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Triggers Noncanonical Autophagy Upon Phagocytosis, but Avoids Subsequent Growth-restricting Xenophagy

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Specialty Science
Date 2017 Dec 28
PMID 29279409
Citations 51
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Abstract

Xenophagy is a selective macroautophagic process that protects the host cytosol by entrapping and delivering microbes to a degradative compartment. Both noncanonical autophagic pathways and xenophagy are activated by microbes during infection, but the relative importance and function of these distinct processes are not clear. In this study, we used bacterial and host mutants to dissect the contribution of autophagic processes responsible for bacterial growth restriction of is a facultative intracellular pathogen that escapes from phagosomes, grows in the host cytosol, and avoids autophagy by expressing three determinants of pathogenesis: two secreted phospholipases C (PLCs; PlcA and PlcB) and a surface protein (ActA). We found that shortly after phagocytosis, wild-type (WT) escaped from a noncanonical autophagic process that targets damaged vacuoles. During this process, the autophagy marker LC3 localized to single-membrane phagosomes independently of the ULK complex, which is required for initiation of macroautophagy. However, growth restriction of bacteria lacking PlcA, PlcB, and ActA required FIP200 and TBK1, both involved in the engulfment of microbes by xenophagy. Time-lapse video microscopy revealed that deposition of LC3 on -containing vacuoles via noncanonical autophagy had no apparent role in restricting bacterial growth and that, upon access to the host cytosol, WT utilized PLCs and ActA to avoid subsequent xenophagy. In conclusion, although noncanonical autophagy targets phagosomes, xenophagy was required to restrict the growth of , an intracellular pathogen that damages the entry vacuole.

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References
1.
Yoshikawa Y, Ogawa M, Hain T, Yoshida M, Fukumatsu M, Kim M . Listeria monocytogenes ActA-mediated escape from autophagic recognition. Nat Cell Biol. 2009; 11(10):1233-40. DOI: 10.1038/ncb1967. View

2.
Thurston T, Boyle K, Allen M, Ravenhill B, Karpiyevich M, Bloor S . Recruitment of TBK1 to cytosol-invading Salmonella induces WIPI2-dependent antibacterial autophagy. EMBO J. 2016; 35(16):1779-92. PMC: 5010046. DOI: 10.15252/embj.201694491. View

3.
Cemma M, Grinstein S, Brumell J . Autophagy proteins are not universally required for phagosome maturation. Autophagy. 2016; 12(9):1440-6. PMC: 5082775. DOI: 10.1080/15548627.2016.1191724. View

4.
Campbell-Valois F, Sachse M, Sansonetti P, Parsot C . Escape of Actively Secreting Shigella flexneri from ATG8/LC3-Positive Vacuoles Formed during Cell-To-Cell Spread Is Facilitated by IcsB and VirA. mBio. 2015; 6(3):e02567-14. PMC: 4447254. DOI: 10.1128/mBio.02567-14. View

5.
Richter B, Sliter D, Herhaus L, Stolz A, Wang C, Beli P . Phosphorylation of OPTN by TBK1 enhances its binding to Ub chains and promotes selective autophagy of damaged mitochondria. Proc Natl Acad Sci U S A. 2016; 113(15):4039-44. PMC: 4839414. DOI: 10.1073/pnas.1523926113. View