HERC3 facilitates ERAD of select membrane proteins by recognizing membrane-spanning domains

Author:

Kamada Yuka1ORCID,Ohnishi Yuko1ORCID,Nakashima Chikako1ORCID,Fujii Aika1ORCID,Terakawa Mana1ORCID,Hamano Ikuto1ORCID,Nakayamada Uta1ORCID,Katoh Saori1ORCID,Hirata Noriaki1ORCID,Tateishi Hazuki1ORCID,Fukuda Ryosuke1ORCID,Takahashi Hirotaka2ORCID,Lukacs Gergely L.34ORCID,Okiyoneda Tsukasa1ORCID

Affiliation:

1. Kwansei Gakuin University 1 Department of Biomedical Sciences, School of Biological and Environmental Sciences, , Sanda, Japan

2. Ehime University 2 Division of Cell-Free Sciences, Proteo-Science Center (PROS), , Matsuyama, Japan

3. McGill University 3 Department of Physiology, , Montréal, Canada

4. McGill University 4 Department of Biochemistry, , Montréal, Canada

Abstract

Aberrant proteins located in the endoplasmic reticulum (ER) undergo rapid ubiquitination by multiple ubiquitin (Ub) E3 ligases and are retrotranslocated to the cytosol as part of the ER-associated degradation (ERAD). Despite several ERAD branches involving different Ub E3 ligases, the molecular machinery responsible for these ERAD branches in mammalian cells remains not fully understood. Through a series of multiplex knockdown/knockout experiments with real-time kinetic measurements, we demonstrate that HERC3 operates independently of the ER-embedded ubiquitin ligases RNF5 and RNF185 (RNF5/185) to mediate the retrotranslocation and ERAD of misfolded CFTR. While RNF5/185 participates in the ERAD process of both misfolded ABCB1 and CFTR, HERC3 uniquely promotes CFTR ERAD. In vitro assay revealed that HERC3 directly interacts with the exposed membrane-spanning domains (MSDs) of CFTR but not with the MSDs embedded in liposomes. Therefore, HERC3 could play a role in the quality control of MSDs in the cytoplasm and might be crucial for the ERAD pathway of select membrane proteins.

Funder

Japan Society for the Promotion of Science

Japan Agency for Medical Research and Development

Takeda Science Foundation

Kwansei Gakuin University

Publisher

Rockefeller University Press

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