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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.
Abstract:
ADAM15 is a member of the disintegrin-metalloproteinase family of sheddases, which plays a role in several biological processes including cartilage homeostasis. In contrast with well-characterized ADAMs, such as the canonical sheddases ADAM17 and ADAM10, little is known about substrates of ADAM15 or how the enzyme exerts its biological functions. Herein, we used "surface-spanning enrichment with click-sugars (SUSPECS)" proteomics to identify ADAM15 substrates and/or proteins regulated by the proteinase at the cell surface of chondrocyte-like cells. Silencing of ADAM15 by siRNAs significantly altered membrane levels of 13 proteins, all previously not known to be regulated by ADAM15. We used orthogonal techniques to validate ADAM15 effects on 3 of these proteins which have known roles in cartilage homeostasis. This confirmed that ADAM15-silencing increased cell surface levels of the programmed cell death 1 ligand 2 (PDCD1LG2) and reduced cell surface levels of vasorin and the sulfate transporter SLC26A2 through an unknown post-translational mechanism. The increase of PDCD1LG2 by ADAM15 knockdown, a single-pass type I transmembrane protein, suggested it could be a proteinase substrate. However, shed PDCD1LG2 could not be detected even by a data-independent acquisition mass spectrometry, a highly sensitive method for identification and quantification of proteins in complex protein samples, suggesting that ADAM15 regulates PDCD1LG2 membrane levels by a mechanism different from ectodomain shedding.
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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