Phosphatidylethanolamine critically supports internalization of cell-penetrating protein C inhibitor

Author:

Baumgärtner Petra12,Geiger Margarethe3,Zieseniss Susanne2,Malleier Julia3,Huntington James A.4,Hochrainer Karin3,Bielek Edith5,Stoeckelhuber Mechthild2,Lauber Kirsten6,Scherfeld Dag7,Schwille Petra7,Wäldele Katja1,Beyer Klaus8,Engelmann Bernd12

Affiliation:

1. Vaskuläre Biologie und Hämostase, Institut für Klinische Chemie, 81377 Munich, Germany

2. Physiologisches Institut,

3. Zentrum für Biomolekulare Medizin und Pharmakologie and

4. Division of Structural Medicine, Department of Haematology, University of Cambridge, Cambridge CB2 0XY, England, UK

5. Zentrum für Anatomie und Zellbiologie, Medizinische Universität Wien, 1090 Vienna, Austria

6. Medizinische Klinik I, Eberhard-Karls-Universität, 72076 Tübingen, Germany

7. Max-Planck-Institut für Biophysikalische Chemie, 37077 Göttingen, Germany

8. Stoffwechselbiochemie, Ludwig-Maximilians-Universität, 80336 Munich, Germany

Abstract

Although their contribution remains unclear, lipids may facilitate noncanonical routes of protein internalization into cells such as those used by cell-penetrating proteins. We show that protein C inhibitor (PCI), a serine protease inhibitor (serpin), rapidly transverses the plasma membrane, which persists at low temperatures and enables its nuclear targeting in vitro and in vivo. Cell membrane translocation of PCI necessarily requires phosphatidylethanolamine (PE). In parallel, PCI acts as a lipid transferase for PE. The internalized serpin promotes phagocytosis of bacteria, thus suggesting a function in host defense. Membrane insertion of PCI depends on the conical shape of PE and is associated with the formation of restricted aqueous compartments within the membrane. Gain- and loss-of-function mutations indicate that the transmembrane passage of PCI requires a branched cavity between its helices H and D, which, according to docking studies, precisely accommodates PE. Our findings show that its specific shape enables cell surface PE to drive plasma membrane translocation of cell-penetrating PCI.

Publisher

Rockefeller University Press

Subject

Cell Biology

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