Heme transport exhibits polarity in Caco-2 cells: evidence for an active and membrane protein-mediated process
- 1 December 2004
- journal article
- Published by American Physiological Society in American Journal of Physiology-Gastrointestinal and Liver Physiology
- Vol. 287 (6) , G1150-G1157
- https://doi.org/10.1152/ajpgi.00157.2004
Abstract
Heme prosthetic groups are vital for all living organisms, but they can also promote cellular injury by generating reactive oxygen species. Therefore, intestinal heme absorption and distribution should be carefully regulated. Although a human intestine brush-border heme receptor/transporter has been suggested, the mechanism by which heme crosses the apical membrane is unknown. After it enters the cell, heme is degraded by heme oxygenase-1 (HO-1), and iron is released. We hypothesized that heme transport is actively regulated in Caco-2 cells. Cells exposed to hemin from the basolateral side demonstrated a higher HO-1 induction than cells exposed to hemin from the apical surface. Hemin secretion was more rapid than absorption, and net secretion occurred against a concentration gradient. Treatment of the apical membrane with trypsin increased hemin absorption by threefold, but basolateral treatment with trypsin had no effect on hemin secretion. Neither apical nor basolateral trypsin changed the paracellular pathway. We conclude that heme is acquired and transported in both absorptive and secretory directions in polarized Caco-2 cells. Secretion is via an active metabolic/transport process. Trypsin applied to the apical surface increased hemin absorption, suggesting that protease activity can uncover a process for heme uptake that is otherwise quiescent. These processes may be involved in preventing iron overload in humans.Keywords
This publication has 35 references indexed in Scilit:
- The heme synthesis and degradation pathways: role in oxidant sensitivityFree Radical Biology & Medicine, 2000
- Iron Absorption and TransportThe Lancet Healthy Longevity, 1999
- Oxidative stress causes enhanced endothelial cell injury in human heme oxygenase-1 deficiencyJournal of Clinical Investigation, 1999
- Role of Heme–Hemopexin in Human T-Lymphocyte ProliferationExperimental Cell Research, 1997
- Zinc protoporphyrin administration for suppression of increased bilirubin production by iatrogenic hemolysis in rhesus neonatesThe Journal of Pediatrics, 1990
- Heme binding to Hep G2 human hepatoma cellsJournal of Hepatology, 1990
- A rosette receptor assay with haem‐microbeads. Demonstration of a haem receptor on K562 cellsEuropean Journal of Haematology, 1987
- Spectral and other studies on the intestinal haem receptor of the pigBiochimica et Biophysica Acta (BBA) - Protein Structure and Molecular Enzymology, 1982
- Dietary Heme Iron AbsorptionScandinavian Journal of Gastroenterology, 1979
- An Intestinal Receptor for HemeScandinavian Journal of Haematology, 1979