-
1
-
-
84876776767
-
+ mucosal effector T cells via the cytokine TGF-
-
+ mucosal effector T cells via the cytokine TGF-. Immunity 38, 818–830 (2013).
-
(2013)
Immunity
, vol.38
, pp. 818-830
-
-
Yu, C.I.1
Becker, C.2
Wang, Y.3
Marches, F.4
Helft, J.5
Leboeuf, M.6
Anguiano, E.7
Pourpe, S.8
Goller, K.9
Pascual, V.10
Banchereau, J.11
Merad, M.12
Palucka, K.13
-
2
-
-
77953522371
-
+ dendritic cells
-
+ dendritic cells. J. Exp. Med. 207, 1273–1281 (2010).
-
(2010)
J. Exp. Med.
, vol.207
, pp. 1273-1281
-
-
Bachem, A.1
Güttler, S.2
Hartung, E.3
Ebstein, F.4
Schaefer, M.5
Tannert, A.6
Salama, A.7
Movassaghi, K.8
Opitz, C.9
Mages, H.W.10
Henn, V.11
Kloetzel, P.-M.12
Gurka, S.13
Kroczek, R.A.14
-
3
-
-
77953506509
-
+ dendritic cells
-
+ dendritic cells. J. Exp. Med. 207, 1283–1292 (2010).
-
(2010)
J. Exp. Med.
, vol.207
, pp. 1283-1292
-
-
Crozat, K.1
Guiton, R.2
Contreras, V.3
Feuillet, V.4
Dutertre, C.-A.5
Ventre, E.6
Vu Manh, T.-P.7
Baranek, T.8
Storset, A.K.9
Marvel, J.10
Boudinot, P.11
Hosmalin, A.12
Schwartz-Cornil, I.13
Dalod, M.14
-
4
-
-
77953502765
-
+ dendritic cells (DCs) represent a unique myeloid DC subset that cross-presents necrotic cell antigens
-
+ dendritic cells (DCs) represent a unique myeloid DC subset that cross-presents necrotic cell antigens. J. Exp. Med. 207, 1247–1260 (2010).
-
(2010)
J. Exp. Med.
, vol.207
, pp. 1247-1260
-
-
Jongbloed, S.L.1
Kassianos, A.J.2
McDonald, K.J.3
Clark, G.J.4
Ju, X.5
Angel, C.E.6
Chen, C.-J.J.7
Dunbar, P.R.8
Wadley, R.B.9
Jeet, V.10
Vulink, A.J.E.11
Hart, D.N.J.12
Radford, K.J.13
-
5
-
-
77953484184
-
+ dendritic cells
-
+ dendritic cells. J. Exp. Med. 207, 1261–1271 (2010).
-
(2010)
J. Exp. Med.
, vol.207
, pp. 1261-1271
-
-
Poulin, L.F.1
Salio, M.2
Griessinger, E.3
Anjos-Afonso, F.4
Craciun, L.5
Chen, J.-L.6
Keller, A.M.7
Joffre, O.8
Zelenay, S.9
Nye, E.10
Le Moine, A.11
Faure, F.12
Donckier, V.13
Sancho, D.14
Cerundolo, V.15
Bonnet, D.16
Reis e Sousa, C.17
-
6
-
-
84864293006
-
+ nonlymphoid dendritic cells
-
+ nonlymphoid dendritic cells. Immunity 37, 60–73 (2012).
-
(2012)
Immunity
, vol.37
, pp. 60-73
-
-
Haniffa, M.1
Shin, A.2
Bigley, V.3
McGovern, N.4
Teo, P.5
See, P.6
Wasan, P.S.7
Wang, X.-N.8
Malinarich, F.9
Malleret, B.10
Larbi, A.11
Tan, P.12
Zhao, H.13
Poidinger, M.14
Pagan, S.15
Cookson, S.16
Dickinson, R.17
Dimmick, I.18
Jarrett, R.F.19
Renia, L.20
Tam, J.21
Song, C.22
Connolly, J.23
Chan, J.K.Y.24
Gehring, A.25
Bertoletti, A.26
Collin, M.27
Ginhoux, F.28
more..
-
8
-
-
76949084163
-
Dendritic cell subsets digested: RNA sensing makes the difference!
-
S. I. Buschow, C. G. Figdor, Dendritic cell subsets digested: RNA sensing makes the difference! Immunity 32, 149–151 (2010).
-
(2010)
Immunity
, vol.32
, pp. 149-151
-
-
Buschow, S.I.1
Figdor, C.G.2
-
10
-
-
84941356605
-
Robust anti-viral immunity requires multiple distinct T cell-dendritic cell interactions
-
S. Eickhoff, A. Brewitz, M. Y. Gerner, F. Klauschen, K. Komander, H. Hemmi, N. Garbi, T. Kaisho, R. N. Germain, W. Kastenmüller, Robust anti-viral immunity requires multiple distinct T cell-dendritic cell interactions. Cell 162, 1322–1337 (2015).
-
(2015)
Cell
, vol.162
, pp. 1322-1337
-
-
Eickhoff, S.1
Brewitz, A.2
Gerner, M.Y.3
Klauschen, F.4
Komander, K.5
Hemmi, H.6
Garbi, N.7
Kaisho, T.8
Germain, R.N.9
Kastenmüller, W.10
-
12
-
-
0035838984
-
Dendritic cells: Specialized and regulated antigen processing machines
-
I. Mellman, R. M. Steinman, Dendritic cells: Specialized and regulated antigen processing machines. Cell 106, 255–258 (2001).
-
(2001)
Cell
, vol.106
, pp. 255-258
-
-
Mellman, I.1
Steinman, R.M.2
-
13
-
-
0024955886
-
Approaching the asymptote? Evolution and revolution in immunology
-
C. A. Janeway Jr., Approaching the asymptote? Evolution and revolution in immunology. Cold Spring Harbor Symp. Quant. Biol. 54 (Pt 1), 1–13 (1989).
-
(1989)
Cold Spring Harbor Symp. Quant. Biol.
, vol.54
, pp. 1-13
-
-
Janeway, C.A.1
-
14
-
-
0034995061
-
Dendritic cells as sensors of infection
-
C. Reis e Sousa, Dendritic cells as sensors of infection. Immunity 14, 495–498 (2001).
-
(2001)
Immunity
, vol.14
, pp. 495-498
-
-
Reis e Sousa, C.1
-
15
-
-
34548694962
-
Innate recognition of viruses
-
A. Pichlmair, C. Reis e Sousa, Innate recognition of viruses. Immunity 27, 370–383 (2007).
-
(2007)
Immunity
, vol.27
, pp. 370-383
-
-
Pichlmair, A.1
Reis e Sousa, C.2
-
16
-
-
84869018123
-
Interactions between HIV-1 and innate immunity in dendritic cells
-
A. Silvin, N. Manel, Interactions between HIV-1 and innate immunity in dendritic cells. Adv. Exp. Med. Biol. 762, 183–200 (2013).
-
(2013)
Adv. Exp. Med. Biol.
, vol.762
, pp. 183-200
-
-
Silvin, A.1
Manel, N.2
-
17
-
-
51349087106
-
Innate immune response to viral infection
-
S. Koyama, K. J. Ishii, C. Coban, S. Akira, Innate immune response to viral infection. Cytokine 43, 336–341 (2008).
-
(2008)
Cytokine
, vol.43
, pp. 336-341
-
-
Koyama, S.1
Ishii, K.J.2
Coban, C.3
Akira, S.4
-
18
-
-
0035106473
-
MHC-I–restricted presentation of HIV-1 virion antigens without viral replication
-
F. Buseyne, S. Le Gall, C. Boccaccio, J.-P. Abastado, J. D. Lifson, L. O. Arthur, Y. Rivière, J.-M. Heard, O. Schwartz, MHC-I–restricted presentation of HIV-1 virion antigens without viral replication. Nat. Med. 7, 344–349 (2001).
-
(2001)
Nat. Med.
, vol.7
, pp. 344-349
-
-
Buseyne, F.1
Le Gall, S.2
Boccaccio, C.3
Abastado, J.-P.4
Lifson, J.D.5
Arthur, L.O.6
Rivière, Y.7
Heard, J.-M.8
Schwartz, O.9
-
19
-
-
77956497003
-
A cryptic sensor for HIV-1 activates antiviral innate immunity in dendritic cells
-
N. Manel, B. Hogstad, Y. Wang, D. E. Levy, D. Unutmaz, D. R. Littman, A cryptic sensor for HIV-1 activates antiviral innate immunity in dendritic cells. Nature 467, 214–217 (2010).
-
(2010)
Nature
, vol.467
, pp. 214-217
-
-
Manel, N.1
Hogstad, B.2
Wang, Y.3
Levy, D.E.4
Unutmaz, D.5
Littman, D.R.6
-
20
-
-
79956079190
-
Immunological mechanisms of vaccination
-
B. Pulendran, R. Ahmed, Immunological mechanisms of vaccination. Nat. Immunol. 12, 509–517 (2011).
-
(2011)
Nat. Immunol.
, vol.12
, pp. 509-517
-
-
Pulendran, B.1
Ahmed, R.2
-
21
-
-
33750984771
-
RIG-I-mediated antiviral responses to single-stranded RNA bearing 5′-phosphates
-
A. Pichlmair, O. Schulz, C. P. Tan, T. I. Näslund, P. Liljeström, F. Weber, C. Reis e Sousa, RIG-I-mediated antiviral responses to single-stranded RNA bearing 5′-phosphates. Science 314, 997–1001 (2006).
-
(2006)
Science
, vol.314
, pp. 997-1001
-
-
Pichlmair, A.1
Schulz, O.2
Tan, C.P.3
Näslund, T.I.4
Liljeström, P.5
Weber, F.6
Reis e Sousa, C.7
-
22
-
-
0029875421
-
Endocytosis of major histocompatibility complex class I molecules is induced by the HIV-1 Nef protein
-
O. Schwartz, V. Maréchal, S. Le Gall, F. Lemonnier, J. M. Heard, Endocytosis of major histocompatibility complex class I molecules is induced by the HIV-1 Nef protein. Nat. Med. 2, 338–342 (1996).
-
(1996)
Nat. Med.
, vol.2
, pp. 338-342
-
-
Schwartz, O.1
Maréchal, V.2
Le Gall, S.3
Lemonnier, F.4
Heard, J.M.5
-
23
-
-
56749133272
-
Viral evasion and subversion of pattern-recognition receptor signalling
-
A. G. Bowie, L. Unterholzner, Viral evasion and subversion of pattern-recognition receptor signalling. Nat. Rev. Immunol. 8, 911–922 (2008).
-
(2008)
Nat. Rev. Immunol.
, vol.8
, pp. 911-922
-
-
Bowie, A.G.1
Unterholzner, L.2
-
24
-
-
84964798222
-
Mx1 reveals innate pathways to antiviral resistance and lethal influenza disease
-
P. S. Pillai, R. D. Molony, K. Martinod, H. Dong, I. K. Pang, M. C. Tal, A. G. Solis, P. Bielecki, S. Mohanty, M. Trentalange, R. J. Homer, R. A. Flavell, D. D. Wagner, R. R. Montgomery, A. C. Shaw, P. Staeheli, A. Iwasaki, Mx1 reveals innate pathways to antiviral resistance and lethal influenza disease. Science 352, 463–466 (2016).
-
(2016)
Science
, vol.352
, pp. 463-466
-
-
Pillai, P.S.1
Molony, R.D.2
Martinod, K.3
Dong, H.4
Pang, I.K.5
Tal, M.C.6
Solis, A.G.7
Bielecki, P.8
Mohanty, S.9
Trentalange, M.10
Homer, R.J.11
Flavell, R.A.12
Wagner, D.D.13
Montgomery, R.R.14
Shaw, A.C.15
Staeheli, P.16
Iwasaki, A.17
-
25
-
-
79959843617
-
SAMHD1 is the dendritic- And myeloid-cell-specific HIV-1 restriction factor counteracted by Vpx
-
N. Laguette, B. Sobhian, N. Casartelli, M. Ringeard, C. Chable-Bessia, E. Ségéral, A. Yatim, S. Emiliani, O. Schwartz, M. Benkirane, SAMHD1 is the dendritic- and myeloid-cell-specific HIV-1 restriction factor counteracted by Vpx. Nature 474, 654–657 (2011).
-
(2011)
Nature
, vol.474
, pp. 654-657
-
-
Laguette, N.1
Sobhian, B.2
Casartelli, N.3
Ringeard, M.4
Chable-Bessia, C.5
Ségéral, E.6
Yatim, A.7
Emiliani, S.8
Schwartz, O.9
Benkirane, M.10
-
26
-
-
79959858243
-
Vpx relieves inhibition of HIV-1 infection of macrophages mediated by the SAMHD1 protein
-
K. Hrecka, C. Hao, M. Gierszewska, S. K. Swanson, M. Kesik-Brodacka, S. Srivastava, L. Florens, M. P. Washburn, J. Skowronski, Vpx relieves inhibition of HIV-1 infection of macrophages mediated by the SAMHD1 protein. Nature 474, 658–661 (2011).
-
(2011)
Nature
, vol.474
, pp. 658-661
-
-
Hrecka, K.1
Hao, C.2
Gierszewska, M.3
Swanson, S.K.4
Kesik-Brodacka, M.5
Srivastava, S.6
Florens, L.7
Washburn, M.P.8
Skowronski, J.9
-
27
-
-
84890215093
-
The capsids of HIV-1 and HIV-2 determine immune detection of the viral cDNA by the innate sensor cGAS in dendritic cells
-
X. Lahaye, T. Satoh, M. Gentili, S. Cerboni, C. Conrad, I. Hurbain, A. El Marjou, C. Lacabaratz, J.-D. Lelièvre, N. Manel, The capsids of HIV-1 and HIV-2 determine immune detection of the viral cDNA by the innate sensor cGAS in dendritic cells. Immunity 39, 1132–1142 (2013).
-
(2013)
Immunity
, vol.39
, pp. 1132-1142
-
-
Lahaye, X.1
Satoh, T.2
Gentili, M.3
Cerboni, S.4
Conrad, C.5
Hurbain, I.6
El Marjou, A.7
Lacabaratz, C.8
Lelièvre, J.-D.9
Manel, N.10
-
28
-
-
84882896267
-
Cyclic GMP-AMP synthase is an innate immune sensor of HIV and other retroviruses
-
D. Gao, J. Wu, Y.-T. Wu, F. Du, C. Aroh, N. Yan, L. Sun, Z. J. Chen, Cyclic GMP-AMP synthase is an innate immune sensor of HIV and other retroviruses. Science 341, 903–906 (2013).
-
(2013)
Science
, vol.341
, pp. 903-906
-
-
Gao, D.1
Wu, J.2
Wu, Y.-T.3
Du, F.4
Aroh, C.5
Yan, N.6
Sun, L.7
Chen, Z.J.8
-
29
-
-
34248579519
-
Out of Africa: What can we learn from HIV-2 about protective immunity to HIV-1?
-
S. L. Rowland-Jones, H. C. Whittle, Out of Africa: What can we learn from HIV-2 about protective immunity to HIV-1? Nat. Immunol. 8, 329–331 (2007).
-
(2007)
Nat. Immunol.
, vol.8
, pp. 329-331
-
-
Rowland-Jones, S.L.1
Whittle, H.C.2
-
30
-
-
80054697388
-
Hiding in plain sight: How HIV evades innate immune responses
-
N. Manel, D. R. Littman, Hiding in plain sight: How HIV evades innate immune responses. Cell 147, 271–274 (2011).
-
(2011)
Cell
, vol.147
, pp. 271-274
-
-
Manel, N.1
Littman, D.R.2
-
31
-
-
84893463287
-
HIV type 1 infection of plasmacytoid and myeloid dendritic cells is restricted by high levels of SAMHD1 and cannot be counteracted by Vpx
-
N. Bloch, M. O’Brien, T. D. Norton, S. B. Polsky, N. Bhardwaj, N. R. Landau, HIV type 1 infection of plasmacytoid and myeloid dendritic cells is restricted by high levels of SAMHD1 and cannot be counteracted by Vpx. AIDS Res. Hum. Retroviruses 30, 195–203 (2014).
-
(2014)
AIDS Res. Hum. Retroviruses
, vol.30
, pp. 195-203
-
-
Bloch, N.1
O’Brien, M.2
Norton, T.D.3
Polsky, S.B.4
Bhardwaj, N.5
Landau, N.R.6
-
32
-
-
79952217825
-
Innate sensing of HIV-infected cells
-
A. Lepelley, S. Louis, M. Sourisseau, H. K. W. Law, J. Pothlichet, C. Schilte, L. Chaperot, J. Plumas, R. E. Randall, M. Si-Tahar, F. Mammano, M. L. Albert, O. Schwartz, Innate sensing of HIV-infected cells. PLOS Pathog. 7, e1001284 (2011).
-
(2011)
PLOS Pathog
, vol.7
-
-
Lepelley, A.1
Louis, S.2
Sourisseau, M.3
Law, H.K.W.4
Pothlichet, J.5
Schilte, C.6
Chaperot, L.7
Plumas, J.8
Randall, R.E.9
Si-Tahar, M.10
Mammano, F.11
Albert, M.L.12
Schwartz, O.13
-
33
-
-
43249125302
-
Differential response of respiratory dendritic cell subsets to influenza virus infection
-
X. Hao, T. S. Kim, T. J. Braciale, Differential response of respiratory dendritic cell subsets to influenza virus infection. J. Virol. 82, 4908–4919 (2008).
-
(2008)
J. Virol.
, vol.82
, pp. 4908-4919
-
-
Hao, X.1
Kim, T.S.2
Braciale, T.J.3
-
34
-
-
0037332073
-
Accelerated migration of respiratory dendritic cells to the regional lymph nodes is limited to the early phase of pulmonary infection
-
K. L. Legge, T. J. Braciale, Accelerated migration of respiratory dendritic cells to the regional lymph nodes is limited to the early phase of pulmonary infection. Immunity 18, 265–277 (2003).
-
(2003)
Immunity
, vol.18
, pp. 265-277
-
-
Legge, K.L.1
Braciale, T.J.2
-
35
-
-
84868628564
-
+ dendritic cells are protected from influenza virus infection
-
+ dendritic cells are protected from influenza virus infection. J. Clin. Invest. 122, 4037–4047 (2012).
-
(2012)
J. Clin. Invest.
, vol.122
, pp. 4037-4047
-
-
Helft, J.1
Manicassamy, B.2
Guermonprez, P.3
Hashimoto, D.4
Silvin, A.5
Agudo, J.6
Brown, B.D.7
Schmolke, M.8
Miller, J.C.9
Leboeuf, M.10
Murphy, K.M.11
García-Sastre, A.12
Merad, M.13
-
36
-
-
33947134377
-
Autophagy-dependent viral recognition by plasmacytoid dendritic cells
-
H. K. Lee, J. M. Lund, B. Ramanathan, N. Mizushima, A. Iwasaki, Autophagy-dependent viral recognition by plasmacytoid dendritic cells. Science 315, 1398–1401 (2007).
-
(2007)
Science
, vol.315
, pp. 1398-1401
-
-
Lee, H.K.1
Lund, J.M.2
Ramanathan, B.3
Mizushima, N.4
Iwasaki, A.5
-
37
-
-
84871399974
-
Influenza A virus infection of human primary dendritic cells impairs their ability to cross-present antigen to CD8 T cells
-
A. Smed-Sörensen, C. Chalouni, B. Chatterjee, L. Cohn, P. Blattmann, N. Nakamura, L. Delamarre, I. Mellman, Influenza A virus infection of human primary dendritic cells impairs their ability to cross-present antigen to CD8 T cells. PLOS Pathog. 8, e1002572 (2012).
-
(2012)
PLOS Pathog
, vol.8
-
-
Smed-Sörensen, A.1
Chalouni, C.2
Chatterjee, B.3
Cohn, L.4
Blattmann, P.5
Nakamura, N.6
Delamarre, L.7
Mellman, I.8
-
38
-
-
0037903228
-
+ T cells: A new role for plasmacytoid dendritic cells in adaptive immunity
-
+ T cells: A new role for plasmacytoid dendritic cells in adaptive immunity. Blood 101, 3520–3526 (2003).
-
(2003)
Blood
, vol.101
, pp. 3520-3526
-
-
Fonteneau, J.F.1
Gilliet, M.2
Larsson, M.3
Dasilva, I.4
Münz, C.5
Liu, Y.J.6
Bhardwaj, N.7
-
39
-
-
1542317550
-
Innate antiviral responses by means of TLR7-mediated recognition of single-stranded RNA
-
S. S. Diebold, T. Kaisho, H. Hemmi, S. Akira, C. Reis e Sousa, Innate antiviral responses by means of TLR7-mediated recognition of single-stranded RNA. Science 303, 1529–1531 (2004).
-
(2004)
Science
, vol.303
, pp. 1529-1531
-
-
Diebold, S.S.1
Kaisho, T.2
Hemmi, H.3
Akira, S.4
Reis e Sousa, C.5
-
40
-
-
0026710130
-
Human infection by genetically diverse SIVSM-related HIV-2 in west Africa
-
F. Gao, L. Yue, A. T. White, P. G. Pappas, J. Barchue, A. P. Hanson, B. M. Greene, P. M. Sharp, G. M. Shaw, B. H. Hahn, Human infection by genetically diverse SIVSM-related HIV-2 in west Africa. Nature 358, 495–499 (1992).
-
(1992)
Nature
, vol.358
, pp. 495-499
-
-
Gao, F.1
Yue, L.2
White, A.T.3
Pappas, P.G.4
Barchue, J.5
Hanson, A.P.6
Greene, B.M.7
Sharp, P.M.8
Shaw, G.M.9
Hahn, B.H.10
-
41
-
-
77954889069
-
Analysis of in vivo dynamics of influenza virus infection in mice using a GFP reporter virus
-
B. Manicassamy, S. Manicassamy, A. Belicha-Villanueva, G. Pisanelli, B. Pulendran, A. García-Sastre, Analysis of in vivo dynamics of influenza virus infection in mice using a GFP reporter virus. Proc. Natl. Acad. Sci. U.S.A. 107, 11531–11536 (2010).
-
(2010)
Proc. Natl. Acad. Sci. U.S.A.
, vol.107
, pp. 11531-11536
-
-
Manicassamy, B.1
Manicassamy, S.2
Belicha-Villanueva, A.3
Pisanelli, G.4
Pulendran, B.5
García-Sastre, A.6
-
42
-
-
45749120843
-
Novel insights into the relationships between dendritic cell subsets in human and mouse revealed by genome-wide expression profiling
-
S. H. Robbins, T. Walzer, D. Dembélé, C. Thibault, A. Defays, G. Bessou, H. Xu, E. Vivier, M. Sellars, P. Pierre, F. R. Sharp, S. Chan, P. Kastner, M. Dalod, Novel insights into the relationships between dendritic cell subsets in human and mouse revealed by genome-wide expression profiling. Genome Biol. 9, R17 (2008).
-
(2008)
Genome Biol
, vol.9
, pp. R17
-
-
Robbins, S.H.1
Walzer, T.2
Dembélé, D.3
Thibault, C.4
Defays, A.5
Bessou, G.6
Xu, H.7
Vivier, E.8
Sellars, M.9
Pierre, P.10
Sharp, F.R.11
Chan, S.12
Kastner, P.13
Dalod, M.14
-
43
-
-
0029053372
-
Vaccinia virus encodes a soluble type I interferon receptor of novel structure and broad species specificity
-
J. A. Symons, A. Alcami, G. L. Smith, Vaccinia virus encodes a soluble type I interferon receptor of novel structure and broad species specificity. Cell 81, 551–560 (1995).
-
(1995)
Cell
, vol.81
, pp. 551-560
-
-
Symons, J.A.1
Alcami, A.2
Smith, G.L.3
-
44
-
-
0036844376
-
A sensitive and specific enzyme-based assay detecting HIV-1 virion fusion in primary T lymphocytes
-
M. Cavrois, C. De Noronha, W. C. Greene, A sensitive and specific enzyme-based assay detecting HIV-1 virion fusion in primary T lymphocytes. Nat. Biotechnol. 20, 1151–1154 (2002).
-
(2002)
Nat. Biotechnol.
, vol.20
, pp. 1151-1154
-
-
Cavrois, M.1
De Noronha, C.2
Greene, W.C.3
-
45
-
-
77956642122
-
Vaccinia virus A25 and A26 proteins are fusion suppressors for mature virions and determine strain-specific virus entry pathways into HeLa, CHO-K1, and L cells
-
S.-J. Chang, Y.-X. Chang, R. Izmailyan, Y.-L. Tang, W. Chang, Vaccinia virus A25 and A26 proteins are fusion suppressors for mature virions and determine strain-specific virus entry pathways into HeLa, CHO-K1, and L cells. J. Virol. 84, 8422–8432 (2010).
-
(2010)
J. Virol.
, vol.84
, pp. 8422-8432
-
-
Chang, S.-J.1
Chang, Y.-X.2
Izmailyan, R.3
Tang, Y.-L.4
Chang, W.5
-
46
-
-
18144365075
-
Entry of the vaccinia virus intracellular mature virion and its interactions with glycosaminoglycans
-
G. C. Carter, M. Law, M. Hollinshead, G. L. Smith, Entry of the vaccinia virus intracellular mature virion and its interactions with glycosaminoglycans. J. Gen. Virol. 86, 1279–1290 (2005).
-
(2005)
J. Gen. Virol.
, vol.86
, pp. 1279-1290
-
-
Carter, G.C.1
Law, M.2
Hollinshead, M.3
Smith, G.L.4
-
47
-
-
19144365133
-
Endosomal proteolysis of the Ebola virus glycoprotein is necessary for infection
-
K. Chandran, N. J. Sullivan, U. Felbor, S. P. Whelan, J. M. Cunningham, Endosomal proteolysis of the Ebola virus glycoprotein is necessary for infection. Science 308, 1643–1645 (2005).
-
(2005)
Science
, vol.308
, pp. 1643-1645
-
-
Chandran, K.1
Sullivan, N.J.2
Felbor, U.3
Whelan, S.P.4
Cunningham, J.M.5
-
48
-
-
68049105101
-
Rab GTPases as coordinators of vesicle traffic
-
H. Stenmark, Rab GTPases as coordinators of vesicle traffic. Nat. Rev. Mol. Cell Biol. 10, 513–525 (2009).
-
(2009)
Nat. Rev. Mol. Cell Biol.
, vol.10
, pp. 513-525
-
-
Stenmark, H.1
-
49
-
-
84860735585
-
Rab15 alternative splicing is altered in spheres of neuroblastoma cells
-
T. V. H. Pham, T. B. Hartomo, M. J. Lee, D. Hasegawa, T. Ishida, K. Kawasaki, Y. Kosaka, T. Yamamoto, S. Morikawa, N. Yamamoto, I. Kubokawa, T. Mori, T. Yanai, A. Hayakawa, Y. Takeshima, K. Iijima, M. Matsuo, H. Nishio, N. Nishimura, Rab15 alternative splicing is altered in spheres of neuroblastoma cells. Oncol. Rep. 27, 2045–2049 (2012).
-
(2012)
Oncol. Rep.
, vol.27
, pp. 2045-2049
-
-
Pham, T.V.H.1
Hartomo, T.B.2
Lee, M.J.3
Hasegawa, D.4
Ishida, T.5
Kawasaki, K.6
Kosaka, Y.7
Yamamoto, T.8
Morikawa, S.9
Yamamoto, N.10
Kubokawa, I.11
Mori, T.12
Yanai, T.13
Hayakawa, A.14
Takeshima, Y.15
Iijima, K.16
Matsuo, M.17
Nishio, H.18
Nishimura, N.19
-
50
-
-
84905995910
-
+ progenitors closely resemble blood dendritic cells, including their adjuvant responsiveness, contrary to monocyte-derived dendritic cells
-
+ progenitors closely resemble blood dendritic cells, including their adjuvant responsiveness, contrary to monocyte-derived dendritic cells. J. Immunol. 193, 1622–1635 (2014).
-
(2014)
J. Immunol.
, vol.193
, pp. 1622-1635
-
-
Balan, S.1
Ollion, V.2
Colletti, N.3
Chelbi, R.4
Montanana-Sanchis, F.5
Liu, H.6
Vu Manh, T.-P.7
Sanchez, C.8
Savoret, J.9
Perrot, I.10
Doffin, A.-C.11
Fossum, E.12
Bechlian, D.13
Chabannon, C.14
Bogen, B.15
Asselin-Paturel, C.16
Shaw, M.17
Soos, T.18
Caux, C.19
Valladeau-Guilemond, J.20
Dalod, M.21
more..
-
51
-
-
1542317578
-
Species-specific recognition of single-stranded RNA via Toll-like receptor 7 and 8
-
F. Heil, H. Hemmi, H. Hochrein, F. Ampenberger, C. Kirschning, S. Akira, G. Lipford, H. Wagner, S. Bauer, Species-specific recognition of single-stranded RNA via Toll-like receptor 7 and 8. Science 303, 1526–1529 (2004).
-
(2004)
Science
, vol.303
, pp. 1526-1529
-
-
Heil, F.1
Hemmi, H.2
Hochrein, H.3
Ampenberger, F.4
Kirschning, C.5
Akira, S.6
Lipford, G.7
Wagner, H.8
Bauer, S.9
-
52
-
-
84885766791
-
Processing of human Toll-like receptor 7 by furin-like proprotein convertases is required for its accumulation and activity in endosomes
-
M. M. Hipp, D. Shepherd, U. Gileadi, M. C. Aichinger, B. M. Kessler, M. J. Edelmann, R. Essalmani, N. G. Seidah, C. Reis e Sousa, V. Cerundolo, Processing of human Toll-like receptor 7 by furin-like proprotein convertases is required for its accumulation and activity in endosomes. Immunity 39, 711–721 (2013).
-
(2013)
Immunity
, vol.39
, pp. 711-721
-
-
Hipp, M.M.1
Shepherd, D.2
Gileadi, U.3
Aichinger, M.C.4
Kessler, B.M.5
Edelmann, M.J.6
Essalmani, R.7
Seidah, N.G.8
Reis e Sousa, C.9
Cerundolo, V.10
-
53
-
-
84910153079
-
Endosomal localization of TLR8 confers distinctive proteolytic processing on human myeloid cells
-
N. Ishii, K. Funami, M. Tatematsu, T. Seya, M. Matsumoto, Endosomal localization of TLR8 confers distinctive proteolytic processing on human myeloid cells. J. Immunol. 193, 5118–5128 (2014).
-
(2014)
J. Immunol.
, vol.193
, pp. 5118-5128
-
-
Ishii, N.1
Funami, K.2
Tatematsu, M.3
Seya, T.4
Matsumoto, M.5
-
54
-
-
0019793570
-
Principles of selective inactivation of viral genome. I. UV-induced inactivation of influenza virus
-
E. I. Budowsky, S. E. Bresler, E. A. Friedman, N. V. Zheleznova, Principles of selective inactivation of viral genome. I. UV-induced inactivation of influenza virus. Arch. Virol. 68, 239–247 (1981).
-
(1981)
Arch. Virol.
, vol.68
, pp. 239-247
-
-
Budowsky, E.I.1
Bresler, S.E.2
Friedman, E.A.3
Zheleznova, N.V.4
-
55
-
-
84945479829
-
Cross-presentation in mouse and human dendritic cells
-
E. Segura, S. Amigorena, Cross-presentation in mouse and human dendritic cells. Adv. Immunol. 127, 1–31 (2015).
-
(2015)
Adv. Immunol.
, vol.127
, pp. 1-31
-
-
Segura, E.1
Amigorena, S.2
-
56
-
-
32944473016
-
Virus entry: Open sesame
-
M. Marsh, A. Helenius, Virus entry: Open sesame. Cell 124, 729–740 (2006).
-
(2006)
Cell
, vol.124
, pp. 729-740
-
-
Marsh, M.1
Helenius, A.2
-
57
-
-
0023644926
-
PH-independent HIV entry into CD4-positive T cells via virus envelope fusion to the plasma membrane
-
B. S. Stein, S. D. Gowda, J. D. Lifson, R. C. Penhallow, K. G. Bensch, E. G. Engleman, pH-independent HIV entry into CD4-positive T cells via virus envelope fusion to the plasma membrane. Cell 49, 659–668 (1987).
-
(1987)
Cell
, vol.49
, pp. 659-668
-
-
Stein, B.S.1
Gowda, S.D.2
Lifson, J.D.3
Penhallow, R.C.4
Bensch, K.G.5
Engleman, E.G.6
-
58
-
-
65249139458
-
HIV enters cells via endocytosis and dynamin-dependent fusion with endosomes
-
K. Miyauchi, Y. Kim, O. Latinovic, V. Morozov, G. B. Melikyan, HIV enters cells via endocytosis and dynamin-dependent fusion with endosomes. Cell 137, 433–444 (2009).
-
(2009)
Cell
, vol.137
, pp. 433-444
-
-
Miyauchi, K.1
Kim, Y.2
Latinovic, O.3
Morozov, V.4
Melikyan, G.B.5
-
59
-
-
0034755158
-
Human immunodeficiency virus type 1 entry into macrophages mediated by macropinocytosis
-
V. Maréchal, M.-C. Prevost, C. Petit, E. Perret, J.-M. Heard, O. Schwartz, Human immunodeficiency virus type 1 entry into macrophages mediated by macropinocytosis. J. Virol. 75, 11166–11177 (2001).
-
(2001)
J. Virol.
, vol.75
, pp. 11166-11177
-
-
Maréchal, V.1
Prevost, M.-C.2
Petit, C.3
Perret, E.4
Heard, J.-M.5
Schwartz, O.6
-
60
-
-
50849114848
-
HIV traffics through a specialized, surface-accessible intracellular compartment during trans-infection of T cells by mature dendritic cells
-
H. J. Yu, M. A. Reuter, D. McDonald, HIV traffics through a specialized, surface-accessible intracellular compartment during trans-infection of T cells by mature dendritic cells. PLOS Pathog. 4, e1000134 (2008).
-
(2008)
PLOS Pathog
, vol.4
-
-
Yu, H.J.1
Reuter, M.A.2
McDonald, D.3
-
61
-
-
84879831137
-
+ myeloid dendritic cells to respiratory syncytial virus infection
-
+ myeloid dendritic cells to respiratory syncytial virus infection. Respir. Res. 14, 71 (2013).
-
(2013)
Respir. Res.
, vol.14
, pp. 71
-
-
Gupta, M.R.1
Kolli, D.2
Garofalo, R.P.3
-
62
-
-
79551524981
-
Primary human mDC1, mDC2, and pDC dendritic cells are differentially infected and activated by respiratory syncytial virus
-
T. R. Johnson, C. N. Johnson, K. S. Corbett, G. C. Edwards, B. S. Graham, Primary human mDC1, mDC2, and pDC dendritic cells are differentially infected and activated by respiratory syncytial virus. PLOS ONE 6, e16458 (2011).
-
(2011)
PLOS ONE
, vol.6
-
-
Johnson, T.R.1
Johnson, C.N.2
Corbett, K.S.3
Edwards, G.C.4
Graham, B.S.5
-
63
-
-
83755222543
-
Enforced viral replication activates adaptive immunity and is essential for the control of a cytopathic virus
-
N. Honke, N. Shaabani, G. Cadeddu, U. R. Sorg, D.-E. Zhang, M. Trilling, K. Klingel, M. Sauter, R. Kandolf, N. Gailus, N. van Rooijen, C. Burkart, S. E. Baldus, M. Grusdat, M. Löhning, H. Hengel, K. Pfeffer, M. Tanaka, D. Häussinger, M. Recher, P. A. Lang, K. S. Lang, Enforced viral replication activates adaptive immunity and is essential for the control of a cytopathic virus. Nat. Immunol. 13, 51–57 (2011).
-
(2011)
Nat. Immunol.
, vol.13
, pp. 51-57
-
-
Honke, N.1
Shaabani, N.2
Cadeddu, G.3
Sorg, U.R.4
Zhang, D.-E.5
Trilling, M.6
Klingel, K.7
Sauter, M.8
Kandolf, R.9
Gailus, N.10
Van Rooijen, N.11
Burkart, C.12
Baldus, S.E.13
Grusdat, M.14
Löhning, M.15
Hengel, H.16
Pfeffer, K.17
Tanaka, M.18
Häussinger, D.19
Recher, M.20
Lang, P.A.21
Lang, K.S.22
more..
-
64
-
-
0034282387
-
Rab15 differentially regulates early endocytic trafficking
-
P. A. Zuk, L. A. Elferink, Rab15 differentially regulates early endocytic trafficking. J. Biol. Chem. 275, 26754–26764 (2000).
-
(2000)
J. Biol. Chem.
, vol.275
, pp. 26754-26764
-
-
Zuk, P.A.1
Elferink, L.A.2
-
65
-
-
0037690744
-
Differential requirements of Rab5 and Rab7 for endocytosis of influenza and other enveloped viruses
-
S. B. Sieczkarski, G. R. Whittaker, Differential requirements of Rab5 and Rab7 for endocytosis of influenza and other enveloped viruses. Traffic 4, 333–343 (2003).
-
(2003)
Traffic
, vol.4
, pp. 333-343
-
-
Sieczkarski, S.B.1
Whittaker, G.R.2
-
66
-
-
39349097864
-
Identification of host proteins required for HIV infection through a functional genomic screen
-
A. L. Brass, D. M. Dykxhoorn, Y. Benita, N. Yan, A. Engelman, R. J. Xavier, J. Lieberman, S. J. Elledge, Identification of host proteins required for HIV infection through a functional genomic screen. Science 319, 921–926 (2008).
-
(2008)
Science
, vol.319
, pp. 921-926
-
-
Brass, A.L.1
Dykxhoorn, D.M.2
Benita, Y.3
Yan, N.4
Engelman, A.5
Xavier, R.J.6
Lieberman, J.7
Elledge, S.J.8
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