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Degradomic identification of membrane type 1-matrix metalloproteinase (MT1-MMP/MMP14) as an ADAMTS9 and ADAMTS20 substrate

Sumeda Nandadasa, Daniel Martin, Gauravi Deshpande, Karyn L. Robert, M. Sharon Stack, View ORCID ProfileYoshifumi Itoh, View ORCID ProfileSuneel S. Apte
doi: https://doi.org/10.1101/2022.10.17.512574
Sumeda Nandadasa
1Department of Biomedical Engineering, Cleveland Clinic Lerner Research Institute, Cleveland OH, USA
2Department of Pediatrics, University of Massachusetts Medical School, Worcester, MA, USA
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  • For correspondence: aptes@ccf.org Sumeda.Nandadasa@Umassmed.edu
Daniel Martin
1Department of Biomedical Engineering, Cleveland Clinic Lerner Research Institute, Cleveland OH, USA
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Gauravi Deshpande
3Imaging Core Facility, Cleveland Clinic Lerner Research Institute, Cleveland, OH, USA
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Karyn L. Robert
2Department of Pediatrics, University of Massachusetts Medical School, Worcester, MA, USA
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M. Sharon Stack
4Department of Chemistry and Biochemistry and Harper Cancer Center, University of Notre Dame, Notre Dame, IN, USA
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Yoshifumi Itoh
5Kennedy Institute for Rheumatology, University of Oxford, Oxford, UK
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  • ORCID record for Yoshifumi Itoh
Suneel S. Apte
1Department of Biomedical Engineering, Cleveland Clinic Lerner Research Institute, Cleveland OH, USA
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  • For correspondence: aptes@ccf.org Sumeda.Nandadasa@Umassmed.edu
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Summary

The secreted metalloproteases ADAMTS9 and ADAMTS20 are implicated in extracellular matrix (ECM) proteolysis and primary cilium biogenesis. Here, we show that clonal gene-edited RPE-1 cells in which ADAMTS9 was inactivated, and which constitutively lack ADAMTS20 expression, have morphologic characteristics distinct from parental RPE-1 cells. To investigate underlying proteolytic mechanisms, a quantitative N-terminomics method, terminal amine isotopic labeling of substrates (TAILS) was used to compare parental and gene-edited cells and their medium to identify ADAMTS9 substrates. Among differentially abundant N-terminally labeled internal peptides arising from secreted and transmembrane proteins, a peptide with lower abundance in the medium of gene-edited cells suggested cleavage at the Tyr314-Gly315 bond in the ectodomain of the transmembrane metalloprotease MT1-MMP, whose mRNA was also reduced in gene-edited cells. This cleavage, occurring in the MT1-MMP hinge i.e., between the catalytic and hemopexin domains, was orthogonally validated both by lack of an MT1-MMP catalytic domain fragment in the medium of gene-edited cells and restoration of its release from the cell surface by re-expression of ADAMTS9 and ADAMTS20, and was dependent on hinge O-glycosylation. Since MT1-MMP is a type I transmembrane protein, identification of an N-terminally labeled peptide in the medium suggested additional downstream cleavage sites in its ectodomain. Indeed, a C-terminally semi-tryptic MT1-MMP peptide with greater abundance in wild-type RPE-1 medium identified by a targeted search indicated a cleavage site in the hemopexin domain. Consistent with retention of MT1-MMP catalytic domain on the surface of gene-edited cells, pro-MMP2 activation, which requires cell-surface MT1-MMP, was increased. MT1-MMP knockdown in gene-edited ADAMTS9/20-deficient cells restored focal adhesions but not ciliogenesis. The findings expand the web of interacting proteases at the cell-surface, suggest a role for ADAMTS9 and ADAMTS20 in regulating cell-surface activity of MT1-MMP and indicate that MT1-MMP shedding does not underlie their observed requirement in ciliogenesis.

Highlights

  • ADAMTS9-deficient RPE-1 cells have impaired substrate attachment

  • ADAMTS9 and ADAMTS20 release the MT1-MMP catalytic domain from the cell-surface

  • Increased cell-surface MT1-MMP increases pro-MMP2 activation and collagenolysis

  • MT1-MMP knockdown restores substrate attachment of ADAMTS9-deficient RPE-1 cells.

In Brief ADAMTS9 and ADAMTS20 are homologous secreted proteases implicated in ECM proteolysis and ciliogenesis, but few relevant substrates of these proteases are currently known. Quantitative N-terminomics comparison of RPE-1 cells with ADAMTS9 inactivation and parental RPE-1 cells identified transmembrane protease MT1-MMP (MMP14) as a novel ADAMTS9 substrate. The resulting enhanced cell-surface MT1-MMP activity in the gene-edited cells contributes to their adhesion defect, but not lack of cilia. A key physiological function of ADAMTS9/20 may be to dampen cell-surface MT1-MMP activity.

Competing Interest Statement

The authors have declared no competing interest.

Footnotes

  • Competing interests: None

  • Abbreviations

    ADAMTS
    A disintegrin-like and metalloproteinase domain with thrombospondin type 1 repeats.
    ECM
    Extracellular matrix
    IRM
    Interference reflection microscopy
    MMP
    Matrix metalloproteinase
    MT1-MMP
    Membrane type 1-matrix metalloproteinase
    TAILS
    Terminal amine isotopic labeling of substrates
  • Copyright 
    The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
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    Posted October 19, 2022.
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    Degradomic identification of membrane type 1-matrix metalloproteinase (MT1-MMP/MMP14) as an ADAMTS9 and ADAMTS20 substrate
    Sumeda Nandadasa, Daniel Martin, Gauravi Deshpande, Karyn L. Robert, M. Sharon Stack, Yoshifumi Itoh, Suneel S. Apte
    bioRxiv 2022.10.17.512574; doi: https://doi.org/10.1101/2022.10.17.512574
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    Degradomic identification of membrane type 1-matrix metalloproteinase (MT1-MMP/MMP14) as an ADAMTS9 and ADAMTS20 substrate
    Sumeda Nandadasa, Daniel Martin, Gauravi Deshpande, Karyn L. Robert, M. Sharon Stack, Yoshifumi Itoh, Suneel S. Apte
    bioRxiv 2022.10.17.512574; doi: https://doi.org/10.1101/2022.10.17.512574

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