Literature DB >> 15657083

Dissection of brefeldin A-sensitive and -insensitive steps in apicoplast protein targeting.

Amy DeRocher1, Brian Gilbert, Jean E Feagin, Marilyn Parsons.   

Abstract

The apicoplast is a relict plastid found in many apicomplexans, including the pathogens Toxoplasma gondii and Plasmodium falciparum. Nucleus-encoded apicoplast proteins enter the ER, and after cleavage of the signal sequence, are routed to the apicoplast by virtue of a transit peptide, which is subsequently removed. To assess the mechanisms of localization we examined stable transfectants of T. gondii for the localization and processing of various GFP fusion proteins. GFP fusions bearing apicoplast targeting sequences targeted efficiently to the plastid, with no retention in the ER, even when an ER retention/retrieval sequence was added. Incubation with brefeldin A, which blocks ER-to-Golgi trafficking by inhibiting a GTP exchange factor required for retrograde trafficking, blocked the processing of the protein. Surprisingly, it did not affect the immunofluorescence pattern. To avoid the potentially misleading presence of pre-existing GFP fusion protein in the apicoplast, we used a ligand-regulated aggregation system to arrest the GFP fusion protein in the ER prior to trafficking. Upon addition of ligand to promote disaggregation, the fusion protein targeted to the plastid, even in the presence of brefeldin A. Ligand release at 15 degrees C, which blocks trafficking of Golgi-routed proteins, also allowed significant localization to the plastid. Our data indicate that apicoplast proteins can localize to the region of the plastid when Golgi trafficking is inhibited, but suggest that some steps in import or maturation of the proteins may require a brefeldin A-sensitive GTP exchange factor.

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Year:  2005        PMID: 15657083     DOI: 10.1242/jcs.01627

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


  25 in total

Review 1.  The apicoplast.

Authors:  Geoffrey Ian McFadden
Journal:  Protoplasma       Date:  2010-12-17       Impact factor: 3.356

2.  Apicoplast targeting of a Toxoplasma gondii transmembrane protein requires a cytosolic tyrosine-based motif.

Authors:  Amy E DeRocher; Anuradha Karnataki; Pashmi Vaney; Marilyn Parsons
Journal:  Traffic       Date:  2012-02-20       Impact factor: 6.215

Review 3.  More membranes, more proteins: complex protein import mechanisms into secondary plastids.

Authors:  Swati Agrawal; Boris Striepen
Journal:  Protist       Date:  2010-10-30

4.  Multi-membrane-bound structures of Apicomplexa: I. the architecture of the Toxoplasma gondii apicoplast.

Authors:  Sabine Köhler
Journal:  Parasitol Res       Date:  2005-05-14       Impact factor: 2.289

Review 5.  Protein trafficking to the apicoplast: deciphering the apicomplexan solution to secondary endosymbiosis.

Authors:  Marilyn Parsons; Anuradha Karnataki; Jean E Feagin; Amy DeRocher
Journal:  Eukaryot Cell       Date:  2007-05-18

6.  A thioredoxin family protein of the apicoplast periphery identifies abundant candidate transport vesicles in Toxoplasma gondii.

Authors:  Amy E DeRocher; Isabelle Coppens; Anuradha Karnataki; Luke A Gilbert; Michael E Rome; Jean E Feagin; Peter J Bradley; Marilyn Parsons
Journal:  Eukaryot Cell       Date:  2008-06-27

7.  Genetic evidence that an endosymbiont-derived endoplasmic reticulum-associated protein degradation (ERAD) system functions in import of apicoplast proteins.

Authors:  Swati Agrawal; Giel G van Dooren; Wandy L Beatty; Boris Striepen
Journal:  J Biol Chem       Date:  2009-10-06       Impact factor: 5.157

8.  Two phylogenetically and compartmentally distinct CDP-diacylglycerol synthases cooperate for lipid biogenesis in Toxoplasma gondii.

Authors:  Pengfei Kong; Christoph-Martin Ufermann; Diana L M Zimmermann; Qing Yin; Xun Suo; J Bernd Helms; Jos F Brouwers; Nishith Gupta
Journal:  J Biol Chem       Date:  2017-03-17       Impact factor: 5.157

9.  Toxoplasma gondii nucleus coding apicoplast protein ACP synthesis and trafficking in delayed death.

Authors:  Liang Wu; Jin Shen; Yupei Zhou; Xiao Wang; Lamei Wu; Xugan Jiang; Shengxia Chen
Journal:  Parasitol Res       Date:  2015-01-07       Impact factor: 2.289

10.  MicroRNA 802 stimulates ROMK channels by suppressing caveolin-1.

Authors:  Dao-Hong Lin; Peng Yue; Chunyang Pan; Peng Sun; Wen-Hui Wang
Journal:  J Am Soc Nephrol       Date:  2011-05-12       Impact factor: 10.121

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