It is shown that the rhomboid-like pseudoprotease TMEM115 defines an unexpected two-factor system with Rab6A to target the golgin TMF1, and proposed that two-factor effector recruitment defines a mechanism for precise Rab GTPase-mediated membrane targeting.
Abstract
Protein trafficking and organelle identity depends on precise localisation of membrane proteins, anchored by small GTPases that bind to specific cellular compartments. Here we show that the rhomboid-like pseudoprotease TMEM115 defines an unexpected two-factor system with Rab6A to target the golgin TMF1. In the absence of TMEM115, TMF1 is delocalised from the rim of the Golgi apparatus; instead, it is retained in Golgi-targeting vesicles. TMEM115, TMF1, and Rab6A assemble into a ternary complex which, in striking contrast to canonical rhomboid-like mechanisms, is independent of transmembrane domain interactions. Disruption of the TMEM115-Rab6A-TMF1 complex affects the efficiency of trafficking of proteins from the Golgi; moreover, human disease-associated mutations target the interfaces of this ternary complex, thereby delocalising TMF1 from the Golgi. Finally, loss of TMEM115 in Drosophila causes abnormal Golgi morphology, and mouse knockouts undergo perinatal death. We propose that two-factor effector recruitment defines a mechanism for precise Rab GTPase-mediated membrane targeting.
Retrograde trafficking from endosomes to trans-Golgi network is essential for cellular homeostasis. While the WDR11-FAM91A1-C17orf75 (WFC) complex facilitates this process, its structural organization and the role of C17orf75 remain unclear. Here, we present cryo-EM structures of human WFC complex in monomeric and dime...
It is hypothesized that the ZMPSTE24E336A trap mutant reveals a normally transient isoform of IFITM3 whose transmembrane span is inverted and that ZMPSTE24 is involved in the quality control of IFITM3 topology, either inverting, correcting or assisting in removal of aberrant IFITM3 molecules.
Eric D. Spear, Khurts Shilagardi, Sonia Sarju et al.· bioRxiv· 0 citations
This work defines the contacts that maintain WDR44 in its closed conformation and provides a mechanism by which pathogenic mutations may alter WDR44 function, which explains how disease-causing mutations activate WDR44, and defines the surfaces through which its functions are likely regulated.
Hailey Eng, Michael Davey, E. Conibear· bioRxiv· 0 citations
The transmembrane 6 superfamily (TM6SF) comprises two members: TM6SF1, a ubiquitously expressed lysosomal membrane protein of unknown function, and TM6SF2, an endoplasmic reticulum protein required for bulk lipidation of Apolipoprotein B-containing lipoproteins. Here, we used cryo-electron microscopy (cryo-EM) to deter...
Sen Hong, Liang-Jie Jia, Rong Wang et al.· Proceedings of the National...· 1 citation
TMEM165 is a Golgi-resident multi-pass membrane protein involved in divalent cation homeostasis and associated with congenital disorders of glycosylation, yet its N-terminal biogenesis has remained unresolved. Here, we demonstrate that TMEM165 contains a functional cleavable signal peptide required for correct Golgi ta...
ABSTRACT Apicomplexan parasites are protozoan pathogens responsible for major human diseases, including toxoplasmosis, malaria, and cryptosporidiosis. Toxoplasma gondii has emerged as a model for studying cell division in tissue coccidians. Unlike higher eukaryotes that divide by binary fission, Toxoplasma replicates v...
Rajshekhar Y. Gaji, Padmaja Mandadi, D. Ali et al.· mBio· 0 citations
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