Tetraspanner‐based nanodomains modulate BAR domain‐induced membrane curvature

Author:

Haase Daniel1ORCID,Rasch Christiane23,Keller Ulrike23,Tsytsyura Yaroslav2ORCID,Glyvuk Nataliya2ORCID,Elting Annegret1,Wittmar Julia1ORCID,Janning Annette1,Kahms Martin2,Wedlich Noah14,Schuberth Christian1,Heuer Andreas4,Klingauf Jürgen23,Wedlich‐Söldner Roland1ORCID

Affiliation:

1. Institute of Cell Dynamics and Imaging, and Cells‐in‐Motion Interfaculty Center (CiMIC), University of Münster Münster Germany

2. Institute for Medical Physics and Biophysics, and Cells‐in‐Motion Interfaculty Center (CiMIC) Münster Germany

3. Center for Soft Nanoscience Münster Germany

4. Institute for Physical Chemistry Münster Germany

Abstract

AbstractThe topography of biological membranes is critical for formation of protein and lipid microdomains. One prominent example in the yeast plasma membrane (PM) are BAR domain‐induced PM furrows. Here we report a novel function for the Sur7 family of tetraspanner proteins in the regulation of local PM topography. Combining TIRF imaging, STED nanoscopy, freeze–fracture EM and membrane simulations we find that Sur7 tetraspanners form multimeric strands at the edges of PM furrows, where they modulate forces exerted by BAR domain proteins at the furrow base. Loss of Sur7 tetraspanners or Sur7 displacement due to altered PIP2 homeostasis leads to increased PM invagination and a distinct form of membrane tubulation. Physiological defects associated with PM tubulation are rescued by synthetic anchoring of Sur7 to furrows. Our findings suggest a key role for tetraspanner proteins in sculpting local membrane domains. The maintenance of stable PM furrows depends on a balance between negative curvature at the base which is generated by BAR domains and positive curvature at the furrows' edges which is stabilized by strands of Sur7 tetraspanners.

Publisher

Springer Science and Business Media LLC

Subject

Genetics,Molecular Biology,Biochemistry

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