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Inceptor counteracts insulin signalling in β-cells to control glycaemia

Author

Listed:
  • Ansarullah

    (Helmholtz Center Munich
    German Center for Diabetes Research (DZD))

  • Chirag Jain

    (Helmholtz Center Munich
    German Center for Diabetes Research (DZD))

  • Fataneh Fathi Far

    (Helmholtz Center Munich
    Technical University of Munich)

  • Sarah Homberg

    (Helmholtz Center Munich
    Technical University of Munich)

  • Katharina Wißmiller

    (Helmholtz Center Munich
    Technical University of Munich)

  • Felizitas Gräfin Hahn

    (Helmholtz Center Munich
    Technical University of Munich)

  • Aurelia Raducanu

    (Helmholtz Center Munich
    German Center for Diabetes Research (DZD))

  • Silvia Schirge

    (Helmholtz Center Munich
    German Center for Diabetes Research (DZD))

  • Michael Sterr

    (Helmholtz Center Munich
    German Center for Diabetes Research (DZD)
    Technical University of Munich)

  • Sara Bilekova

    (Helmholtz Center Munich
    Technical University of Munich)

  • Johanna Siehler

    (Helmholtz Center Munich
    Technical University of Munich)

  • Julius Wiener

    (Helmholtz Pioneer Campus, Helmholtz Center Munich
    University of Freiburg)

  • Lena Oppenländer

    (Helmholtz Center Munich
    Technical University of Munich)

  • Amir Morshedi

    (Helmholtz Center Munich)

  • Aimée Bastidas-Ponce

    (Helmholtz Center Munich
    German Center for Diabetes Research (DZD)
    Technical University of Munich)

  • Gustav Collden

    (Institute of Diabetes and Obesity, Helmholtz Center Munich)

  • Martin Irmler

    (German Center for Diabetes Research (DZD)
    Helmholtz Center Munich)

  • Johannes Beckers

    (German Center for Diabetes Research (DZD)
    Helmholtz Center Munich
    Technical University of Munich)

  • Annette Feuchtinger

    (Helmholtz Center Munich)

  • Michal Grzybek

    (German Center for Diabetes Research (DZD)
    Dresden University of Technology)

  • Christin Ahlbrecht

    (German Center for Diabetes Research (DZD)
    Helmholtz Center Munich
    Leibniz University Hannover)

  • Regina Feederle

    (Helmholtz Center Munich)

  • Oliver Plettenburg

    (German Center for Diabetes Research (DZD)
    Helmholtz Center Munich
    Leibniz University Hannover)

  • Timo D. Müller

    (German Center for Diabetes Research (DZD)
    Institute of Diabetes and Obesity, Helmholtz Center Munich)

  • Matthias Meier

    (Helmholtz Pioneer Campus, Helmholtz Center Munich
    University of Freiburg)

  • Matthias H. Tschöp

    (German Center for Diabetes Research (DZD)
    Technical University of Munich
    Institute of Diabetes and Obesity, Helmholtz Center Munich)

  • Ünal Coskun

    (German Center for Diabetes Research (DZD)
    Dresden University of Technology
    Technical University Dresden)

  • Heiko Lickert

    (Helmholtz Center Munich
    German Center for Diabetes Research (DZD)
    Technical University of Munich)

Abstract

Resistance to insulin and insulin-like growth factor 1 (IGF1) in pancreatic β-cells causes overt diabetes in mice; thus, therapies that sensitize β-cells to insulin may protect patients with diabetes against β-cell failure1–3. Here we identify an inhibitor of insulin receptor (INSR) and IGF1 receptor (IGF1R) signalling in mouse β-cells, which we name the insulin inhibitory receptor (inceptor; encoded by the gene Iir). Inceptor contains an extracellular cysteine-rich domain with similarities to INSR and IGF1R4, and a mannose 6-phosphate receptor domain that is also found in the IGF2 receptor (IGF2R)5. Knockout mice that lack inceptor (Iir−/−) exhibit signs of hyperinsulinaemia and hypoglycaemia, and die within a few hours of birth. Molecular and cellular analyses of embryonic and postnatal pancreases from Iir−/− mice showed an increase in the activation of INSR–IGF1R in Iir−/− pancreatic tissue, resulting in an increase in the proliferation and mass of β-cells. Similarly, inducible β-cell-specific Iir−/− knockout in adult mice and in ex vivo islets led to an increase in the activation of INSR–IGF1R and increased proliferation of β-cells, resulting in improved glucose tolerance in vivo. Mechanistically, inceptor interacts with INSR–IGF1R to facilitate clathrin-mediated endocytosis for receptor desensitization. Blocking this physical interaction using monoclonal antibodies against the extracellular domain of inceptor resulted in the retention of inceptor and INSR at the plasma membrane to sustain the activation of INSR–IGF1R in β-cells. Together, our findings show that inceptor shields insulin-producing β-cells from constitutive pathway activation, and identify inceptor as a potential molecular target for INSR–IGF1R sensitization and diabetes therapy.

Suggested Citation

  • Ansarullah & Chirag Jain & Fataneh Fathi Far & Sarah Homberg & Katharina Wißmiller & Felizitas Gräfin Hahn & Aurelia Raducanu & Silvia Schirge & Michael Sterr & Sara Bilekova & Johanna Siehler & Juliu, 2021. "Inceptor counteracts insulin signalling in β-cells to control glycaemia," Nature, Nature, vol. 590(7845), pages 326-331, February.
  • Handle: RePEc:nat:nature:v:590:y:2021:i:7845:d:10.1038_s41586-021-03225-8
    DOI: 10.1038/s41586-021-03225-8
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