Control of the intracellular pathway of CD1e

Blandine Maître1, Catherine Angénieux, Jean Salamero

  • 1INSERM, U725, Etablissement Français du Sang-Alsace, Strasbourg 67065, France, and Université Louis-Pasteur, Strasbourg 67000, France.

Insights

Ubiquitination of CD1e protein controls its pathway in dendritic cells. This process triggers CD1e’s exit from Golgi compartments, directing it to lysosomes for antigen processing.

Area of Science:

  • Immunology
  • Cell Biology
  • Protein Trafficking

Background:

  • CD1e is a Golgi-resident protein in dendritic cells involved in glycolipipd antigen processing.
  • Its intracellular trafficking differs significantly from other CD1 molecules.
  • The cytoplasmic tail's role in CD1e's pathway remains largely uncharacterized.

Purpose of the Study:

  • To investigate the role of the CD1e cytoplasmic tail in regulating its intracellular transport.
  • To elucidate the mechanism controlling CD1e's unique pathway in dendritic cells.

Main Methods:

  • Chimeric molecule experiments to assess the function of CD1e's cytoplasmic domain.
  • Site-directed mutagenesis to replace lysines with arginines, disrupting ubiquitination.
  • Fusion of mutated CD1e with ubiquitin to rescue trafficking defects.

Main Results:

  • The cytoplasmic domain dictates CD1e's pathway and endosomal cleavage.
  • The C-terminal half of the tail is crucial for Golgi accumulation.
  • Monoubiquitination of the cytoplasmic domain regulates Golgi exit and lysosomal transport.
  • Mutating lysines to arginines causes Golgi accumulation and plasma membrane expression.
  • Restoring ubiquitination rescues normal trafficking.

Conclusions:

  • CD1e ubiquitination acts as a signal for Golgi exit and subsequent transport to endosomes.
  • This ubiquitin-dependent pathway explains the distinct intracellular trafficking of CD1e in dendritic cells.
  • Understanding CD1e trafficking is key to its role in immune responses.

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