Literature DB >> 20516149

Bat3 promotes the membrane integration of tail-anchored proteins.

Pawel Leznicki1, Anne Clancy, Blanche Schwappach, Stephen High.   

Abstract

The membrane integration of tail-anchored proteins at the endoplasmic reticulum (ER) is post-translational, with different tail-anchored proteins exploiting distinct cytosolic factors. For example, mammalian TRC40 has a well-defined role during delivery of tail-anchored proteins to the ER. Although its Saccharomyces cerevisiae equivalent, Get3, is known to function in concert with at least four other components, Get1, Get2, Get4 and Get5 (Mdy2), the role of additional mammalian proteins during tail-anchored protein biogenesis is unclear. To this end, we analysed the cytosolic binding partners of Sec61beta, a well-defined substrate of TRC40, and identified Bat3 as a previously unknown interacting partner. Depletion of Bat3 inhibits the membrane integration of Sec61beta, but not of a second, TRC40-independent, tail-anchored protein, cytochrome b5. Thus, Bat3 influences the in vitro membrane integration of tail-anchored proteins using the TRC40 pathway. When expressed in Saccharomyces cerevisiae lacking a functional GET pathway for tail-anchored protein biogenesis, Bat3 associates with the resulting cytosolic pool of non-targeted chains and diverts it to the nucleus. This Bat3-mediated mislocalisation is not dependent upon Sgt2, a recently identified component of the yeast GET pathway, and we propose that Bat3 either modulates the TRC40 pathway in higher eukaryotes or provides an alternative fate for newly synthesised tail-anchored proteins.

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Year:  2010        PMID: 20516149      PMCID: PMC2886740          DOI: 10.1242/jcs.066738

Source DB:  PubMed          Journal:  J Cell Sci        ISSN: 0021-9533            Impact factor:   5.285


  48 in total

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4.  Model for eukaryotic tail-anchored protein binding based on the structure of Get3.

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5.  Human Scythe contains a functional nuclear localization sequence and remains in the nucleus during staurosporine-induced apoptosis.

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Authors:  Benjamin M Abell; Catherine Rabu; Pawel Leznicki; Jason C Young; Stephen High
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  64 in total

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8.  The mechanism of membrane-associated steps in tail-anchored protein insertion.

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