EHD2 regulates caveolar dynamics via ATP-driven targeting and oligomerization

Author:

Morén Björn1,Shah Claudio2,Howes Mark T.3,Schieber Nicole L.3,McMahon Harvey T.4,Parton Robert G.3,Daumke Oliver2,Lundmark Richard1

Affiliation:

1. Medical Biochemistry and Biophysics, Laboratory for Molecular Infection Medicine, Sweden, Umeå University, 901 87 Umeå, Sweden

2. Max Delbrück Center for Molecular Medicine, Crystallography, 13125 Berlin, Germany

3. Institute for Molecular Bioscience and Centre for Microscopy and Microanalysis, University of Queensland, Brisbane, Queensland 4072, Australia

4. MRC Laboratory of Molecular Biology, Cambridge CB2 0QH, United Kingdom

Abstract

Eps15 homology domain–containing 2 (EHD2) belongs to the EHD-containing protein family of dynamin-related ATPases involved in membrane remodeling in the endosomal system. EHD2 dimers oligomerize into rings on highly curved membranes, resulting in stimulation of the intrinsic ATPase activity. In this paper, we report that EHD2 is specifically and stably associated with caveolae at the plasma membrane and not involved in clathrin-mediated endocytosis or endosomal recycling, as previously suggested. EHD2 interacts with pacsin2 and cavin1, and ordered membrane assembly of EHD2 is dependent on cavin1 and caveolar integrity. While the EHD of EHD2 is dispensable for targeting, we identified a loop in the nucleotide-binding domain that, together with ATP binding, is required for caveolar localization. EHD2 was not essential for the formation or shaping of caveolae, but high levels of EHD2 caused distortion and loss of endogenous caveolae. Assembly of EHD2 stabilized and constrained caveolae to the plasma membrane to control turnover, and depletion of EHD2, resulting in endocytic and more dynamic and short-lived caveolae. Thus, following the identification of caveolin and cavins, EHD2 constitutes a third structural component of caveolae involved in controlling the stability and turnover of this organelle.

Publisher

American Society for Cell Biology (ASCB)

Subject

Cell Biology,Molecular Biology

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