Cysteine cross-linking in native membranes establishes the transmembrane architecture of Ire1

Author:

Väth Kristina12ORCID,Mattes Carsten12ORCID,Reinhard John12ORCID,Covino Roberto3ORCID,Stumpf Heike12ORCID,Hummer Gerhard45ORCID,Ernst Robert12ORCID

Affiliation:

1. Medical Biochemistry and Molecular Biology, Medical Faculty, Saarland University, Homburg, Germany

2. Preclinical Center for Molecular Signaling, Medical Faculty, Saarland University, Homburg, Germany

3. Frankfurt Institute of Advanced Sciences, Goethe-University, Frankfurt, Germany

4. Department of Theoretical Biophysics, Max Planck Institute of Biophysics, Frankfurt, Germany

5. Institute of Biophysics, Goethe-University, Frankfurt, Germany

Abstract

The ER is a key organelle of membrane biogenesis and crucial for the folding of both membrane and secretory proteins. Sensors of the unfolded protein response (UPR) monitor the unfolded protein load in the ER and convey effector functions for maintaining ER homeostasis. Aberrant compositions of the ER membrane, referred to as lipid bilayer stress, are equally potent activators of the UPR. How the distinct signals from lipid bilayer stress and unfolded proteins are processed by the conserved UPR transducer Ire1 remains unknown. Here, we have generated a functional, cysteine-less variant of Ire1 and performed systematic cysteine cross-linking experiments in native membranes to establish its transmembrane architecture in signaling-active clusters. We show that the transmembrane helices of two neighboring Ire1 molecules adopt an X-shaped configuration independent of the primary cause for ER stress. This suggests that different forms of stress converge in a common, signaling-active transmembrane architecture of Ire1.

Funder

Deutsche Forschungsgemeinschaft

Volkswagen Foundation

European Research Council

Max Planck Society

Frankfurt Institute for Advanced Studies

LOEWE CMMS program of the state of Hesse

Publisher

Rockefeller University Press

Subject

Cell Biology

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