
    • vascular entrapment within a hernia sac
  • Venous thrombosis usually causes congestion rather than infarction.
  • This is because collateral/bypass venous channels often open → restore venous outflow → allow arterial inflow to continue.
  • Therefore, venous thrombosis usually causes infarction only when an organ has essentially a single venous outflow, such as:
    • testis
    • ovary

KEY CONCEPT

  • Infarction = vascular occlusion → ischemia → tissue necrosis.
  • Most infarcts are caused by arterial thrombosis or embolism.
  • Arterial obstruction → infarction is common.
  • Venous obstruction → usually congestion, because collateral drainage can develop.
  • Venous infarction is more likely in organs with one main efferent vein.

CONCEPTUAL EXAMPLES

  • Coronary artery thrombus → loss of blood supply to myocardium → myocardial infarction.
  • Cerebral arterial embolus → brain ischemia → cerebral infarction.
  • Testicular torsion → vessels twist → blood supply fails → testicular infarction.
  • Venous thrombosis in most tissues → alternate veins drain blood → mainly congestion rather than infarction.

MORPHOLOGY

  • Infarcts are classified by:
    • color → reflects the amount of hemorrhage
    • presence or absence of microbial infection
  • Therefore, infarcts may be:
    • Red (hemorrhagic) or white (anemic)
    • Septic or bland
  • Red infarcts occur in four main settings (Fig. 3.17A):
    • Venous occlusion
      • Example: testicular torsion
      • Blood enters but cannot drain properly → hemorrhagic infarction.
    • Tissues with dual circulation
      • Examples: lung and small intestine
      • Collateral arterial blood still enters the damaged area, but perfusion remains inadequate → red infarct.
    • Previously congested tissues
      • Slow venous outflow → blood accumulates → infarct becomes hemorrhagic.
    • Reperfusion after infarction
      • Blood flow returns after ischemic injury.
      • Example: after angioplasty opens an arterial obstruction.
      • Damaged vessels leak blood into the infarcted tissue → red infarct.

KEY CONCEPT

  • Red infarct = infarction with hemorrhage.
  • Think of four classic settings:
    venous blockage + dual blood supply + previous congestion + reperfusion.

CONCEPTUAL EXAMPLES

  • Testicular torsion → venous drainage blocked → blood accumulates → red infarct.
  • Pulmonary vessel occlusion → second blood supply still brings some blood → hemorrhagic infarct.
  • Angioplasty restores flow to already damaged tissue → blood leaks into it → red reperfusion infarct.

MORPHOLOGY

  • White (anemic) infarcts occur after arterial occlusion in solid organs with end-arterial circulation, especially:
    • heart
    • spleen
    • kidney (Fig. 3.17B)
  • White infarcts are usually wedge-shaped:
    • apex → points toward the blocked vessel
    • base → faces the outer surface of the organ
  • If the base reaches a serosal surface, a fibrinous exudate may form over it.
  • In an acute infarct:
    • margins are initially poorly defined and slightly hemorrhagic
    • with time → margins become clearer
    • a narrow hyperemic rim develops because of inflammation
  • Arterial infarcts in organs without dual circulation become progressively paler and more sharply defined with time.
  • In contrast, organs with dual blood supply, especially the lung, usually develop hemorrhagic (red) infarcts (Fig. 3.17A).
  • In hemorrhagic infarcts:
    • macrophages remove extravasated RBCs
    • heme iron → hemosiderin
    • extensive hemorrhage may eventually leave a firm brown residue
  • In most tissues, the main microscopic pattern is ischemic coagulative necrosis.
  • Within a few hours → inflammation begins around the infarct.
  • By about 1–2 days → the inflammatory border becomes well defined.
  • Later:
    • inflammation → repair
    • repair begins at the preserved margins
    • some surviving peripheral cells may regenerate if the supporting tissue framework remains intact
    • most infarcts eventually become a scar (Fig. 3.18)
  • Brain is the major exception:
    • ischemic injury in the CNS → liquefactive necrosis, not coagulative necrosis.
  • Septic infarcts occur when:
    • infected cardiac valve vegetations embolize, or
    • microbes infect already necrotic tissue.
  • The infected infarct may become an abscess → stronger inflammatory response → healing by organization and fibrosis.

KEY CONCEPT

  • White infarct → arterial blockage + solid end-arterial organ.
  • Red infarct → commonly occurs in tissues with dual blood supply.
  • Most infarcts → coagulative necrosis → inflammation → scar.
  • Brain infarct → liquefactive necrosis.
  • Septic infarct → infected infarct → abscess.

CONCEPTUAL EXAMPLES

  • Coronary artery blocked → pale wedge-like myocardial infarct → white infarct.
  • Pulmonary arterial blockage → blood still enters from another circulation → red infarct.
  • Kidney infarct → coagulative necrosis → inflammation → fibrous scar.
  • Brain ischemia → tissue softens and liquefies → liquefactive necrosis.
  • Infected valve vegetation embolizes → infected infarct → abscess.

Factors That Influence Infarct Development

  • Vascular occlusion may cause little effect or severe tissue necrosis, depending mainly on three factors.
  • Anatomy of vascular supply:
    • The most important factor is whether the tissue has an alternative blood supply.
    • Lung → dual supply from pulmonary + bronchial arteries → pulmonary arteriole blockage usually does not cause infarction unless bronchial flow is also reduced.
    • Liver → hepatic artery + portal vein → relatively resistant to infarction.
    • Hand and forearm → radial + ulnar arteries → alternative blood flow reduces infarction risk.
    • Kidney and spleen → end-arterial circulation → arterial blockage usually causes infarction.
  • Rate of occlusion:
    • Slow blockage is less likely to cause infarction because collateral vessels have time to enlarge and carry more blood.
    • Small connections normally exist between the major coronary arteries.
    • Slowly developing coronary obstruction → collateral flow may increase enough to prevent infarction, even if the original artery eventually becomes completely blocked.
  • Tissue vulnerability to hypoxia:
    • Different cells tolerate loss of blood supply for different lengths of time because their metabolic needs differ.
    • Neurons → irreversible injury after only 3–4 minutes.
    • Cardiac muscle cells → die after about 20–30 minutes of ischemia.
    • Fibroblasts → may survive many hours of ischemia.

KEY CONCEPT

  • Infarct development mainly depends on:
    vascular anatomy + speed of blockage + tissue sensitivity to hypoxia.
  • Dual/collateral blood supply → protects against infarction.
  • Slow occlusion → allows collateral circulation to develop.
  • Neurons are most vulnerable, myocardium is next, and fibroblasts are much more resistant.

CONCEPTUAL EXAMPLES

  • Pulmonary artery branch blocked but bronchial circulation remains intact → lung infarction may not occur.
  • Renal artery blocked → no major alternative supply → kidney infarction likely.
  • Coronary artery narrows slowly → collateral vessels enlarge → myocardium may remain viable.
  • Brain loses blood flow → neurons can die within 3–4 minutes.

Leave a Reply

Your email address will not be published. Required fields are marked *