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Published on: March 2, 2018
ADP-ribosylation factors regulate the development of CT signaling in immature human enterocytes
Lei Lu1, Abdullah Khan, W Allan Walker
1Developmental Gastroenterology Lab., Massachusetts General Hospital for Children, Charlestown, MA 02129-4404, USA. lul@helix.mgh.harvard.edu
Insights
Immature infant guts show altered responses to cholera toxin (CT) due to differences in Gs(alpha) activation. This involves ADP-ribosylation factors (ARFs) influencing CT trafficking and signaling, explaining severe infantile diarrhea.
Area of Science:
- Gastroenterology
- Cell Biology
- Pediatric Infectious Diseases
Background:
- Diarrheal diseases cause significant infant mortality globally.
- Immature enterocytes' interaction with bacteria and toxins increases neonatal susceptibility.
- Mechanisms of excessive cholera toxin response in immature guts remain unclear.
Purpose of the Study:
- Characterize cellular/molecular changes in Gs(alpha) during intestinal development.
- Investigate differences in cholera toxin (CT)-mediated Gs(alpha) activation between fetal and mature enterocytes.
- Explore the role of ADP-ribosylation factors (ARFs) in CT signaling during gut development.
Main Methods:
- Utilized T84 (mature enterocyte) and H4 (immature enterocyte) human cell lines.
- Employed a cell culture model of human intestinal development.
- Analyzed cholera toxin (CT)-mediated Gs(alpha) activation and ARF interactions.
Main Results:
- CT-mediated Gs(alpha) activation differs significantly between fetal and mature enterocytes.
- ADP-ribosylation factor (ARF) interaction with CT signaling is implicated in these differences.
- ARF1 facilitates clathrin-mediated CT trafficking; ARF6 promotes clathrin-mediated CT endocytosis.
Conclusions:
- Immature enterocytes exhibit a distinct cellular response to CT compared to mature enterocytes.
- Developmentally regulated intestinal cellular responses involving ARFs contribute to severe infantile toxigenic diarrhea.
- Findings elucidate mechanisms underlying increased susceptibility to diarrheal diseases in infants.
Abstract:
Diarrheal disease is a major cause of morbidity and mortality in infants and children worldwide. Evidence suggests that the interaction of immature human enterocytes with bacteria and their enterotoxins may account for the increased susceptibility of neonates to diarrheal diseases. However, the precise mechanisms that contribute to the excessive response to cholera toxin by the immature gut are largely unknown. Our aim was to characterize the cellular/molecular changes in Gs(alpha) during gut development. In this study, a colonic human epithelial cell line (T84) was used as representative of a mature enterocyte and a human fetal primary small intestinal cell line (H4) as representative of an immature enterocyte. Using our cell culture model of human intestinal development, we provide consistent evidence that cholera toxin (CT)-mediated Gs(alpha) activation in fetal enterocytes differs from that of mature enterocytes, and the difference may be related to ADP-ribosylation factor (ARF) interaction with the CT-signaling process. Here we demonstrated that ARF1 may play a critical role in clathrin-mediated CT trafficking through the endoplasmic reticulum and Golgi and that ARF6 may facilitate clathrin-mediated CT endocytosis that leads to enhanced Gs(alpha) activation by CT. Collectively, these findings support our hypothesis that there is a developmentally regulated intestinal cellular response to bacterial exotoxins involving complex cellular events that accounts for the increased incidence and severity of toxogenic diarrhea during infancy.
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