Detection, characterization, and bioavailability of membrane-associated iron in the intact sickle red cell

T Sugihara1, T Repka, R P Hebbel

  • 1Department of Medicine, University of Minnesota Medical School, Minneapolis 55455.

Insights

Membrane-associated iron in sickle red blood cells (RBCs) contributes to oxidative damage. Cellular dehydration exacerbates this iron-catalyzed peroxidation, highlighting a key mechanism in sickle cell disease pathology.

Area of Science:

  • Hematology
  • Biochemistry
  • Cell Biology

Background:

  • The role of membrane-associated iron in sickle red blood cell (RBC) pathophysiology remains debated.
  • Detecting this iron is challenging due to its location within intact cells.

Purpose of the Study:

  • To investigate the existence and pathophysiologic importance of membrane-associated iron in intact sickle RBCs.
  • To determine the bioavailability of this iron in catalyzing peroxidation.

Main Methods:

  • Loading intact RBCs with phosphatidylethanolamine hydroperoxide (PEOOH) using phospholipid exchange protein.
  • Monitoring peroxidation by-products to assess membrane iron's catalytic activity.
  • Correlating peroxidation response with measured iron levels on inside-out membranes.

Main Results:

  • Sickle RBCs exhibited significant peroxidation after PEOOH loading, unlike normal RBCs.
  • Catalytic iron in sickle RBCs included both heme and free iron at the inner membrane leaflet.
  • Peroxidation was promoted by cellular dehydration and inhibited by hydration in sickle RBCs.
  • Iron levels on membranes correlated directly with the peroxidation response.

Conclusions:

  • Confirms the presence and bioavailability of membrane-associated heme and free iron in intact sickle RBCs.
  • Demonstrates iron's role in injurious peroxidative processes within sickle RBC membranes.
  • Suggests that cell hydration status modulates sickle hemoglobin-membrane lipid interactions, impacting oxidative damage in dehydrated sickle RBCs.