Related Experiment Video
Updated: May 6, 2026

Adenoviral Transduction of Naive CD4 T Cells to Study Treg Differentiation
Published on: August 13, 2013
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.
Abstract:
A disintegrin and metalloproteases (ADAMs) have been implicated in many processes controlling organismic development and integrity. Important substrates of ADAM proteases include growth factors, cytokines and their receptors and adhesion proteins. The inducible but irreversible cleavage of their substrates alters cell-cell communication and signaling. The crucial role of ADAM proteases (e.g. ADAM10 and 17) for mammalian development became evident from respective knockout mice, that displayed pre- or perinatal lethality with severe defects in many organs and tissues. Although many substrates for these two ADAM proteases were identified over the last decade, the regulation of their surface appearance, their enzymatic activity and their substrate specificity are still not well understood. We therefore analyzed the constitutive and inducible surface expression of ADAM10 and ADAM17 on a variety of human T cell and tumor cell lines. We demonstrate that ADAM10 is constitutively present at comparably high levels on the majority of the tested cell types. Stimulation with phorbol ester and calcium ionophore does not significantly alter the amount of surface ADAM10, except for a slight down-regulation from T cell blasts. Using FasL shedding as a readout for ADAM10 activity, we show that PKC activation and calcium mobilization are both prerequisite for activation of ADAM10 resulting in a production of soluble FasL. In contrast to ADAM10, the close relative ADAM17 is detected at only low levels on unstimulated cells. ADAM17 surface expression on T cell blasts is rapidly induced by stimulation. Since this inducible mobilization of ADAM17 is sensitive to inhibitors of actin filament formation, we propose that ADAM17 but not ADAM10 is prestored in a subcellular compartment that is transported to the cell surface in an activation- and actin-dependent manner.
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.

