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Biology subjects

Rodriguez, J. W. C.

Publications and source records attributed to Rodriguez, J. W. C..

2 recordsLinked to original sources

Structure and mechanism of the human CTDNEP1-NEP1R1 membrane protein phosphatase complex necessary to maintain ER membrane morphology

C-terminal Domain Nuclear Envelope Phosphatase 1 (CTDNEP1) is a non-canonical protein serine/threonine phosphatase that regulates ER membrane biogenesis. Inactivating mutations in CTDNEP1 correlate with development of medulloblastoma, an aggressive childhood cancer. The transmembrane protein Nuclear Envelope Phosphatase 1 Regulatory Subunit 1 (NEP1R1) binds CTDNEP1, but the molecular details by which NEP1R1 regulates CTDNEP1 function are unclear. Here, we find that knockdown of CTDNEP1 or NEP1R1 in human cells generate identical phenotypes, establishing CTDNEP1-NEP1R1 as an evolutionarily conserved membrane protein phosphatase complex that restricts ER expansion. Mechanistically, NEP1R1 acts as an activating regulatory subunit that directly binds and increases the phosphatase activity of CTDNEP1. By defining a minimal NEP1R1 domain sufficient to activate CTDNEP1, we determine high resolution crystal structures of the CTDNEP1-NEP1R1 complex bound to a pseudo-substrate. Structurally, NEP1R1 engages CTDNEP1 at a site distant from the active site to stabilize and allosterically activate CTDNEP1. Substrate recognition is facilitated by a conserved Arg residue that binds and orients the substrate peptide in the active site. Together, this reveals mechanisms for how NEP1R1 regulates CTDNEP1 and explains how cancer-associated mutations inactivate CTDNEP1.

biochemistry↗

A membrane sensing mechanism couples local lipid metabolism to protein degradation at the inner nuclear membrane

Lipid composition is a determinant of organelle identity; however, whether the inner nuclear membrane (INM) domain of the endoplasmic reticulum (ER) harbors a unique lipid chemistry that contributes to its identity is not known. Here, we demonstrate that a unique INM lipid environment enriched in diacylglycerol protects the nucleo-cytoskeletal linker Sun2 from local degradation by the ubiquitin-proteasome system. A membrane binding amphipathic helix in the nucleoplasmic domain of Sun2 senses INM lipids and is essential to its protein stability. We show that the protein phosphatase CTDNEP1 localizes to the INM to maintain a distinct INM lipid environment necessary for Sun2 accumulation through regulation of the phosphatidic acid phosphatase lipin 1. Thus, the INM lipid environment sculpts the INM proteome via direct lipid-protein interactions that regulate protein stability, which has broad implications for mechanisms of diseases associated with the nuclear envelope.

cell biology↗