Literature DB >> 29478853

Remodeling the Specificity of an Endosomal CORVET Tether Underlies Formation of Regulated Secretory Vesicles in the Ciliate Tetrahymena thermophila.

Daniela Sparvoli1, Elisabeth Richardson2, Hiroko Osakada3, Xun Lan4, Masaaki Iwamoto3, Grant R Bowman1, Cassandra Kontur1, William A Bourland5, Denis H Lynn6, Jonathan K Pritchard7, Tokuko Haraguchi8, Joel B Dacks2, Aaron P Turkewitz9.   

Abstract

In the endocytic pathway of animals, two related complexes, called CORVET (class C core vacuole/endosome transport) and HOPS (homotypic fusion and protein sorting), act as both tethers and fusion factors for early and late endosomes, respectively. Mutations in CORVET or HOPS lead to trafficking defects and contribute to human disease, including immune dysfunction. HOPS and CORVET are conserved throughout eukaryotes, but remarkably, in the ciliate Tetrahymena thermophila, the HOPS-specific subunits are absent, while CORVET-specific subunits have proliferated. VPS8 (vacuolar protein sorting), a CORVET subunit, expanded to 6 paralogs in Tetrahymena. This expansion correlated with loss of HOPS within a ciliate subgroup, including the Oligohymenophorea, which contains Tetrahymena. As uncovered via forward genetics, a single VPS8 paralog in Tetrahymena (VPS8A) is required to synthesize prominent secretory granules called mucocysts. More specifically, Δvps8a cells fail to deliver a subset of cargo proteins to developing mucocysts, instead accumulating that cargo in vesicles also bearing the mucocyst-sorting receptor Sor4p. Surprisingly, although this transport step relies on CORVET, it does not appear to involve early endosomes. Instead, Vps8a associates with the late endosomal/lysosomal marker Rab7, indicating that target specificity switching occurred in CORVET subunits during the evolution of ciliates. Mucocysts belong to a markedly diverse and understudied class of protist secretory organelles called extrusomes. Our results underscore that biogenesis of mucocysts depends on endolysosomal trafficking, revealing parallels with invasive organelles in apicomplexan parasites and suggesting that a wide array of secretory adaptations in protists, like in animals, depend on mechanisms related to lysosome biogenesis. Crown
Copyright © 2018. Published by Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  alveolata; endosomal tether; evolution; extrusome; gene loss; lysosome-related organelle; membrane trafficking; protist

Mesh:

Substances:

Year:  2018        PMID: 29478853      PMCID: PMC5840023          DOI: 10.1016/j.cub.2018.01.047

Source DB:  PubMed          Journal:  Curr Biol        ISSN: 0960-9822            Impact factor:   10.834


  102 in total

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3.  Toxoplasma gondii Vps11, a subunit of HOPS and CORVET tethering complexes, is essential for the biogenesis of secretory organelles.

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Review 4.  Tethering complexes in the endocytic pathway: CORVET and HOPS.

Authors:  Jachen A Solinger; Anne Spang
Journal:  FEBS J       Date:  2013-02-21       Impact factor: 5.542

Review 5.  Principles of membrane tethering and fusion in endosome and lysosome biogenesis.

Authors:  Daniel Kümmel; Christian Ungermann
Journal:  Curr Opin Cell Biol       Date:  2014-05-17       Impact factor: 8.382

6.  Thousands of rab GTPases for the cell biologist.

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7.  MiniCORVET is a Vps8-containing early endosomal tether in Drosophila.

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8.  Maturation of dense core granules in wild type and mutant Tetrahymena thermophila.

Authors:  A P Turkewitz; L Madeddu; R B Kelly
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Review 9.  Tethering Complexes in the Arabidopsis Endomembrane System.

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2.  SNX5 targets a monoamine transporter to the TGN for assembly into dense core vesicles by AP-3.

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3.  A novel membrane complex is required for docking and regulated exocytosis of lysosome-related organelles in Tetrahymena thermophila.

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4.  Ancient complement and lineage-specific evolution of the Sec7 ARF GEF proteins in eukaryotes.

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5.  Diversification of CORVET tethers facilitates transport complexity in Tetrahymena thermophila.

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6.  An early endosome-derived retrograde trafficking pathway promotes secretory granule maturation.

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