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1.
J Cell Sci ; 128(4): 706-16, 2015 Feb 15.
Article in English | MEDLINE | ID: mdl-25512335

ABSTRACT

Ent3 and Ent5 are yeast epsin N-terminal homology (ENTH) domain-containing proteins involved in protein trafficking between the Golgi and late endosomes. They interact with clathrin, clathrin adaptors at the Golgi (AP-1 and GGA) and different SNAREs (Vti1, Snc1, Pep12 and Syn8) required for vesicular transport at the Golgi and endosomes. To better understand the role of these epsins in membrane trafficking, we performed a protein-protein interaction screen. We identified Btn3 (also known as Tda3), a putative oxidoreductase, as a new partner of both Ent3 and Ent5. Btn3 is a negative regulator of the Batten-disease-linked protein Btn2 involved in the retrieval of specific SNAREs (Vti1, Snc1, Tlg1 and Tlg2) from the late endosome to the Golgi. We show that Btn3 endosomal localization depends on the epsins Ent3 and Ent5. We demonstrated that in btn3Δ mutant cells, endosomal sorting of ubiquitylated cargos and endosomal recycling of the Snc1 SNARE are delayed. We thus propose that Btn3 regulates the sorting function of two adaptors for SNARE proteins, the epsin Ent3 and the Batten-disease-linked protein Btn2.


Subject(s)
Adaptor Proteins, Vesicular Transport/metabolism , Amino Acid Transport Systems/metabolism , Endosomes/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Vesicular Transport Proteins/metabolism , Adaptor Proteins, Vesicular Transport/genetics , Amino Acid Transport Systems/genetics , Golgi Apparatus/metabolism , Protein Array Analysis , Protein Interaction Mapping , Protein Transport/physiology , SNARE Proteins/metabolism , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/genetics , Vesicular Transport Proteins/genetics
2.
J Biol Chem ; 285(40): 30792-803, 2010 Oct 01.
Article in English | MEDLINE | ID: mdl-20663881

ABSTRACT

5 S rRNA is an essential component of ribosomes. In eukaryotic cells, it is distinguished by particularly complex intracellular traffic, including nuclear export and re-import. The finding that in mammalian cells 5 S rRNA can eventually escape its usual circuit toward nascent ribosomes to get imported into mitochondria has made the scheme more complex, and it has raised questions about both the mechanism of 5 S rRNA mitochondrial targeting and its function inside the organelle. Previously, we showed that import of 5 S rRNA into mitochondria requires unknown cytosolic proteins. Here, one of them was identified as mitochondrial thiosulfate sulfurtransferase, rhodanese. Rhodanese in its misfolded form was found to possess a strong and specific 5 S rRNA binding activity, exploiting sites found earlier to function as signals of 5 S rRNA mitochondrial localization. The interaction with 5 S rRNA occurs cotranslationally and results in formation of a stable complex in which rhodanese is preserved in a compact enzymatically inactive conformation. Human 5 S rRNA in a branched Mg(2+)-free form, upon its interaction with misfolded rhodanese, demonstrates characteristic functional traits of Hsp40 cochaperones implicated in mitochondrial precursor protein targeting, suggesting that it may use this mechanism to ensure its own mitochondrial localization. Finally, silencing of the rhodanese gene caused not only a proportional decrease of 5 S rRNA import but also a general inhibition of mitochondrial translation, indicating the functional importance of the imported 5 S rRNA inside the organelle.


Subject(s)
Mitochondria/metabolism , Mitochondrial Proteins/metabolism , RNA, Ribosomal, 5S/metabolism , Thiosulfate Sulfurtransferase/metabolism , Animals , Biological Transport/physiology , Cattle , Gene Silencing , HSP40 Heat-Shock Proteins/genetics , HSP40 Heat-Shock Proteins/metabolism , Hep G2 Cells , Humans , Mitochondria/genetics , Mitochondrial Proteins/genetics , Protein Biosynthesis/physiology , RNA, Ribosomal, 5S/genetics , Thiosulfate Sulfurtransferase/genetics
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