Virulence strategies for infecting phagocytes deduced from the in vivo transcriptional program of Legionella pneumophila

被引:193
作者
Bruggemann, Holger
Hagman, Arne
Jules, Matthieu
Sismeiro, Odile
Dillies, Marie-Agnes
Gouyette, Catherine
Kunst, Frank
Steinert, Michael
Heuner, Klaus
Coppee, Jean-Yves
Buchrieser, Carmen
机构
[1] Inst Pasteur, Unite Genom Microorg Pathogenes, F-75724 Paris, France
[2] Inst Pasteur, CNRS, URA 2171, F-75724 Paris, France
[3] Inst Pasteur, Plate Forme Puce ADN, F-75724 Paris, France
[4] Inst Pasteur, Plate Forme Synth Oligonicleotides, Pasteur Genopole Ile France, F-75724 Paris, France
[5] Univ Wurzburg, Inst Mol Infekt Biol, D-97070 Wurzburg, Germany
关键词
D O I
10.1111/j.1462-5822.2006.00703.x
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Adaptation to the host environment and exploitation of host cell functions are critical to the success of intracellular pathogens. Here, insight to these virulence mechanisms was obtained for the first time from the transcriptional program of the human pathogen Legionella pneumophila during infection of its natural host, Acanthamoeba castellanii. The biphasic life cycle of L. pneumophila was reflected by a major shift in gene expression from replicative to transmissive phase, concerning nearly half of the genes predicted in the genome. However, three different L. pneumophila strains showed similar in vivo gene expression patterns, indicating that common regulatory mechanisms govern the Legionella life cycle, despite the plasticity of its genome. During the replicative phase, in addition to components of aerobic metabolism and amino acid catabolism, the Entner-Doudoroff pathway, a NADPH producing mechanism used for sugar and/or gluconate assimilation, was expressed, suggesting for the first time that intracellular L. pneumophila may also scavenge host carbohydrates as nutrients and not only proteins. Identification of genes only upregulated in vivo but not in vitro, may explain higher virulence of in vivo grown L. pneumophila. Late in the life cycle, L. pneumophila upregulates genes predicted to promote transmission and manipulation of a new host cell, therewith priming it for the next attack. These including substrates of the Dot/Icm secretion system, other factors associated previously with invasion and virulence, the motility and the type IV pilus machineries, and > 90 proteins not characterized so far. Analysis of a fliA (sigma(28)) deletion mutant identified genes coregulated with the flagellar regulon, including GGDEF/EAL regulators and factors that promote host cell entry and survival.
引用
收藏
页码:1228 / 1240
页数:13
相关论文
共 51 条
[1]   Role of the GGDEF regulator PleD in polar development of Caulobacter crescentus [J].
Aldridge, P ;
Paul, R ;
Goymer, P ;
Rainey, P ;
Jenal, U .
MOLECULAR MICROBIOLOGY, 2003, 47 (06) :1695-1708
[2]   Autophagy is an immediate macrophage response to Legionella pneumophila [J].
Amer, AO ;
Swanson, MS .
CELLULAR MICROBIOLOGY, 2005, 7 (06) :765-778
[3]   The LetE protein enhances expression of multiple LetA/LetS-dependent transmission traits by Legionella pneumophila [J].
Bachman, MA ;
Swanson, MS .
INFECTION AND IMMUNITY, 2004, 72 (06) :3284-3293
[4]   Icm/dot-independent entry of Legionella pneumophila into amoeba and macrophage hosts [J].
Bandyopadhyay, P ;
Xiao, HF ;
Coleman, HA ;
Price-Whelan, A ;
Steinman, HM .
INFECTION AND IMMUNITY, 2004, 72 (08) :4541-4551
[5]   Expression of Legionella pneumophila virulence traits in response to growth conditions [J].
Byrne, B ;
Swanson, MS .
INFECTION AND IMMUNITY, 1998, 66 (07) :3029-3034
[6]   A yeast genetic system for the identification and characterization of substrate proteins transferred into host cells by the Legionella pneumophila Dot/lcm system [J].
Campodonico, EM ;
Chesnel, L ;
Roy, CR .
MOLECULAR MICROBIOLOGY, 2005, 56 (04) :918-933
[7]   Evidence in the Legionella pneumophila genome for exploitation of host cell functions and high genome plasticity [J].
Cazalet, C ;
Rusniok, C ;
Brüggemann, H ;
Zidane, N ;
Magnier, A ;
Ma, L ;
Tichit, M ;
Jarraud, S ;
Bouchier, C ;
Vandenesch, F ;
Kunst, F ;
Etienne, J ;
Glaser, P ;
Buchrieser, C .
NATURE GENETICS, 2004, 36 (11) :1165-1173
[8]   Legionella effectors that promote nonlytic release from protozoa [J].
Chen, J ;
de Felipe, KS ;
Clarke, M ;
Lu, H ;
Anderson, OR ;
Segal, G ;
Shuman, HA .
SCIENCE, 2004, 303 (5662) :1358-1361
[9]   The genomic sequence of the accidental pathogen Legionella pneumophila [J].
Chien, MC ;
Morozova, I ;
Shi, SD ;
Sheng, HT ;
Chen, J ;
Gomez, SM ;
Asamani, G ;
Hill, K ;
Nuara, J ;
Feder, M ;
Rineer, J ;
Greenberg, JJ ;
Steshenko, V ;
Park, SH ;
Zhao, BH ;
Teplitskaya, E ;
Edwards, JR ;
Pampou, S ;
Georghiou, A ;
Chou, IC ;
Iannuccilli, W ;
Ulz, ME ;
Kim, DH ;
Geringer-Sameth, A ;
Goldsberry, C ;
Morozov, P ;
Fischer, SG ;
Segal, G ;
Qu, XY ;
Rzhetsky, A ;
Zhang, PS ;
Cayanis, E ;
De Jong, PJ ;
Ju, JY ;
Kalachikov, S ;
Shuman, HA ;
Russo, JJ .
SCIENCE, 2004, 305 (5692) :1966-1968
[10]   Intracellular growth in Acanthamoeba castellanii affects monocyte entry mechanisms and enhances virulence of Legionella pneumophila [J].
Cirillo, JD ;
Cirillo, SLG ;
Yan, L ;
Bermudez, LE ;
Falkow, S ;
Tompkins, LS .
INFECTION AND IMMUNITY, 1999, 67 (09) :4427-4434