-
1
-
-
84869504451
-
Inflammasomes and their roles in health and disease
-
Lamkanfi M, Dixit VM (2012) Inflammasomes and their roles in health and disease. Annu Rev Cell Dev Biol 28:137-161.
-
(2012)
Annu Rev Cell Dev Biol
, vol.28
, pp. 137-161
-
-
Lamkanfi, M.1
Dixit, V.M.2
-
2
-
-
84855989829
-
Inflammasomes in health and disease
-
Strowig T, Henao-Mejia J, Elinav E, Flavell R (2012) Inflammasomes in health and disease. Nature 481(7381):278-286.
-
(2012)
Nature
, vol.481
, Issue.7381
, pp. 278-286
-
-
Strowig, T.1
Henao-Mejia, J.2
Elinav, E.3
Flavell, R.4
-
3
-
-
78449269290
-
Caspase-1-induced pyroptosis is an innate immune effector mechanism against intracellular bacteria
-
Miao EA, et al. (2010) Caspase-1-induced pyroptosis is an innate immune effector mechanism against intracellular bacteria. Nat Immunol 11(12):1136-1142.
-
(2010)
Nat Immunol
, vol.11
, Issue.12
, pp. 1136-1142
-
-
Miao, E.A.1
-
5
-
-
84901310586
-
Mechanisms and functions of inflammasomes
-
Lamkanfi M, Dixit VM (2014) Mechanisms and functions of inflammasomes. Cell 157(5):1013-1022.
-
(2014)
Cell
, vol.157
, Issue.5
, pp. 1013-1022
-
-
Lamkanfi, M.1
Dixit, V.M.2
-
6
-
-
84927126118
-
An activating NLRC4 inflammasome mutation causes autoinflammation with recurrent macrophage activation syndrome
-
Canna SW, et al. (2014) An activating NLRC4 inflammasome mutation causes autoinflammation with recurrent macrophage activation syndrome. Nat Genet 46(10):1140-1146.
-
(2014)
Nat Genet
, vol.46
, Issue.10
, pp. 1140-1146
-
-
Canna, S.W.1
-
7
-
-
84911922142
-
An inherited mutation in NLRC4 causes autoinflammation in human and mice
-
Kitamura A, Sasaki Y, Abe T, Kano H, Yasutomo K (2014) An inherited mutation in NLRC4 causes autoinflammation in human and mice. J Exp Med 211(12):2385-2396.
-
(2014)
J Exp Med
, vol.211
, Issue.12
, pp. 2385-2396
-
-
Kitamura, A.1
Sasaki, Y.2
Abe, T.3
Kano, H.4
Yasutomo, K.5
-
8
-
-
84922008927
-
Mutation of NLRC4 causes a syndrome of enterocolitis and autoinflammation
-
Romberg N, et al. (2014) Mutation of NLRC4 causes a syndrome of enterocolitis and autoinflammation. Nat Genet 46(10):1135-1139.
-
(2014)
Nat Genet
, vol.46
, Issue.10
, pp. 1135-1139
-
-
Romberg, N.1
-
9
-
-
33846024748
-
Regulation of Legionella phagosome maturation and infection through flagellin and host Ipaf
-
Amer A, et al. (2006) Regulation of Legionella phagosome maturation and infection through flagellin and host Ipaf. J Biol Chem 281(46):35217-35223.
-
(2006)
J Biol Chem
, vol.281
, Issue.46
, pp. 35217-35223
-
-
Amer, A.1
-
10
-
-
33744464740
-
Cytosolic flagellin requires Ipaf for activation of caspase-1 and interleukin 1beta in salmonella-infected macrophages
-
Franchi L, et al. (2006) Cytosolic flagellin requires Ipaf for activation of caspase-1 and interleukin 1beta in salmonella-infected macrophages. Nat Immunol 7(6):576-582.
-
(2006)
Nat Immunol
, vol.7
, Issue.6
, pp. 576-582
-
-
Franchi, L.1
-
11
-
-
3142654767
-
Differential activation of the inflammasome by caspase-1 adaptors ASC and Ipaf
-
Mariathasan S, et al. (2004) Differential activation of the inflammasome by caspase-1 adaptors ASC and Ipaf. Nature 430(6996):213-218.
-
(2004)
Nature
, vol.430
, Issue.6996
, pp. 213-218
-
-
Mariathasan, S.1
-
12
-
-
33744493091
-
Cytoplasmic flagellin activates caspase-1 and secretion of interleukin 1beta via Ipaf
-
Miao EA, et al. (2006) Cytoplasmic flagellin activates caspase-1 and secretion of interleukin 1beta via Ipaf. Nat Immunol 7(6):569-575.
-
(2006)
Nat Immunol
, vol.7
, Issue.6
, pp. 569-575
-
-
Miao, E.A.1
-
13
-
-
34548434775
-
Differential regulation of caspase-1 activation, pyroptosis, and autophagy via Ipaf and ASC in Shigella-infected macrophages
-
Suzuki T, et al. (2007) Differential regulation of caspase-1 activation, pyroptosis, and autophagy via Ipaf and ASC in Shigella-infected macrophages. PLoS Pathog 3(8):e111.
-
(2007)
PLoS Pathog
, vol.3
, Issue.8
, pp. e111
-
-
Suzuki, T.1
-
14
-
-
37549041954
-
Immune recognition of Pseudomonas aeruginosa mediated by the IPAF/NLRC4 inflammasome
-
Sutterwala FS, et al. (2007) Immune recognition of Pseudomonas aeruginosa mediated by the IPAF/NLRC4 inflammasome. J Exp Med 204(13):3235-3245.
-
(2007)
J Exp Med
, vol.204
, Issue.13
, pp. 3235-3245
-
-
Sutterwala, F.S.1
-
15
-
-
40649090426
-
Pseudomonas aeruginosa activates caspase 1 through Ipaf
-
Miao EA, Ernst RK, Dors M, Mao DP, Aderem A (2008) Pseudomonas aeruginosa activates caspase 1 through Ipaf. Proc Natl Acad Sci USA 105(7):2562-2567.
-
(2008)
Proc Natl Acad Sci USA
, vol.105
, Issue.7
, pp. 2562-2567
-
-
Miao, E.A.1
Ernst, R.K.2
Dors, M.3
Mao, D.P.4
Aderem, A.5
-
16
-
-
36248940773
-
Critical role for Ipaf in Pseudomonas aeruginosa-induced caspase-1 activation
-
Franchi L, et al. (2007) Critical role for Ipaf in Pseudomonas aeruginosa-induced caspase-1 activation. Eur J Immunol 37(11):3030-3039.
-
(2007)
Eur J Immunol
, vol.37
, Issue.11
, pp. 3030-3039
-
-
Franchi, L.1
-
17
-
-
34250195275
-
The Nod-like receptor family member Naip5/Birc1e restricts Legionella pneumophila growth independently of caspase-1 activation
-
Lamkanfi M, et al. (2007) The Nod-like receptor family member Naip5/Birc1e restricts Legionella pneumophila growth independently of caspase-1 activation. J Immunol 178(12):8022-8027.
-
(2007)
J Immunol
, vol.178
, Issue.12
, pp. 8022-8027
-
-
Lamkanfi, M.1
-
18
-
-
0242693166
-
How bacteria assemble flagella
-
Macnab RM (2003) How bacteria assemble flagella. Annu Rev Microbiol 57:77-100.
-
(2003)
Annu Rev Microbiol
, vol.57
, pp. 77-100
-
-
Macnab, R.M.1
-
19
-
-
33750110911
-
The type III secretion injectisome
-
Cornelis GR (2006) The type III secretion injectisome. Nat Rev Microbiol 4(11):811-825.
-
(2006)
Nat Rev Microbiol
, vol.4
, Issue.11
, pp. 811-825
-
-
Cornelis, G.R.1
-
20
-
-
80053349020
-
The NLRC4 inflammasome receptors for bacterial flagellin and type III secretion apparatus
-
Zhao Y, et al. (2011) The NLRC4 inflammasome receptors for bacterial flagellin and type III secretion apparatus. Nature 477(7366):596-600.
-
(2011)
Nature
, vol.477
, Issue.7366
, pp. 596-600
-
-
Zhao, Y.1
-
21
-
-
84880280093
-
Crystal structure of NLRC4 reveals its autoinhibition mechanism
-
Hu Z, et al. (2013) Crystal structure of NLRC4 reveals its autoinhibition mechanism. Science 341(6142):172-175.
-
(2013)
Science
, vol.341
, Issue.6142
, pp. 172-175
-
-
Hu, Z.1
-
22
-
-
52549099416
-
Critical function for Naip5 in inflammasome activation by a conserved carboxy-terminal domain of flagellin
-
Lightfield KL, et al. (2008) Critical function for Naip5 in inflammasome activation by a conserved carboxy-terminal domain of flagellin. Nat Immunol 9(10):1171-1178.
-
(2008)
Nat Immunol
, vol.9
, Issue.10
, pp. 1171-1178
-
-
Lightfield, K.L.1
-
23
-
-
80053379974
-
Innate immune recognition of bacterial ligands by NAIPs determines inflammasome specificity
-
Kofoed EM, Vance RE (2011) Innate immune recognition of bacterial ligands by NAIPs determines inflammasome specificity. Nature 477(7366):592-595.
-
(2011)
Nature
, vol.477
, Issue.7366
, pp. 592-595
-
-
Kofoed, E.M.1
Vance, R.E.2
-
24
-
-
84885439494
-
Cutting edge: Mouse NAIP1 detects the type III secretion system needle protein
-
Rayamajhi M, Zak DE, Chavarria-Smith J, Vance RE, Miao EA (2013) Cutting edge: Mouse NAIP1 detects the type III secretion system needle protein. J Immunol 191(8):3986-3989.
-
(2013)
J Immunol
, vol.191
, Issue.8
, pp. 3986-3989
-
-
Rayamajhi, M.1
Zak, D.E.2
Chavarria-Smith, J.3
Vance, R.E.4
Miao, E.A.5
-
25
-
-
84883329029
-
Human NAIP and mouse NAIP1 recognize bacterial type III secretion needle protein for inflammasome activation
-
Yang J, Zhao Y, Shi J, Shao F (2013) Human NAIP and mouse NAIP1 recognize bacterial type III secretion needle protein for inflammasome activation. Proc Natl Acad Sci USA 110(35):14408-14413.
-
(2013)
Proc Natl Acad Sci USA
, vol.110
, Issue.35
, pp. 14408-14413
-
-
Yang, J.1
Zhao, Y.2
Shi, J.3
Shao, F.4
-
26
-
-
0037425584
-
Naip5 affects host susceptibility to the intracellular pathogen Legionella pneumophila
-
Wright EK, et al. (2003) Naip5 affects host susceptibility to the intracellular pathogen Legionella pneumophila. Curr Biol 13(1):27-36.
-
(2003)
Curr Biol
, vol.13
, Issue.1
, pp. 27-36
-
-
Wright, E.K.1
-
27
-
-
84867861468
-
Phosphorylation of NLRC4 is critical for inflammasome activation
-
Qu Y, et al. (2012) Phosphorylation of NLRC4 is critical for inflammasome activation. Nature 490(7421):539-542.
-
(2012)
Nature
, vol.490
, Issue.7421
, pp. 539-542
-
-
Qu, Y.1
-
28
-
-
84922273986
-
Targeted sequencing by proximity ligation for comprehensive variant detection and local haplotyping
-
de Vree PJ, et al. (2014) Targeted sequencing by proximity ligation for comprehensive variant detection and local haplotyping. Nat Biotechnol 32(10):1019-1025.
-
(2014)
Nat Biotechnol
, vol.32
, Issue.10
, pp. 1019-1025
-
-
De Vree, P.J.1
-
29
-
-
80455176839
-
Non-canonical inflammasome activation targets caspase-11
-
Kayagaki N, et al. (2011) Non-canonical inflammasome activation targets caspase-11. Nature 479(7371):117-121.
-
(2011)
Nature
, vol.479
, Issue.7371
, pp. 117-121
-
-
Kayagaki, N.1
-
30
-
-
0028920863
-
Altered cytokine export and apoptosis in mice deficient in interleukin-1 beta converting enzyme
-
Kuida K, et al. (1995) Altered cytokine export and apoptosis in mice deficient in interleukin-1 beta converting enzyme. Science 267(5206):2000-2003.
-
(1995)
Science
, vol.267
, Issue.5206
, pp. 2000-2003
-
-
Kuida, K.1
-
31
-
-
84893835896
-
Activation of the NLRP1b inflammasome independently of ASC-mediated caspase-1 autoproteolysis and speck formation
-
Van Opdenbosch N, et al. (2014) Activation of the NLRP1b inflammasome independently of ASC-mediated caspase-1 autoproteolysis and speck formation. Nat Commun 5:3209.
-
(2014)
Nat Commun
, vol.5
, pp. 3209
-
-
Van Opdenbosch, N.1
-
32
-
-
78650210802
-
Differential requirement for Caspase-1 autoproteolysis in pathogen-induced cell death and cytokine processing
-
Broz P, von Moltke J, Jones JW, Vance RE, Monack DM (2010) Differential requirement for Caspase-1 autoproteolysis in pathogen-induced cell death and cytokine processing. Cell Host Microbe 8(6):471-483.
-
(2010)
Cell Host Microbe
, vol.8
, Issue.6
, pp. 471-483
-
-
Broz, P.1
Von Moltke, J.2
Jones, J.W.3
Vance, R.E.4
Monack, D.M.5
-
33
-
-
77955390094
-
Redundant roles for inflammasome receptors NLRP3 and NLRC4 in host defense against Salmonella
-
Broz P, et al. (2010) Redundant roles for inflammasome receptors NLRP3 and NLRC4 in host defense against Salmonella. J Exp Med 207(8):1745-1755.
-
(2010)
J Exp Med
, vol.207
, Issue.8
, pp. 1745-1755
-
-
Broz, P.1
-
34
-
-
21544448078
-
Evasion of Toll-like receptor 5 by flagellated bacteria
-
Andersen-Nissen E, et al. (2005) Evasion of Toll-like receptor 5 by flagellated bacteria. Proc Natl Acad Sci USA 102(26):9247-9252.
-
(2005)
Proc Natl Acad Sci USA
, vol.102
, Issue.26
, pp. 9247-9252
-
-
Andersen-Nissen, E.1
-
35
-
-
0035868953
-
Structure of the bacterial flagellar protofilament and implications for a switch for supercoiling
-
Samatey FA, et al. (2001) Structure of the bacterial flagellar protofilament and implications for a switch for supercoiling. Nature 410(6826):331-337.
-
(2001)
Nature
, vol.410
, Issue.6826
, pp. 331-337
-
-
Samatey, F.A.1
-
36
-
-
0042238051
-
Complete atomic model of the bacterial flagellar filament by electron cryomicroscopy
-
Yonekura K, Maki-Yonekura S, Namba K (2003) Complete atomic model of the bacterial flagellar filament by electron cryomicroscopy. Nature 424(6949):643-650.
-
(2003)
Nature
, vol.424
, Issue.6949
, pp. 643-650
-
-
Yonekura, K.1
Maki-Yonekura, S.2
Namba, K.3
-
37
-
-
33646757219
-
Flagellar glycosylation - A new component of the motility repertoire?
-
Logan SM (2006) Flagellar glycosylation - a new component of the motility repertoire? Microbiology 152(Pt 5):1249-1262.
-
(2006)
Microbiology
, vol.152
, Issue.5
, pp. 1249-1262
-
-
Logan, S.M.1
-
38
-
-
0347776208
-
Toll-like receptor 5 recognizes a conserved site on flagellin required for protofilament formation and bacterial motility
-
Smith KD, et al. (2003) Toll-like receptor 5 recognizes a conserved site on flagellin required for protofilament formation and bacterial motility. Nat Immunol 4(12):1247-1253.
-
(2003)
Nat Immunol
, vol.4
, Issue.12
, pp. 1247-1253
-
-
Smith, K.D.1
-
39
-
-
77649241461
-
Innate immune detection of the type III secretion apparatus through the NLRC4 inflammasome
-
Miao EA, et al. (2010) Innate immune detection of the type III secretion apparatus through the NLRC4 inflammasome. Proc Natl Acad Sci USA 107(7):3076-3080.
-
(2010)
Proc Natl Acad Sci USA
, vol.107
, Issue.7
, pp. 3076-3080
-
-
Miao, E.A.1
-
40
-
-
84899580444
-
Airway structural cells regulate TLR5-mediated mucosal adjuvant activity
-
Van Maele L, et al. (2014) Airway structural cells regulate TLR5-mediated mucosal adjuvant activity. Mucosal Immunol 7(3):489-500.
-
(2014)
Mucosal Immunol
, vol.7
, Issue.3
, pp. 489-500
-
-
Van Maele, L.1
|