Differential surface expression of ADAM10 and ADAM17 on human T lymphocytes and tumor cells

Henriette Ebsen1, Alexandra Schröder, Dieter Kabelitz

  • 1University of Kiel, Institute for Immunology, University Hospital Schleswig-Holstein Campus Kiel, Kiel, Germany.

Plos One
|October 17, 2013
PubMed

Insights

A disintegrin and metalloproteases (ADAMs) regulate cell signaling. Researchers found ADAM10 is always on cell surfaces, while ADAM17 is mobilized upon stimulation, impacting development and disease.

Area of Science:

  • Cell biology
  • Molecular biology
  • Biochemistry

Background:

  • A disintegrin and metalloproteases (ADAMs) are crucial for organismic development and integrity.
  • ADAM proteases cleave substrates like growth factors and adhesion proteins, altering cell communication.
  • ADAM10 and ADAM17 are vital, with knockout mice showing severe developmental defects.

Purpose of the Study:

  • To investigate the surface expression, activity, and regulation of ADAM10 and ADAM17.
  • To understand how these proteases are controlled and their substrates are processed.

Main Methods:

  • Analysis of constitutive and inducible surface expression of ADAM10 and ADAM17 on human T cell and tumor cell lines.
  • Assessing ADAM10 activity via FasL shedding.
  • Investigating the role of protein kinase C (PKC) activation, calcium mobilization, and actin filament formation.

Main Results:

  • ADAM10 is constitutively expressed at high levels on most tested cells, with minor changes upon stimulation.
  • ADAM10 activity requires PKC activation and calcium mobilization, leading to soluble FasL production.
  • ADAM17 is expressed at low levels on unstimulated cells but rapidly induced on T cell blasts upon stimulation.
  • ADAM17 mobilization is actin-dependent, suggesting it's stored intracellularly and transported to the surface.

Conclusions:

  • ADAM10 and ADAM17 exhibit distinct regulation of their surface expression and activity.
  • ADAM10 is constitutively active, while ADAM17 requires inducible surface transport.
  • These findings provide insights into the differential roles and regulation of ADAM proteases in cellular processes.