Identification of membrane proteins regulated by ADAM15 by SUSPECS proteomics

Matteo Calligaris1,2, Chun Y Yang3, Simone Bonelli1,4

  • 1Proteomics Group of Fondazione Ri.MED, Research Department IRCCS ISMETT (Istituto Mediterraneo per i Trapianti e Terapie ad Alta Specializzazione), Palermo, Italy.

Insights

Researchers identified new proteins regulated by ADAM15, a sheddase crucial for cartilage health. ADAM15 silencing altered cell surface levels of programmed cell death 1 ligand 2 (PDCD1LG2), vasorin, and SLC26A2.

Area of Science:

  • Biochemistry and Molecular Biology
  • Cell Biology
  • Proteomics

Background:

  • ADAM15 is a metalloproteinase involved in cartilage homeostasis, but its substrates and functions are poorly understood.
  • Unlike well-studied ADAM17 and ADAM10, ADAM15's role in regulating cell surface proteins requires further investigation.

Purpose of the Study:

  • To identify novel substrates and proteins regulated by ADAM15 at the cell surface.
  • To elucidate the mechanisms by which ADAM15 influences protein levels relevant to cartilage homeostasis.

Main Methods:

  • Utilized "surface-spanning enrichment with click-sugars (SUSPECS)" proteomics to profile cell surface proteins in chondrocyte-like cells.
  • Employed siRNA to silence ADAM15 expression and analyzed changes in membrane protein levels.
  • Validated findings using orthogonal techniques, including mass spectrometry.

Main Results:

  • Silencing ADAM15 altered the membrane levels of 13 previously unknown regulated proteins.
  • Confirmed ADAM15 regulates cell surface levels of programmed cell death 1 ligand 2 (PDCD1LG2), vasorin, and SLC26A2.
  • ADAM15 knockdown increased PDCD1LG2 and decreased vasorin and SLC26A2, suggesting a non-shedding regulatory mechanism for PDCD1LG2.

Conclusions:

  • ADAM15 plays a significant role in regulating cell surface protein homeostasis, particularly in cartilage.
  • The mechanism by which ADAM15 regulates PDCD1LG2 differs from canonical ectodomain shedding.
  • Identified novel ADAM15 targets with implications for understanding cartilage biology and disease.

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