RRC ID 27893
著者 Chong A, Wehrly TD, Child R, Hansen B, Hwang S, Virgin HW, Celli J.
タイトル Cytosolic clearance of replication-deficient mutants reveals Francisella tularensis interactions with the autophagic pathway.
ジャーナル Autophagy
Abstract Cytosolic bacterial pathogens must evade intracellular innate immune recognition and clearance systems such as autophagy to ensure their survival and proliferation. The intracellular cycle of the bacterium Francisella tularensis is characterized by rapid phagosomal escape followed by extensive proliferation in the macrophage cytoplasm. Cytosolic replication, but not phagosomal escape, requires the locus FTT0369c, which encodes the dipA gene (deficient in intracellular replication A). Here, we show that a replication-deficient, ∆dipA mutant of the prototypical SchuS4 strain is eventually captured from the cytosol of murine and human macrophages into double-membrane vacuoles displaying the late endosomal marker, LAMP1, and the autophagy-associated protein, LC3, coinciding with a reduction in viable intracellular bacteria. Capture of SchuS4ΔdipA was not dipA-specific as other replication-deficient bacteria, such as chloramphenicol-treated SchuS4 and a purine auxotroph mutant SchuS4ΔpurMCD, were similarly targeted to autophagic vacuoles. Vacuoles containing replication-deficient bacteria were labeled with ubiquitin and the autophagy receptors SQSTM1/p62 and NBR1, and their formation was decreased in macrophages from either ATG5-, LC3B- or SQSTM1-deficient mice, indicating recognition by the ubiquitin-SQSTM1-LC3 pathway. While a fraction of both the wild-type and the replication-impaired strains were ubiquitinated and recruited SQSTM1, only the replication-defective strains progressed to autophagic capture, suggesting that wild-type Francisella interferes with the autophagic cascade. Survival of replication-deficient strains was not restored in autophagy-deficient macrophages, as these bacteria died in the cytosol prior to autophagic capture. Collectively, our results demonstrate that replication-impaired strains of Francisella are cleared by autophagy, while replication-competent bacteria seem to interfere with autophagic recognition, therefore ensuring survival and proliferation.
巻・号 8(9)
ページ 1342-56
公開日 2012-9-1
DOI 10.4161/auto.20808
PII 20808
PMID 22863802
PMC PMC3442881
MeSH Adaptor Proteins, Signal Transducing / metabolism Animals Autophagy* Cytosol / microbiology* DNA Replication* Endocytosis Endosomes / microbiology Endosomes / ultrastructure Francisella tularensis / physiology* Francisella tularensis / ultrastructure Heat-Shock Proteins / metabolism Humans Intracellular Space / microbiology Macrophages / microbiology Macrophages / pathology Macrophages / ultrastructure Mice Mice, Inbred C57BL Microbial Viability Mutation / genetics* Phagosomes / microbiology Phagosomes / ultrastructure Sequestosome-1 Protein Ubiquitin / metabolism Vacuoles / microbiology Vacuoles / ultrastructure
IF 9.77
引用数 57
WOS 分野 CELL BIOLOGY
リソース情報
実験動物マウス RBRC00806