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Distinct EH domains of the endocytic TPLATE complex confer lipid and protein binding

Author

Listed:
  • Klaas Yperman

    (Ghent University
    VIB Center for Plant Systems Biology)

  • Anna C. Papageorgiou

    (Masaryk University)

  • Romain Merceron

    (Ghent University
    VIB Center for Inflammation Research)

  • Steven De Munck

    (Ghent University
    VIB Center for Inflammation Research)

  • Yehudi Bloch

    (Ghent University
    VIB Center for Inflammation Research)

  • Dominique Eeckhout

    (Ghent University
    VIB Center for Plant Systems Biology)

  • Qihang Jiang

    (Ghent University
    VIB Center for Plant Systems Biology)

  • Pieter Tack

    (Ghent University)

  • Rosa Grigoryan

    (Ghent University)

  • Thomas Evangelidis

    (Masaryk University)

  • Jelle Van Leene

    (Ghent University
    VIB Center for Plant Systems Biology)

  • Laszlo Vincze

    (Ghent University)

  • Peter Vandenabeele

    (Ghent University
    Ghent University)

  • Frank Vanhaecke

    (Ghent University)

  • Martin Potocký

    (Academy of Sciences of the Czech Republic)

  • Geert De Jaeger

    (Ghent University
    VIB Center for Plant Systems Biology)

  • Savvas N. Savvides

    (Ghent University
    VIB Center for Inflammation Research)

  • Konstantinos Tripsianes

    (Masaryk University)

  • Roman Pleskot

    (Ghent University
    VIB Center for Plant Systems Biology
    Academy of Sciences of the Czech Republic)

  • Daniel Van Damme

    (Ghent University
    VIB Center for Plant Systems Biology)

Abstract

Clathrin-mediated endocytosis (CME) is the gatekeeper of the plasma membrane. In contrast to animals and yeasts, CME in plants depends on the TPLATE complex (TPC), an evolutionary ancient adaptor complex. However, the mechanistic contribution of the individual TPC subunits to plant CME remains elusive. In this study, we used a multidisciplinary approach to elucidate the structural and functional roles of the evolutionary conserved N-terminal Eps15 homology (EH) domains of the TPC subunit AtEH1/Pan1. By integrating high-resolution structural information obtained by X-ray crystallography and NMR spectroscopy with all-atom molecular dynamics simulations, we provide structural insight into the function of both EH domains. Both domains bind phosphatidic acid with a different strength, and only the second domain binds phosphatidylinositol 4,5-bisphosphate. Unbiased peptidome profiling by mass-spectrometry revealed that the first EH domain preferentially interacts with the double N-terminal NPF motif of a previously unidentified TPC interactor, the integral membrane protein Secretory Carrier Membrane Protein 5 (SCAMP5). Furthermore, we show that AtEH/Pan1 proteins control the internalization of SCAMP5 via this double NPF peptide interaction motif. Collectively, our structural and functional studies reveal distinct but complementary roles of the EH domains of AtEH/Pan1 in plant CME and connect the internalization of SCAMP5 to the TPLATE complex.

Suggested Citation

  • Klaas Yperman & Anna C. Papageorgiou & Romain Merceron & Steven De Munck & Yehudi Bloch & Dominique Eeckhout & Qihang Jiang & Pieter Tack & Rosa Grigoryan & Thomas Evangelidis & Jelle Van Leene & Lasz, 2021. "Distinct EH domains of the endocytic TPLATE complex confer lipid and protein binding," Nature Communications, Nature, vol. 12(1), pages 1-11, December.
  • Handle: RePEc:nat:natcom:v:12:y:2021:i:1:d:10.1038_s41467-021-23314-6
    DOI: 10.1038/s41467-021-23314-6
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