Literature DB >> 33055216

The Chlamydia effector CT622/TaiP targets a nonautophagy related function of ATG16L1.

Daniel Hamaoui1, Mathilde M Cossé1,2, Jagan Mohan3, Alf Håkon Lystad4,5, Thomas Wollert3, Agathe Subtil6.   

Abstract

The obligate intracellular bacteria Chlamydia trachomatis, the causative agent of trachoma and sexually transmitted diseases, multiply in a vacuolar compartment, the inclusion. From this niche, they secrete "effector" proteins, that modify cellular activities to enable bacterial survival and proliferation. Here, we show that the host autophagy-related protein 16-1 (ATG16L1) restricts inclusion growth and that this effect is counteracted by the secretion of the bacterial effector CT622/TaiP (translocated ATG16L1 interacting protein). ATG16L1 is mostly known for its role in the lipidation of the human homologs of ATG8 (i.e., LC3 and homologs) on double membranes during autophagy as well as on single membranes during LC3-associated phagocytosis and other LC3-lipidation events. Unexpectedly, the LC3-lipidation-related functions of ATG16L1 are not required for restricting inclusion development. We show that the carboxyl-terminal domain of TaiP exposes a mimic of an eukaryotic ATG16L1-binding motif that binds to ATG16L1's WD40 domain. By doing so, TaiP prevents ATG16L1 interaction with the integral membrane protein TMEM59 and allows the rerouting of Rab6-positive compartments toward the inclusion. The discovery that one bacterial effector evolved to target ATG16L1's engagement in intracellular traffic rather than in LC3 lipidation brings this "secondary" activity of ATG16L1 in full light and emphasizes its importance for maintaining host cell homeostasis.

Entities:  

Keywords:  ATG16L1; Chlamydia trachomatis; autophagy; host-pathogen interactions; intracellular traffic

Mesh:

Substances:

Year:  2020        PMID: 33055216      PMCID: PMC7604492          DOI: 10.1073/pnas.2005389117

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  31 in total

1.  Analyzing real-time PCR data by the comparative C(T) method.

Authors:  Thomas D Schmittgen; Kenneth J Livak
Journal:  Nat Protoc       Date:  2008       Impact factor: 13.491

2.  The protein ATG16L1 suppresses inflammatory cytokines induced by the intracellular sensors Nod1 and Nod2 in an autophagy-independent manner.

Authors:  Matthew T Sorbara; Lisa K Ellison; Mahendrasingh Ramjeet; Leonardo H Travassos; Nicola L Jones; Stephen E Girardin; Dana J Philpott
Journal:  Immunity       Date:  2013-11-14       Impact factor: 31.745

Review 3.  Targeting eukaryotic Rab proteins: a smart strategy for chlamydial survival and replication.

Authors:  María Teresa Damiani; Julián Gambarte Tudela; Anahí Capmany
Journal:  Cell Microbiol       Date:  2014-08-04       Impact factor: 3.715

Review 4.  Transport and sorting in the Golgi complex: multiple mechanisms sort diverse cargo.

Authors:  Gaelle Boncompain; Aubrey V Weigel
Journal:  Curr Opin Cell Biol       Date:  2018-03-19       Impact factor: 8.382

5.  Autophagy-independent function of MAP-LC3 during intracellular propagation of Chlamydia trachomatis.

Authors:  Hesham M Al-Younes; Munir A Al-Zeer; Hany Khalil; Joscha Gussmann; Alexander Karlas; Nikolaus Machuy; Volker Brinkmann; Peter R Braun; Thomas F Meyer
Journal:  Autophagy       Date:  2011-08-01       Impact factor: 16.016

6.  Structure of the WD40-domain of human ATG16L1.

Authors:  Milica Bajagic; Archna Archna; Petra Büsing; Andrea Scrima
Journal:  Protein Sci       Date:  2017-07-15       Impact factor: 6.725

7.  Chlamydia trachomatis intercepts Golgi-derived sphingolipids through a Rab14-mediated transport required for bacterial development and replication.

Authors:  Anahí Capmany; María Teresa Damiani
Journal:  PLoS One       Date:  2010-11-22       Impact factor: 3.240

8.  Rab6 and Rab11 regulate Chlamydia trachomatis development and golgin-84-dependent Golgi fragmentation.

Authors:  Anette Rejman Lipinski; Julia Heymann; Charlotte Meissner; Alexander Karlas; Volker Brinkmann; Thomas F Meyer; Dagmar Heuer
Journal:  PLoS Pathog       Date:  2009-10-09       Impact factor: 6.823

9.  Quantitative monitoring of the Chlamydia trachomatis developmental cycle using GFP-expressing bacteria, microscopy and flow cytometry.

Authors:  François Vromman; Marc Laverrière; Stéphanie Perrinet; Alexandre Dufour; Agathe Subtil
Journal:  PLoS One       Date:  2014-06-09       Impact factor: 3.240

10.  Sequestration of host metabolism by an intracellular pathogen.

Authors:  Lena Gehre; Olivier Gorgette; Stéphanie Perrinet; Marie-Christine Prevost; Mathieu Ducatez; Amanda M Giebel; David E Nelson; Steven G Ball; Agathe Subtil
Journal:  Elife       Date:  2016-03-16       Impact factor: 8.140

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Journal:  J Cell Biol       Date:  2022-09-28       Impact factor: 8.077

2.  Dcf1 induces glioblastoma cells apoptosis by blocking autophagy.

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Journal:  Cancer Med       Date:  2021-11-19       Impact factor: 4.452

3.  A Protein-Engineered, Enhanced Yeast Display Platform for Rapid Evolution of Challenging Targets.

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Journal:  ACS Synth Biol       Date:  2021-11-22       Impact factor: 5.110

4.  Robust Heat Shock Response in Chlamydia Lacking a Typical Heat Shock Sigma Factor.

Authors:  Yehong Huang; Wurihan Wurihan; Bin Lu; Yi Zou; Yuxuan Wang; Korri Weldon; Joseph D Fondell; Zhao Lai; Xiang Wu; Huizhou Fan
Journal:  Front Microbiol       Date:  2022-01-03       Impact factor: 5.640

  4 in total

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