-
1
-
-
84905107360
-
Dendritic cells, monocytes and macrophages: a unified nomenclature based on ontogeny
-
Guilliams M, Ginhoux F, Jakubzick C, Naik SH, Onai N, Schraml BU, et al. Dendritic cells, monocytes and macrophages: a unified nomenclature based on ontogeny. Nat Rev Immunol (2014) 14:571-8. doi: 10.1038/nri3712.
-
(2014)
Nat Rev Immunol
, vol.14
, pp. 571-578
-
-
Guilliams, M.1
Ginhoux, F.2
Jakubzick, C.3
Naik, S.H.4
Onai, N.5
Schraml, B.U.6
-
2
-
-
84875528275
-
The dendritic cell lineage: ontogeny and function of dendritic cells and their subsets in the steady state and the inflamed setting
-
Merad M, Sathe P, Helft J, Miller J, Mortha A. The dendritic cell lineage: ontogeny and function of dendritic cells and their subsets in the steady state and the inflamed setting. Annu Rev Immunol (2013) 31:563-604. doi:10.1146/annurev-immunol-020711-074950.
-
(2013)
Annu Rev Immunol
, vol.31
, pp. 563-604
-
-
Merad, M.1
Sathe, P.2
Helft, J.3
Miller, J.4
Mortha, A.5
-
4
-
-
84931561466
-
Dendritic cells and monocyte-derived cells: two complementary and integrated functional systems
-
Schlitzer A, McGovern N, Ginhoux F. Dendritic cells and monocyte-derived cells: two complementary and integrated functional systems. Semin Cell Dev Biol (2015) 41:9-22. doi:10.1016/j.semcdb.2015.03.011.
-
(2015)
Semin Cell Dev Biol
, vol.41
, pp. 9-22
-
-
Schlitzer, A.1
McGovern, N.2
Ginhoux, F.3
-
5
-
-
84872765982
-
Fate mapping reveals origins and dynamics of monocytes and tissue macrophages under homeostasis
-
Yona S, Kim KW, Wolf Y, Mildner A, Varol D, Breker M, et al. Fate mapping reveals origins and dynamics of monocytes and tissue macrophages under homeostasis. Immunity (2013) 38:79-91. doi:10.1016/j.immuni.2012.12.001.
-
(2013)
Immunity
, vol.38
, pp. 79-91
-
-
Yona, S.1
Kim, K.W.2
Wolf, Y.3
Mildner, A.4
Varol, D.5
Breker, M.6
-
6
-
-
58149388026
-
Origins and tissue-context-dependent fates of blood monocytes
-
Varol C, Yona S, Jung S. Origins and tissue-context-dependent fates of blood monocytes. Immunol Cell Biol (2009) 87:30-8. doi:10.1038/icb.2008.90.
-
(2009)
Immunol Cell Biol
, vol.87
, pp. 30-38
-
-
Varol, C.1
Yona, S.2
Jung, S.3
-
7
-
-
84870900504
-
Ly6C hi monocytes in the inflamed colon give rise to proinflammatory effector cells and migratory antigen-presenting cells
-
Zigmond E, Varol C, Farache J, Elmaliah E, Satpathy AT, Friedlander G, et al. Ly6C hi monocytes in the inflamed colon give rise to proinflammatory effector cells and migratory antigen-presenting cells. Immunity (2012) 37:1076-90. doi:10.1016/j.immuni.2012.08.026.
-
(2012)
Immunity
, vol.37
, pp. 1076-1090
-
-
Zigmond, E.1
Varol, C.2
Farache, J.3
Elmaliah, E.4
Satpathy, A.T.5
Friedlander, G.6
-
8
-
-
46749135222
-
Blood monocytes: distinct subsets, how they relate to dendritic cells, and their possible roles in the regulation of T-cell responses
-
Geissmann F, Auffray C, Palframan R, Wirrig C, Ciocca A, Campisi L, et al. Blood monocytes: distinct subsets, how they relate to dendritic cells, and their possible roles in the regulation of T-cell responses. Immunol Cell Biol (2008) 86:398-408. doi:10.1038/icb.2008.19.
-
(2008)
Immunol Cell Biol
, vol.86
, pp. 398-408
-
-
Geissmann, F.1
Auffray, C.2
Palframan, R.3
Wirrig, C.4
Ciocca, A.5
Campisi, L.6
-
9
-
-
34547728312
-
Monitoring of blood vessels and tissues by a population of monocytes with patrolling behavior
-
Auffray C, Fogg D, Garfa M, Elain G, Join-Lambert O, Kayal S, et al. Monitoring of blood vessels and tissues by a population of monocytes with patrolling behavior. Science (2007) 317:666-70. doi:10.1126/science.1142883.
-
(2007)
Science
, vol.317
, pp. 666-670
-
-
Auffray, C.1
Fogg, D.2
Garfa, M.3
Elain, G.4
Join-Lambert, O.5
Kayal, S.6
-
10
-
-
84876775203
-
Tissue-resident macrophages self-maintain locally throughout adult life with minimal contribution from circulating monocytes
-
Hashimoto D, Chow A, Noizat C, Teo P, Beasley MB, Leboeuf M, et al. Tissue-resident macrophages self-maintain locally throughout adult life with minimal contribution from circulating monocytes. Immunity (2013) 38:792-804. doi:10.1016/j.immuni.2013.04.004.
-
(2013)
Immunity
, vol.38
, pp. 792-804
-
-
Hashimoto, D.1
Chow, A.2
Noizat, C.3
Teo, P.4
Beasley, M.B.5
Leboeuf, M.6
-
11
-
-
84901368457
-
The origins and functions of dendritic cells and macrophages in the skin
-
Malissen B, Tamoutounour S, Henri S. The origins and functions of dendritic cells and macrophages in the skin. Nat Rev Immunol (2014) 14:417-28. doi:10.1038/nri3683.
-
(2014)
Nat Rev Immunol
, vol.14
, pp. 417-428
-
-
Malissen, B.1
Tamoutounour, S.2
Henri, S.3
-
12
-
-
84867740805
-
Gene-expression profiles and transcriptional regulatory pathways that underlie the identity and diversity of mouse tissue macrophages
-
Gautier EL, Shay T, Miller J, Greter M, Jakubzick C, Ivanov S, et al. Gene-expression profiles and transcriptional regulatory pathways that underlie the identity and diversity of mouse tissue macrophages. Nat Immunol (2012) 13:1118-28. doi:10.1038/ni.2419.
-
(2012)
Nat Immunol
, vol.13
, pp. 1118-1128
-
-
Gautier, E.L.1
Shay, T.2
Miller, J.3
Greter, M.4
Jakubzick, C.5
Ivanov, S.6
-
13
-
-
84856159067
-
Transcriptional programming of the dendritic cell network
-
Belz GT, Nutt SL. Transcriptional programming of the dendritic cell network. Nat Rev Immunol (2012) 12:101-13. doi:10.1038/nri3149.
-
(2012)
Nat Rev Immunol
, vol.12
, pp. 101-113
-
-
Belz, G.T.1
Nutt, S.L.2
-
14
-
-
84865418665
-
Deciphering the transcriptional network of the dendritic cell lineage
-
Miller JC, Brown BD, Shay T, Gautier EL, Jojic V, Cohain A, et al. Deciphering the transcriptional network of the dendritic cell lineage. Nat Immunol (2012) 13:888-99. doi:10.1038/ni.2370.
-
(2012)
Nat Immunol
, vol.13
, pp. 888-899
-
-
Miller, J.C.1
Brown, B.D.2
Shay, T.3
Gautier, E.L.4
Jojic, V.5
Cohain, A.6
-
15
-
-
80053156515
-
Dendritic cell and macrophage heterogeneity in vivo
-
Hashimoto D, Miller J, Merad M. Dendritic cell and macrophage heterogeneity in vivo. Immunity (2011) 35:323-35. doi:10.1016/j.immuni.2011.09.007.
-
(2011)
Immunity
, vol.35
, pp. 323-335
-
-
Hashimoto, D.1
Miller, J.2
Merad, M.3
-
16
-
-
84900461408
-
Development and function of dendritic cell subsets
-
Mildner A, Jung S. Development and function of dendritic cell subsets. Immunity (2014) 40:642-56. doi:10.1016/j.immuni.2014.04.016.
-
(2014)
Immunity
, vol.40
, pp. 642-656
-
-
Mildner, A.1
Jung, S.2
-
17
-
-
33845898737
-
Steady-state and inflammatory dendritic-cell development
-
Shortman K, Naik SH. Steady-state and inflammatory dendritic-cell development. Nat Rev Immunol (2007) 7:19-30. doi:10.1038/nri1996.
-
(2007)
Nat Rev Immunol
, vol.7
, pp. 19-30
-
-
Shortman, K.1
Naik, S.H.2
-
18
-
-
84884380781
-
Transcriptional control of dendritic cell development
-
Murphy KM. Transcriptional control of dendritic cell development. Adv Immunol (2013) 120:239-67. doi:10.1016/B978-0-12-417028-5.00009-0.
-
(2013)
Adv Immunol
, vol.120
, pp. 239-267
-
-
Murphy, K.M.1
-
19
-
-
0029661945
-
Dramatic increase in the numbers of functionally mature dendritic cells in Flt3 ligand-treated mice: multiple dendritic cell subpopulations identified
-
Maraskovsky E, Brasel K, Teepe M, Roux ER, Lyman SD, Shortman K, et al. Dramatic increase in the numbers of functionally mature dendritic cells in Flt3 ligand-treated mice: multiple dendritic cell subpopulations identified. J Exp Med (1996) 184:1953-62. doi:10.1084/jem.184.5.1953.
-
(1996)
J Exp Med
, vol.184
, pp. 1953-1962
-
-
Maraskovsky, E.1
Brasel, K.2
Teepe, M.3
Roux, E.R.4
Lyman, S.D.5
Shortman, K.6
-
20
-
-
0030868523
-
Dramatic numerical increase of functionally mature dendritic cells in FLT3 ligand-treated mice
-
Maraskovsky E, Pulendran B, Brasel K, Teepe M, Roux ER, Shortman K, et al. Dramatic numerical increase of functionally mature dendritic cells in FLT3 ligand-treated mice. Adv Exp Med Biol (1997) 417:33-40. doi:10.1007/978-1-4757-9966-8_6.
-
(1997)
Adv Exp Med Biol
, vol.417
, pp. 33-40
-
-
Maraskovsky, E.1
Pulendran, B.2
Brasel, K.3
Teepe, M.4
Roux, E.R.5
Shortman, K.6
-
21
-
-
0042662868
-
Flt3 ligand regulates dendritic cell development from Flt3+ lymphoid and myeloid-committed progenitors to Flt3+ dendritic cells in vivo
-
Karsunky H, Merad M, Cozzio A, Weissman IL, Manz MG. Flt3 ligand regulates dendritic cell development from Flt3+ lymphoid and myeloid-committed progenitors to Flt3+ dendritic cells in vivo. J Exp Med (2003) 198:305-13. doi:10.1084/jem.20030323.
-
(2003)
J Exp Med
, vol.198
, pp. 305-313
-
-
Karsunky, H.1
Merad, M.2
Cozzio, A.3
Weissman, I.L.4
Manz, M.G.5
-
22
-
-
75549089898
-
CD8+, CD8-, and plasmacytoid dendritic cell generation in vitro using flt3 ligand
-
Naik SH, O'Keeffe M, Proietto A, Hochrein H, Shortman K, Wu L. CD8+, CD8-, and plasmacytoid dendritic cell generation in vitro using flt3 ligand. Methods Mol Biol (2010) 595:167-76. doi:10.1007/978-1-60761-421-0_10.
-
(2010)
Methods Mol Biol
, vol.595
, pp. 167-176
-
-
Naik, S.H.1
O'Keeffe, M.2
Proietto, A.3
Hochrein, H.4
Shortman, K.5
Wu, L.6
-
23
-
-
0034332450
-
Generation of murine dendritic cells from flt3-ligand-supplemented bone marrow cultures
-
Brasel K, De Smedt T, Smith JL, Maliszewski CR. Generation of murine dendritic cells from flt3-ligand-supplemented bone marrow cultures. Blood (2000) 96:3029-39.
-
(2000)
Blood
, vol.96
, pp. 3029-3039
-
-
Brasel, K.1
De Smedt, T.2
Smith, J.L.3
Maliszewski, C.R.4
-
24
-
-
0036534871
-
The development of murine plasmacytoid dendritic cell precursors is differentially regulated by Flt3-ligand and granulocyte/macrophage colony-stimulating factor
-
Gilliet M, Boonstra A, Paturel C, Antonenko S, Xu XL, Trinchieri G, et al. The development of murine plasmacytoid dendritic cell precursors is differentially regulated by Flt3-ligand and granulocyte/macrophage colony-stimulating factor. J Exp Med (2002) 195:953-8. doi:10.1084/jem.20020045.
-
(2002)
J Exp Med
, vol.195
, pp. 953-958
-
-
Gilliet, M.1
Boonstra, A.2
Paturel, C.3
Antonenko, S.4
Xu, X.L.5
Trinchieri, G.6
-
25
-
-
0034210658
-
Mice lacking Flt3 ligand have deficient hematopoiesis affecting hematopoietic progenitor cells, dendritic cells, and natural killer cells
-
McKenna HJ, Stocking KL, Miller RE, Brasel K, De Smedt T, Maraskovsky E, et al. Mice lacking Flt3 ligand have deficient hematopoiesis affecting hematopoietic progenitor cells, dendritic cells, and natural killer cells. Blood (2000) 95:3489-97.
-
(2000)
Blood
, vol.95
, pp. 3489-3497
-
-
McKenna, H.J.1
Stocking, K.L.2
Miller, R.E.3
Brasel, K.4
De Smedt, T.5
Maraskovsky, E.6
-
26
-
-
24744461881
-
Inhibition of natural type I IFN-producing and dendritic cell development by a small molecule receptor tyrosine kinase inhibitor with Flt3 affinity
-
Tussiwand R, Onai N, Mazzucchelli L, Manz MG. Inhibition of natural type I IFN-producing and dendritic cell development by a small molecule receptor tyrosine kinase inhibitor with Flt3 affinity. J Immunol (2005) 175:3674-80. doi:10.4049/jimmunol.175.6.3674.
-
(2005)
J Immunol
, vol.175
, pp. 3674-3680
-
-
Tussiwand, R.1
Onai, N.2
Mazzucchelli, L.3
Manz, M.G.4
-
27
-
-
0037443489
-
Conditional expression of murine Flt3 ligand leads to expansion of multiple dendritic cell subsets in peripheral blood and tissues of transgenic mice
-
Manfra DJ, Chen SC, Jensen KK, Fine JS, Wiekowski MT, Lira SA. Conditional expression of murine Flt3 ligand leads to expansion of multiple dendritic cell subsets in peripheral blood and tissues of transgenic mice. J Immunol (2003) 170:2843-52. doi:10.4049/jimmunol.170.6.2843.
-
(2003)
J Immunol
, vol.170
, pp. 2843-2852
-
-
Manfra, D.J.1
Chen, S.C.2
Jensen, K.K.3
Fine, J.S.4
Wiekowski, M.T.5
Lira, S.A.6
-
28
-
-
44049097818
-
The receptor tyrosine kinase Flt3 is required for dendritic cell development in peripheral lymphoid tissues
-
Waskow C, Liu K, Darrasse-Jeze G, Guermonprez P, Ginhoux F, Merad M, et al. The receptor tyrosine kinase Flt3 is required for dendritic cell development in peripheral lymphoid tissues. Nat Immunol (2008) 9:676-83. doi:10.1038/ni.1615.
-
(2008)
Nat Immunol
, vol.9
, pp. 676-683
-
-
Waskow, C.1
Liu, K.2
Darrasse-Jeze, G.3
Guermonprez, P.4
Ginhoux, F.5
Merad, M.6
-
29
-
-
0347480225
-
STAT3 is required for Flt3L-dependent dendritic cell differentiation
-
Laouar Y, Welte T, Fu XY, Flavell RA. STAT3 is required for Flt3L-dependent dendritic cell differentiation. Immunity (2003) 19:903-12. doi:10.1016/S1074-7613(03)00332-7.
-
(2003)
Immunity
, vol.19
, pp. 903-912
-
-
Laouar, Y.1
Welte, T.2
Fu, X.Y.3
Flavell, R.A.4
-
30
-
-
31344441376
-
Activation of the Flt3 signal transduction cascade rescues and enhances type I interferon-producing and dendritic cell development 1
-
Onai N, Obata-Onai A, Tussiwand R, Lanzavecchia A, Manz MG. Activation of the Flt3 signal transduction cascade rescues and enhances type I interferon-producing and dendritic cell development 1. J Exp Med (2006) 203:227-38. doi:10.1084/jem.20051645.
-
(2006)
J Exp Med
, vol.203
, pp. 227-238
-
-
Onai, N.1
Obata-Onai, A.2
Tussiwand, R.3
Lanzavecchia, A.4
Manz, M.G.5
-
31
-
-
20444466497
-
The transcriptional repressor Gfi1 controls STAT3-dependent dendritic cell development and function
-
Rathinam C, Geffers R, Yucel R, Buer J, Welte K, Moroy T, et al. The transcriptional repressor Gfi1 controls STAT3-dependent dendritic cell development and function. Immunity (2005) 22:717-28. doi:10.1016/j.immuni.2005.04.007.
-
(2005)
Immunity
, vol.22
, pp. 717-728
-
-
Rathinam, C.1
Geffers, R.2
Yucel, R.3
Buer, J.4
Welte, K.5
Moroy, T.6
-
32
-
-
7244231429
-
Gfi-1 restricts proliferation and preserves functional integrity of-haematopoietic stem cells
-
Hock H, Hamblen MJ, Rooke HM, Schindler JW, Saleque S, Fujiwara Y, et al. Gfi-1 restricts proliferation and preserves functional integrity of-haematopoietic stem cells. Nature (2004) 431:1002-7. doi:10.1038/nature02994.
-
(2004)
Nature
, vol.431
, pp. 1002-1007
-
-
Hock, H.1
Hamblen, M.J.2
Rooke, H.M.3
Schindler, J.W.4
Saleque, S.5
Fujiwara, Y.6
-
33
-
-
85047697279
-
High levels of the onco-protein Gfi-1 accelerate T-cell proliferation and inhibit activation induced T-cell death in Jurkat T-cells
-
Karsunky H, Mende I, Schmidt T, Moroy T. High levels of the onco-protein Gfi-1 accelerate T-cell proliferation and inhibit activation induced T-cell death in Jurkat T-cells. Oncogene (2002) 21:1571-9. doi:10.1038/sj.onc.1205216.
-
(2002)
Oncogene
, vol.21
, pp. 1571-1579
-
-
Karsunky, H.1
Mende, I.2
Schmidt, T.3
Moroy, T.4
-
34
-
-
17644443312
-
The transcriptional repressor Gfi1 affects development of early, uncommitted c-Kit+ T cell progenitors and CD4/CD8 lineage decision in the thymus
-
Yucel R, Karsunky H, Klein-Hitpass L, Moroy T. The transcriptional repressor Gfi1 affects development of early, uncommitted c-Kit+ T cell progenitors and CD4/CD8 lineage decision in the thymus. J Exp Med (2003) 197:831-44. doi:10.1084/jem.20021417.
-
(2003)
J Exp Med
, vol.197
, pp. 831-844
-
-
Yucel, R.1
Karsunky, H.2
Klein-Hitpass, L.3
Moroy, T.4
-
35
-
-
84907056140
-
Gfi-1 regulates the erythroid transcription factor network through Id2 repression in murine hematopoietic progenitor cells
-
Kim W, Klarmann KD, Keller JR. Gfi-1 regulates the erythroid transcription factor network through Id2 repression in murine hematopoietic progenitor cells. Blood (2014) 124:1586-96. doi:10.1182/blood-2014-02-556522.
-
(2014)
Blood
, vol.124
, pp. 1586-1596
-
-
Kim, W.1
Klarmann, K.D.2
Keller, J.R.3
-
36
-
-
77956496727
-
Repression of Id2 expression by Gfi-1 is required for B-cell and myeloid development
-
Li H, Ji M, Klarmann KD, Keller JR. Repression of Id2 expression by Gfi-1 is required for B-cell and myeloid development. Blood (2010) 116:1060-9. doi:10.1182/blood-2009-11-255075.
-
(2010)
Blood
, vol.116
, pp. 1060-1069
-
-
Li, H.1
Ji, M.2
Klarmann, K.D.3
Keller, J.R.4
-
37
-
-
0029097145
-
Targeted disruption of the flk2/flt3 gene leads to deficiencies in primitive hematopoietic progenitors
-
Mackarehtschian K, Hardin JD, Moore KA, Boast S, GoffSP, Lemischka IR. Targeted disruption of the flk2/flt3 gene leads to deficiencies in primitive hematopoietic progenitors. Immunity (1995) 3:147-61. doi:10.1016/1074-7613(95)90167-1.
-
(1995)
Immunity
, vol.3
, pp. 147-161
-
-
Mackarehtschian, K.1
Hardin, J.D.2
Moore, K.A.3
Boast, S.4
Goff, S.P.5
Lemischka, I.R.6
-
38
-
-
20244387299
-
Identification of Flt3+ lympho-myeloid stem cells lacking erythro-megakaryocytic potential a revised road map for adult blood lineage commitment
-
Adolfsson J, Mansson R, Buza-Vidas N, Hultquist A, Liuba K, Jensen CT, et al. Identification of Flt3+ lympho-myeloid stem cells lacking erythro-megakaryocytic potential a revised road map for adult blood lineage commitment. Cell (2005) 121:295-306. doi:10.1016/j.cell.2005.02.013.
-
(2005)
Cell
, vol.121
, pp. 295-306
-
-
Adolfsson, J.1
Mansson, R.2
Buza-Vidas, N.3
Hultquist, A.4
Liuba, K.5
Jensen, C.T.6
-
39
-
-
84899486799
-
The STAT3-binding long noncoding RNA lnc-DC controls human dendritic cell differentiation
-
Wang P, Xue Y, Han Y, Lin L, Wu C, Xu S, et al. The STAT3-binding long noncoding RNA lnc-DC controls human dendritic cell differentiation. Science (2014) 344:310-3. doi:10.1126/science.1251456.
-
(2014)
Science
, vol.344
, pp. 310-313
-
-
Wang, P.1
Xue, Y.2
Han, Y.3
Lin, L.4
Wu, C.5
Xu, S.6
-
40
-
-
50349102793
-
Wdnm1-like, a new adipokine with a role in MMP-2 activation
-
Wu Y, Smas CM. Wdnm1-like, a new adipokine with a role in MMP-2 activation. Am J Physiol Endocrinol Metab (2008) 295:E205-15. doi:10.1152/ajpendo.90316.2008.
-
(2008)
Am J Physiol Endocrinol Metab
, vol.295
, pp. E205-E215
-
-
Wu, Y.1
Smas, C.M.2
-
41
-
-
14044270784
-
IFN regulatory factor-4 and-8 govern dendritic cell subset development and their functional diversity
-
Tamura T, Tailor P, Yamaoka K, Kong HJ, Tsujimura H, O'Shea JJ, et al. IFN regulatory factor-4 and-8 govern dendritic cell subset development and their functional diversity. J Immunol (2005) 174:2573-81. doi:10.4049/jimmunol.174.5.2573.
-
(2005)
J Immunol
, vol.174
, pp. 2573-2581
-
-
Tamura, T.1
Tailor, P.2
Yamaoka, K.3
Kong, H.J.4
Tsujimura, H.5
O'Shea, J.J.6
-
42
-
-
2942691394
-
Critical roles of interferon regulatory factor 4 in CD11bhighCD8alpha-dendritic cell development
-
Suzuki S, Honma K, Matsuyama T, Suzuki K, Toriyama K, Akitoyo I, et al. Critical roles of interferon regulatory factor 4 in CD11bhighCD8alpha-dendritic cell development. Proc Natl Acad Sci U S A (2004) 101:8981-6. doi:10.1073/pnas.0402139101.
-
(2004)
Proc Natl Acad Sci U S A
, vol.101
, pp. 8981-8986
-
-
Suzuki, S.1
Honma, K.2
Matsuyama, T.3
Suzuki, K.4
Toriyama, K.5
Akitoyo, I.6
-
43
-
-
80053926066
-
Shared and distinct functions of the transcription factors IRF4 and IRF8 in myeloid cell development
-
Yamamoto M, Kato T, Hotta C, Nishiyama A, Kurotaki D, Yoshinari M, et al. Shared and distinct functions of the transcription factors IRF4 and IRF8 in myeloid cell development. PLoS One (2011) 6:e25812. doi:10.1371/journal.pone.0025812.
-
(2011)
PLoS One
, vol.6
-
-
Yamamoto, M.1
Kato, T.2
Hotta, C.3
Nishiyama, A.4
Kurotaki, D.5
Yoshinari, M.6
-
44
-
-
84890918547
-
Transcription factor IRF4 drives dendritic cells to promote Th2 differentiation
-
Williams JW, Tjota MY, Clay BS, Vander LB, Bandukwala HS, Hrusch CL, et al. Transcription factor IRF4 drives dendritic cells to promote Th2 differentiation. Nat Commun (2013) 4:2990. doi:10.1038/ncomms3990.
-
(2013)
Nat Commun
, vol.4
, pp. 2990
-
-
Williams, J.W.1
Tjota, M.Y.2
Clay, B.S.3
Vander, L.B.4
Bandukwala, H.S.5
Hrusch, C.L.6
-
45
-
-
84869802361
-
The signal transducers STAT5 and STAT3 control expression of Id2 and E2-2 during dendritic cell development
-
Li HS, Yang CY, Nallaparaju KC, Zhang H, Liu YJ, Goldrath AW, et al. The signal transducers STAT5 and STAT3 control expression of Id2 and E2-2 during dendritic cell development. Blood (2012) 120:4363-73. doi:10.1182/blood-2012-07-441311.
-
(2012)
Blood
, vol.120
, pp. 4363-4373
-
-
Li, H.S.1
Yang, C.Y.2
Nallaparaju, K.C.3
Zhang, H.4
Liu, Y.J.5
Goldrath, A.W.6
-
46
-
-
79960050089
-
Id2 expression delineates differential checkpoints in the genetic program of CD8alpha+ and CD103+ dendritic cell lineages
-
Jackson JT, Hu Y, Liu R, Masson F, D'Amico A, Carotta S, et al. Id2 expression delineates differential checkpoints in the genetic program of CD8alpha+ and CD103+ dendritic cell lineages. EMBO J (2011) 30:2690-704. doi:10.1038/emboj.2011.163.
-
(2011)
EMBO J
, vol.30
, pp. 2690-2704
-
-
Jackson, J.T.1
Hu, Y.2
Liu, R.3
Masson, F.4
D'Amico, A.5
Carotta, S.6
-
47
-
-
55249123663
-
Development of human plasmacytoid dendritic cells depends on the combined action of the basic helix-loop-helix factor E2-2 and the Ets factor Spi-B
-
Nagasawa M, Schmidlin H, Hazekamp MG, Schotte R, Blom B. Development of human plasmacytoid dendritic cells depends on the combined action of the basic helix-loop-helix factor E2-2 and the Ets factor Spi-B. Eur J Immunol (2008) 38:2389-400. doi:10.1002/eji.200838470.
-
(2008)
Eur J Immunol
, vol.38
, pp. 2389-2400
-
-
Nagasawa, M.1
Schmidlin, H.2
Hazekamp, M.G.3
Schotte, R.4
Blom, B.5
-
48
-
-
52949106528
-
Transcription factor E2-2 is an essential and specific regulator of plasmacytoid dendritic cell development 1
-
Cisse B, Caton ML, Lehner M, Maeda T, Scheu S, Locksley R, et al. Transcription factor E2-2 is an essential and specific regulator of plasmacytoid dendritic cell development 1. Cell (2008) 135:37-48. doi:10.1016/j.cell.2008.09.016.
-
(2008)
Cell
, vol.135
, pp. 37-48
-
-
Cisse, B.1
Caton, M.L.2
Lehner, M.3
Maeda, T.4
Scheu, S.5
Locksley, R.6
-
49
-
-
0034684654
-
Id2 and Id3 inhibit development of CD34(+) stem cells into predendritic cell (pre-DC)2 but not into pre-DC1. Evidence for a lymphoid origin of pre-DC2
-
Spits H, Couwenberg F, Bakker AQ, Weijer K, Uittenbogaart CH. Id2 and Id3 inhibit development of CD34(+) stem cells into predendritic cell (pre-DC)2 but not into pre-DC1. Evidence for a lymphoid origin of pre-DC2. J Exp Med (2000) 192:1775-84. doi:10.1084/jem.192.12.1775.
-
(2000)
J Exp Med
, vol.192
, pp. 1775-1784
-
-
Spits, H.1
Couwenberg, F.2
Bakker, A.Q.3
Weijer, K.4
Uittenbogaart, C.H.5
-
50
-
-
0037386339
-
Transcriptional profiling identifies Id2 function in dendritic cell development
-
Hacker C, Kirsch RD, Ju XS, Hieronymus T, Gust TC, Kuhl C, et al. Transcriptional profiling identifies Id2 function in dendritic cell development. Nat Immunol (2003) 4:380-6. doi:10.1038/ni903.
-
(2003)
Nat Immunol
, vol.4
, pp. 380-386
-
-
Hacker, C.1
Kirsch, R.D.2
Ju, X.S.3
Hieronymus, T.4
Gust, T.C.5
Kuhl, C.6
-
51
-
-
78650178058
-
Continuous expression of the transcription factor e2-2 maintains the cell fate of mature plasmacytoid dendritic cells
-
Ghosh HS, Cisse B, Bunin A, Lewis KL, Reizis B. Continuous expression of the transcription factor e2-2 maintains the cell fate of mature plasmacytoid dendritic cells. Immunity (2010) 33:905-16. doi:10.1016/j.immuni.2010.11.023.
-
(2010)
Immunity
, vol.33
, pp. 905-916
-
-
Ghosh, H.S.1
Cisse, B.2
Bunin, A.3
Lewis, K.L.4
Reizis, B.5
-
52
-
-
84905093427
-
ETO family protein Mtg16 regulates the balance of dendritic cell subsets by repressing Id2
-
Ghosh HS, Ceribelli M, Matos I, Lazarovici A, Bussemaker HJ, Lasorella A, et al. ETO family protein Mtg16 regulates the balance of dendritic cell subsets by repressing Id2. J Exp Med (2014) 211:1623-35. doi:10.1084/jem.20132121.
-
(2014)
J Exp Med
, vol.211
, pp. 1623-1635
-
-
Ghosh, H.S.1
Ceribelli, M.2
Matos, I.3
Lazarovici, A.4
Bussemaker, H.J.5
Lasorella, A.6
-
53
-
-
79959413238
-
NFIL3/E4BP4 is a key transcription factor for CD8{alpha}+ dendritic cell development
-
Kashiwada M, Pham NL, Pewe LL, Harty JT, Rothman PB. NFIL3/E4BP4 is a key transcription factor for CD8{alpha}+ dendritic cell development. Blood (2011) 117:6193-7. doi:10.1182/blood-2010-07-295873.
-
(2011)
Blood
, vol.117
, pp. 6193-6197
-
-
Kashiwada, M.1
Pham, N.L.2
Pewe, L.L.3
Harty, J.T.4
Rothman, P.B.5
-
54
-
-
84878177936
-
A clonogenic progenitor with prominent plasmacytoid dendritic cell developmental potential
-
Onai N, Kurabayashi K, Hosoi-Amaike M, Toyama-Sorimachi N, Matsushima K, Inaba K, et al. A clonogenic progenitor with prominent plasmacytoid dendritic cell developmental potential. Immunity (2013) 38:943-57. doi:10.1016/j.immuni.2013.04.006.
-
(2013)
Immunity
, vol.38
, pp. 943-957
-
-
Onai, N.1
Kurabayashi, K.2
Hosoi-Amaike, M.3
Toyama-Sorimachi, N.4
Matsushima, K.5
Inaba, K.6
-
55
-
-
65249089638
-
In vivo analysis of dendritic cell development and homeostasis
-
Liu K, Victora GD, Schwickert TA, Guermonprez P, Meredith MM, Yao K, et al. In vivo analysis of dendritic cell development and homeostasis. Science (2009) 324:392-7. doi:10.1126/science.1170540.
-
(2009)
Science
, vol.324
, pp. 392-397
-
-
Liu, K.1
Victora, G.D.2
Schwickert, T.A.3
Guermonprez, P.4
Meredith, M.M.5
Yao, K.6
-
56
-
-
84920965751
-
IRF8 inhibits C/EBPalpha activity to restrain mononuclear phagocyte progenitors from differentiating into neutrophils
-
Kurotaki D, Yamamoto M, Nishiyama A, Uno K, Ban T, Ichino M, et al. IRF8 inhibits C/EBPalpha activity to restrain mononuclear phagocyte progenitors from differentiating into neutrophils. Nat Commun (2014) 5:4978. doi:10.1038/ncomms5978.
-
(2014)
Nat Commun
, vol.5
, pp. 4978
-
-
Kurotaki, D.1
Yamamoto, M.2
Nishiyama, A.3
Uno, K.4
Ban, T.5
Ichino, M.6
-
57
-
-
84881236410
-
Positive feedback between PU.1 and the cell cycle controls myeloid differentiation
-
Kueh HY, Champhekar A, Nutt SL, Elowitz MB, Rothenberg EV. Positive feedback between PU.1 and the cell cycle controls myeloid differentiation. Science (2013) 341:670-3. doi:10.1126/science.1240831.
-
(2013)
Science
, vol.341
, pp. 670-673
-
-
Kueh, H.Y.1
Champhekar, A.2
Nutt, S.L.3
Elowitz, M.B.4
Rothenberg, E.V.5
-
58
-
-
18444389451
-
Recruitment of stem and progenitor cells from the bone marrow niche requires MMP-9 mediated release of kit-ligand
-
Heissig B, Hattori K, Dias S, Friedrich M, Ferris B, Hackett NR, et al. Recruitment of stem and progenitor cells from the bone marrow niche requires MMP-9 mediated release of kit-ligand. Cell (2002) 109:625-37. doi:10.1016/S0092-8674(02)00754-7.
-
(2002)
Cell
, vol.109
, pp. 625-637
-
-
Heissig, B.1
Hattori, K.2
Dias, S.3
Friedrich, M.4
Ferris, B.5
Hackett, N.R.6
-
59
-
-
21044458122
-
Cutting edge: generation of splenic CD8+ and CD8-dendritic cell equivalents in Fms-like tyrosine kinase 3 ligand bone marrow cultures
-
Naik SH, Proietto AI, Wilson NS, Dakic A, Schnorrer P, Fuchsberger M, et al. Cutting edge: generation of splenic CD8+ and CD8-dendritic cell equivalents in Fms-like tyrosine kinase 3 ligand bone marrow cultures. J Immunol (2005) 174:6592-7. doi:10.4049/jimmunol.174.11.6592.
-
(2005)
J Immunol
, vol.174
, pp. 6592-6597
-
-
Naik, S.H.1
Proietto, A.I.2
Wilson, N.S.3
Dakic, A.4
Schnorrer, P.5
Fuchsberger, M.6
-
60
-
-
33744473294
-
Intrasplenic steady-state dendritic cell precursors that are distinct from monocytes
-
Naik SH, Metcalf D, van Nieuwenhuijze A, Wicks I, Wu L, O'Keeffe M, et al. Intrasplenic steady-state dendritic cell precursors that are distinct from monocytes. Nat Immunol (2006) 7:663-71. doi:10.1038/ni1340.
-
(2006)
Nat Immunol
, vol.7
, pp. 663-671
-
-
Naik, S.H.1
Metcalf, D.2
van Nieuwenhuijze, A.3
Wicks, I.4
Wu, L.5
O'Keeffe, M.6
-
61
-
-
34249085336
-
Origin of dendritic cells in peripheral lymphoid organs of mice
-
Liu K, Waskow C, Liu X, Yao K, Hoh J, Nussenzweig M. Origin of dendritic cells in peripheral lymphoid organs of mice. Nat Immunol (2007) 8:578-83. doi:10.1038/ni1462.
-
(2007)
Nat Immunol
, vol.8
, pp. 578-583
-
-
Liu, K.1
Waskow, C.2
Liu, X.3
Yao, K.4
Hoh, J.5
Nussenzweig, M.6
-
62
-
-
84931406064
-
Batf3 maintains autoactivation of Irf8 for commitment of a CD8alpha(+) conventional DC clonogenic progenitor
-
Grajales-Reyes GE, Iwata A, Albring J, Wu X, Tussiwand R, Kc W, et al. Batf3 maintains autoactivation of Irf8 for commitment of a CD8alpha(+) conventional DC clonogenic progenitor. Nat Immunol (2015) 16:708-17. doi:10.1038/ni.3197.
-
(2015)
Nat Immunol
, vol.16
, pp. 708-717
-
-
Grajales-Reyes, G.E.1
Iwata, A.2
Albring, J.3
Wu, X.4
Tussiwand, R.5
Kc, W.6
-
63
-
-
84931394611
-
Identification of cDC1-and cDC2-committed DC progenitors reveals early lineage priming at the common DC progenitor stage in the bone marrow
-
Schlitzer A, Sivakamasundari V, Chen J, Sumatoh HR, Schreuder J, Lum J, et al. Identification of cDC1-and cDC2-committed DC progenitors reveals early lineage priming at the common DC progenitor stage in the bone marrow. Nat Immunol (2015) 16:718-28. doi:10.1038/ni.3200.
-
(2015)
Nat Immunol
, vol.16
, pp. 718-728
-
-
Schlitzer, A.1
Sivakamasundari, V.2
Chen, J.3
Sumatoh, H.R.4
Schreuder, J.5
Lum, J.6
-
64
-
-
84866370825
-
Zinc finger transcription factor zDC is a negative regulator required to prevent activation of classical dendritic cells in the steady state
-
Meredith MM, Liu K, Kamphorst AO, Idoyaga J, Yamane A, Guermonprez P, et al. Zinc finger transcription factor zDC is a negative regulator required to prevent activation of classical dendritic cells in the steady state. J Exp Med (2012) 209:1583-93. doi:10.1084/jem.20121003.
-
(2012)
J Exp Med
, vol.209
, pp. 1583-1593
-
-
Meredith, M.M.1
Liu, K.2
Kamphorst, A.O.3
Idoyaga, J.4
Yamane, A.5
Guermonprez, P.6
-
65
-
-
84864325308
-
Classical dendritic cells as a unique immune cell lineage
-
Reizis B. Classical dendritic cells as a unique immune cell lineage. J Exp Med (2012) 209:1053-6. doi:10.1084/jem.20121038.
-
(2012)
J Exp Med
, vol.209
, pp. 1053-1056
-
-
Reizis, B.1
-
66
-
-
84864297838
-
Zbtb46 expression distinguishes classical dendritic cells and their committed progenitors from other immune lineages
-
Satpathy AT, Kc W, Albring JC, Edelson BT, Kretzer NM, Bhattacharya D, et al. Zbtb46 expression distinguishes classical dendritic cells and their committed progenitors from other immune lineages. J Exp Med (2012) 209:1135-52. doi:10.1084/jem.20120030.
-
(2012)
J Exp Med
, vol.209
, pp. 1135-1152
-
-
Satpathy, A.T.1
Kc, W.2
Albring, J.C.3
Edelson, B.T.4
Kretzer, N.M.5
Bhattacharya, D.6
-
67
-
-
84882786445
-
Genetic tracing via DNGR-1 expression history defines dendritic cells as a hematopoietic lineage
-
Schraml BU, van Blijswijk J, Zelenay S, Whitney PG, Filby A, Acton SE, et al. Genetic tracing via DNGR-1 expression history defines dendritic cells as a hematopoietic lineage. Cell (2013) 154:843-58. doi:10.1016/j.cell.2013.07.014.
-
(2013)
Cell
, vol.154
, pp. 843-858
-
-
Schraml, B.U.1
van Blijswijk, J.2
Zelenay, S.3
Whitney, P.G.4
Filby, A.5
Acton, S.E.6
-
68
-
-
56449097442
-
Batf3 deficiency reveals a critical role for CD8alpha+ dendritic cells in cytotoxic T cell immunity
-
Hildner K, Edelson BT, Purtha WE, Diamond M, Matsushita H, Kohyama M, et al. Batf3 deficiency reveals a critical role for CD8alpha+ dendritic cells in cytotoxic T cell immunity. Science (2008) 322:1097-100. doi:10.1126/science.1164206.
-
(2008)
Science
, vol.322
, pp. 1097-1100
-
-
Hildner, K.1
Edelson, B.T.2
Purtha, W.E.3
Diamond, M.4
Matsushita, H.5
Kohyama, M.6
-
69
-
-
77349083495
-
Peripheral CD103+ dendritic cells form a unified subset developmentally related to CD8alpha+ conventional dendritic cells
-
Edelson BT, Kc W, Juang R, Kohyama M, Benoit LA, Klekotka PA, et al. Peripheral CD103+ dendritic cells form a unified subset developmentally related to CD8alpha+ conventional dendritic cells. J Exp Med (2010) 207:823-36. doi:10.1084/jem.20091627.
-
(2010)
J Exp Med
, vol.207
, pp. 823-836
-
-
Edelson, B.T.1
Kc, W.2
Juang, R.3
Kohyama, M.4
Benoit, L.A.5
Klekotka, P.A.6
-
70
-
-
73949101833
-
The origin and development of nonlymphoid tissue CD103+ DCs
-
Ginhoux F, Liu K, Helft J, Bogunovic M, Greter M, Hashimoto D, et al. The origin and development of nonlymphoid tissue CD103+ DCs. J Exp Med (2009) 206:3115-30. doi:10.1084/jem.20091756.
-
(2009)
J Exp Med
, vol.206
, pp. 3115-3130
-
-
Ginhoux, F.1
Liu, K.2
Helft, J.3
Bogunovic, M.4
Greter, M.5
Hashimoto, D.6
-
71
-
-
84876469090
-
CD8alpha+ DCs can be induced in the absence of transcription factors Id2, Nfil3 and Batf3
-
Seillet C, Jackson JT, Markey KA, Hill GR, Macdonald KP, Nutt SL, et al. CD8alpha+ DCs can be induced in the absence of transcription factors Id2, Nfil3 and Batf3. Blood (2013) 121:1574-83. doi:10.1182/blood-2012-07-445650.
-
(2013)
Blood
, vol.121
, pp. 1574-1583
-
-
Seillet, C.1
Jackson, J.T.2
Markey, K.A.3
Hill, G.R.4
Macdonald, K.P.5
Nutt, S.L.6
-
72
-
-
84867884822
-
Compensatory dendritic cell development mediated by BATF-IRF interactions
-
Tussiwand R, Lee WL, Murphy TL, Mashayekhi M, Wumesh KC, Albring JC, et al. Compensatory dendritic cell development mediated by BATF-IRF interactions. Nature (2012) 490:502-7. doi:10.1038/nature11531.
-
(2012)
Nature
, vol.490
, pp. 502-507
-
-
Tussiwand, R.1
Lee, W.L.2
Murphy, T.L.3
Mashayekhi, M.4
Wumesh, K.C.5
Albring, J.C.6
-
73
-
-
84878167904
-
IRF4 transcription-factor-dependent CD103(+)CD11b(+) dendritic cells drive mucosal T helper 17 cell differentiation
-
Persson EK, Uronen-Hansson H, Semmrich M, Rivollier A, Hagerbrand K, Marsal J, et al. IRF4 transcription-factor-dependent CD103(+)CD11b(+) dendritic cells drive mucosal T helper 17 cell differentiation. Immunity (2013) 38:958-69. doi:10.1016/j.immuni.2013.03.009.
-
(2013)
Immunity
, vol.38
, pp. 958-969
-
-
Persson, E.K.1
Uronen-Hansson, H.2
Semmrich, M.3
Rivollier, A.4
Hagerbrand, K.5
Marsal, J.6
-
74
-
-
84878191150
-
IRF4 transcription factor-dependent CD11b(+) dendritic cells in human and mouse control mucosal IL-17 cytokine responses
-
Schlitzer A, McGovern N, Teo P, Zelante T, Atarashi K, Low D, et al. IRF4 transcription factor-dependent CD11b(+) dendritic cells in human and mouse control mucosal IL-17 cytokine responses. Immunity (2013) 38:970-83. doi:10.1016/j.immuni.2013.04.011.
-
(2013)
Immunity
, vol.38
, pp. 970-983
-
-
Schlitzer, A.1
McGovern, N.2
Teo, P.3
Zelante, T.4
Atarashi, K.5
Low, D.6
-
75
-
-
84892815323
-
Transcriptional programming of dendritic cells for enhanced MHC class II antigen presentation
-
Vander LB, Khan AA, Hackney JA, Agrawal S, Lesch J, Zhou M, et al. Transcriptional programming of dendritic cells for enhanced MHC class II antigen presentation. Nat Immunol (2014) 15:161-7. doi:10.1038/ni.2795.
-
(2014)
Nat Immunol
, vol.15
, pp. 161-167
-
-
Vander, L.B.1
Khan, A.A.2
Hackney, J.A.3
Agrawal, S.4
Lesch, J.5
Zhou, M.6
-
76
-
-
84904258454
-
CD11b+ lung dendritic cells orchestrate Th2 immunity to Blomia tropicalis
-
Zhou Q, Ho AW, Schlitzer A, Tang Y, Wong KH, Wong FH, et al. CD11b+ lung dendritic cells orchestrate Th2 immunity to Blomia tropicalis. J Immunol (2014) 193:496-509. doi:10.4049/jimmunol.1303138.
-
(2014)
J Immunol
, vol.193
, pp. 496-509
-
-
Zhou, Q.1
Ho, A.W.2
Schlitzer, A.3
Tang, Y.4
Wong, K.H.5
Wong, F.H.6
-
77
-
-
84885778452
-
Control of T helper 2 responses by transcription factor IRF4-dependent dendritic cells
-
Gao Y, Nish SA, Jiang R, Hou L, Licona-Limon P, Weinstein JS, et al. Control of T helper 2 responses by transcription factor IRF4-dependent dendritic cells. Immunity (2013) 39:722-32. doi:10.1016/j.immuni.2013.08.028.
-
(2013)
Immunity
, vol.39
, pp. 722-732
-
-
Gao, Y.1
Nish, S.A.2
Jiang, R.3
Hou, L.4
Licona-Limon, P.5
Weinstein, J.S.6
-
78
-
-
84866527686
-
IRF4 promotes cutaneous dendritic cell migration to lymph nodes during homeostasis and inflammation
-
Bajana S, Roach K, Turner S, Paul J, Kovats S. IRF4 promotes cutaneous dendritic cell migration to lymph nodes during homeostasis and inflammation. J Immunol (2012) 189:3368-77. doi:10.4049/jimmunol.1102613.
-
(2012)
J Immunol
, vol.189
, pp. 3368-3377
-
-
Bajana, S.1
Roach, K.2
Turner, S.3
Paul, J.4
Kovats, S.5
-
79
-
-
0028952482
-
Expression of relB is required for the development of thymic medulla and dendritic cells
-
Burkly L, Hession C, Ogata L, Reilly C, Marconi LA, Olson D, et al. Expression of relB is required for the development of thymic medulla and dendritic cells. Nature (1995) 373:531-6. doi:10.1038/373531a0.
-
(1995)
Nature
, vol.373
, pp. 531-536
-
-
Burkly, L.1
Hession, C.2
Ogata, L.3
Reilly, C.4
Marconi, L.A.5
Olson, D.6
-
80
-
-
0001722505
-
RelB is essential for the development of myeloid-related CD8alpha-dendritic cells but not of lymphoid-related CD8alpha+ dendritic cells
-
Wu L, D'Amico A, Winkel KD, Suter M, Lo D, Shortman K. RelB is essential for the development of myeloid-related CD8alpha-dendritic cells but not of lymphoid-related CD8alpha+ dendritic cells. Immunity (1998) 9:839-47. doi:10.1016/S1074-7613(00)80649-4.
-
(1998)
Immunity
, vol.9
, pp. 839-847
-
-
Wu, L.1
D'Amico, A.2
Winkel, K.D.3
Suter, M.4
Lo, D.5
Shortman, K.6
-
81
-
-
34447275920
-
Notch-RBP-J signaling controls the homeostasis of CD8-dendritic cells in the spleen
-
Caton ML, Smith-Raska MR, Reizis B. Notch-RBP-J signaling controls the homeostasis of CD8-dendritic cells in the spleen. J Exp Med (2007) 204:1653-64. doi:10.1084/jem.20062648.
-
(2007)
J Exp Med
, vol.204
, pp. 1653-1664
-
-
Caton, M.L.1
Smith-Raska, M.R.2
Reizis, B.3
-
82
-
-
0344826106
-
Notch signaling is necessary but not sufficient for differentiation of dendritic cells
-
Cheng P, Nefedova Y, Miele L, Osborne BA, Gabrilovich D. Notch signaling is necessary but not sufficient for differentiation of dendritic cells. Blood (2003) 102:3980-8. doi:10.1182/blood-2003-04-1034.
-
(2003)
Blood
, vol.102
, pp. 3980-3988
-
-
Cheng, P.1
Nefedova, Y.2
Miele, L.3
Osborne, B.A.4
Gabrilovich, D.5
-
83
-
-
84883172356
-
Notch2-dependent classical dendritic cells orchestrate intestinal immunity to attaching-and-effacing bacterial pathogens
-
Satpathy AT, Briseno CG, Lee JS, Ng D, Manieri NA, Kc W, et al. Notch2-dependent classical dendritic cells orchestrate intestinal immunity to attaching-and-effacing bacterial pathogens. Nat Immunol (2013) 14:937-48. doi:10.1038/ni.2679.
-
(2013)
Nat Immunol
, vol.14
, pp. 937-948
-
-
Satpathy, A.T.1
Briseno, C.G.2
Lee, J.S.3
Ng, D.4
Manieri, N.A.5
Kc, W.6
-
84
-
-
84929661740
-
Klf4 expression in conventional dendritic cells is required for T helper 2 cell responses
-
Tussiwand R, Everts B, Grajales-Reyes GE, Kretzer NM, Iwata A, Bagaitkar J, et al. Klf4 expression in conventional dendritic cells is required for T helper 2 cell responses. Immunity (2015) 42:916-28. doi:10.1016/j.immuni.2015.04.017.
-
(2015)
Immunity
, vol.42
, pp. 916-928
-
-
Tussiwand, R.1
Everts, B.2
Grajales-Reyes, G.E.3
Kretzer, N.M.4
Iwata, A.5
Bagaitkar, J.6
-
85
-
-
84876493933
-
Essential role of the IRF8-KLF4 transcription factor cascade in murine monocyte differentiation
-
Kurotaki D, Osato N, Nishiyama A, Yamamoto M, Ban T, Sato H, et al. Essential role of the IRF8-KLF4 transcription factor cascade in murine monocyte differentiation. Blood (2013) 121:1839-49. doi:10.1182/blood-2012-06-437863.
-
(2013)
Blood
, vol.121
, pp. 1839-1849
-
-
Kurotaki, D.1
Osato, N.2
Nishiyama, A.3
Yamamoto, M.4
Ban, T.5
Sato, H.6
-
86
-
-
84885451725
-
Transcriptional reprogramming of CD11b+Esam(hi) dendritic cell identity and function by loss of Runx3
-
Dicken J, Mildner A, Leshkowitz D, Touw IP, Hantisteanu S, Jung S, et al. Transcriptional reprogramming of CD11b+Esam(hi) dendritic cell identity and function by loss of Runx3. PLoS One (2013) 8:e77490. doi:10.1371/journal.pone.0077490.
-
(2013)
PLoS One
, vol.8
-
-
Dicken, J.1
Mildner, A.2
Leshkowitz, D.3
Touw, I.P.4
Hantisteanu, S.5
Jung, S.6
-
87
-
-
84900454019
-
Runx1 and Cbfβ regulate the development of dendritic cell precursors by restricting granulocyte/macrophage lineages
-
Satpathy AT, Briseño CG, Cai X, Michael DG, Chou C, Hsiung S, et al. Runx1 and Cbfβ regulate the development of dendritic cell precursors by restricting granulocyte/macrophage lineages. Blood (2014) 123:2968-77. doi:10.1182/blood-2013-11-539643.
-
(2014)
Blood
, vol.123
, pp. 2968-2977
-
-
Satpathy, A.T.1
Briseño, C.G.2
Cai, X.3
Michael, D.G.4
Chou, C.5
Hsiung, S.6
-
88
-
-
0141678952
-
TRAF6 is a critical factor for dendritic cell maturation and development
-
Kobayashi T, Walsh PT, Walsh MC, Speirs KM, Chiffoleau E, King CG, et al. TRAF6 is a critical factor for dendritic cell maturation and development. Immunity (2003) 19:353-63. doi:10.1016/S1074-7613(03)00230-9.
-
(2003)
Immunity
, vol.19
, pp. 353-363
-
-
Kobayashi, T.1
Walsh, P.T.2
Walsh, M.C.3
Speirs, K.M.4
Chiffoleau, E.5
King, C.G.6
-
89
-
-
70349882120
-
Unbiased reconstruction of a mammalian transcriptional network mediating pathogen responses
-
Amit I, Garber M, Chevrier N, Leite AP, Donner Y, Eisenhaure T, et al. Unbiased reconstruction of a mammalian transcriptional network mediating pathogen responses. Science (2009) 326:257-63. doi:10.1126/science.1179050.
-
(2009)
Science
, vol.326
, pp. 257-263
-
-
Amit, I.1
Garber, M.2
Chevrier, N.3
Leite, A.P.4
Donner, Y.5
Eisenhaure, T.6
-
90
-
-
84893905629
-
Massively parallel single-cell RNA-seq for marker-free decomposition of tissues into cell types
-
Jaitin DA, Kenigsberg E, Keren-Shaul H, Elefant N, Paul F, Zaretsky I, et al. Massively parallel single-cell RNA-seq for marker-free decomposition of tissues into cell types. Science (2014) 343:776-9. doi:10.1126/science.1247651.
-
(2014)
Science
, vol.343
, pp. 776-779
-
-
Jaitin, D.A.1
Kenigsberg, E.2
Keren-Shaul, H.3
Elefant, N.4
Paul, F.5
Zaretsky, I.6
-
91
-
-
84873602003
-
Mononuclear phagocyte miRNome analysis identifies miR-142 as critical regulator of murine dendritic cell homeostasis
-
Mildner A, Chapnik E, Manor O, Yona S, Kim KW, Aychek T, et al. Mononuclear phagocyte miRNome analysis identifies miR-142 as critical regulator of murine dendritic cell homeostasis. Blood (2013) 121:1016-27. doi:10.1182/blood-2012-07-445999.
-
(2013)
Blood
, vol.121
, pp. 1016-1027
-
-
Mildner, A.1
Chapnik, E.2
Manor, O.3
Yona, S.4
Kim, K.W.5
Aychek, T.6
-
92
-
-
84900008000
-
Plasticity in the transcriptional and epigenetic circuits regulating dendritic cell lineage specification and function
-
Paul F, Amit I. Plasticity in the transcriptional and epigenetic circuits regulating dendritic cell lineage specification and function. Curr Opin Immunol (2014) 30:1-8. doi:10.1016/j.coi.2014.04.004.
-
(2014)
Curr Opin Immunol
, vol.30
, pp. 1-8
-
-
Paul, F.1
Amit, I.2
-
93
-
-
81955164775
-
Notch2 receptor signaling controls functional differentiation of dendritic cells in the spleen and intestine
-
Lewis KL, Caton ML, Bogunovic M, Greter M, Grajkowska LT, Ng D, et al. Notch2 receptor signaling controls functional differentiation of dendritic cells in the spleen and intestine. Immunity (2011) 35:780-91. doi:10.1016/j.immuni.2011.08.013.
-
(2011)
Immunity
, vol.35
, pp. 780-791
-
-
Lewis, K.L.1
Caton, M.L.2
Bogunovic, M.3
Greter, M.4
Grajkowska, L.T.5
Ng, D.6
-
94
-
-
84890987173
-
Comparative transcriptional and functional profiling defines conserved programs of intestinal DC differentiation in humans and mice
-
Watchmaker PB, Lahl K, Lee M, Baumjohann D, Morton J, Kim SJ, et al. Comparative transcriptional and functional profiling defines conserved programs of intestinal DC differentiation in humans and mice. Nat Immunol (2014) 15:98-108. doi:10.1038/ni.2768.
-
(2014)
Nat Immunol
, vol.15
, pp. 98-108
-
-
Watchmaker, P.B.1
Lahl, K.2
Lee, M.3
Baumjohann, D.4
Morton, J.5
Kim, S.J.6
-
95
-
-
84908507825
-
Molecular control of monocyte development
-
Terry RL, Miller SD. Molecular control of monocyte development. Cell Immunol (2014) 291:16-21. doi:10.1016/j.cellimm.2014.02.008.
-
(2014)
Cell Immunol
, vol.291
, pp. 16-21
-
-
Terry, R.L.1
Miller, S.D.2
-
96
-
-
35348875999
-
Transcriptional control of granulocyte and monocyte development
-
Friedman AD. Transcriptional control of granulocyte and monocyte development. Oncogene (2007) 26:6816-28. doi:10.1038/sj.onc.1210764.
-
(2007)
Oncogene
, vol.26
, pp. 6816-6828
-
-
Friedman, A.D.1
-
97
-
-
84880838451
-
Origin of monocytes and macrophages in a committed progenitor
-
Hettinger J, Richards DM, Hansson J, Barra MM, Joschko AC, Krijgsveld J, et al. Origin of monocytes and macrophages in a committed progenitor. Nat Immunol (2013) 14:821-30. doi:10.1038/ni.2638.
-
(2013)
Nat Immunol
, vol.14
, pp. 821-830
-
-
Hettinger, J.1
Richards, D.M.2
Hansson, J.3
Barra, M.M.4
Joschko, A.C.5
Krijgsveld, J.6
-
98
-
-
84859508307
-
A lineage of myeloid cells independent of Myb and hematopoietic stem cells
-
Schulz C, Gomez PE, Chorro L, Szabo-Rogers H, Cagnard N, Kierdorf K, et al. A lineage of myeloid cells independent of Myb and hematopoietic stem cells. Science (2012) 336:86-90. doi:10.1126/science.1219179.
-
(2012)
Science
, vol.336
, pp. 86-90
-
-
Schulz, C.1
Gomez, P.E.2
Chorro, L.3
Szabo-Rogers, H.4
Cagnard, N.5
Kierdorf, K.6
-
99
-
-
78149360132
-
Fate mapping analysis reveals that adult microglia derive from primitive macrophages
-
Ginhoux F, Greter M, Leboeuf M, Nandi S, See P, Gokhan S, et al. Fate mapping analysis reveals that adult microglia derive from primitive macrophages. Science (2010) 330:841-5. doi:10.1126/science.1194637.
-
(2010)
Science
, vol.330
, pp. 841-845
-
-
Ginhoux, F.1
Greter, M.2
Leboeuf, M.3
Nandi, S.4
See, P.5
Gokhan, S.6
-
100
-
-
76249095169
-
Development of monocytes, macrophages, and dendritic cells
-
Geissmann F, Manz MG, Jung S, Sieweke MH, Merad M, Ley K. Development of monocytes, macrophages, and dendritic cells. Science (2010) 327:656-61. doi:10.1126/science.1178331.
-
(2010)
Science
, vol.327
, pp. 656-661
-
-
Geissmann, F.1
Manz, M.G.2
Jung, S.3
Sieweke, M.H.4
Merad, M.5
Ley, K.6
-
101
-
-
84892450644
-
Embryonic and adult-derived resident cardiac macrophages are maintained through distinct mechanisms at steady state and during inflammation
-
Epelman S, Lavine KJ, Beaudin AE, Sojka DK, Carrero JA, Calderon B, et al. Embryonic and adult-derived resident cardiac macrophages are maintained through distinct mechanisms at steady state and during inflammation. Immunity (2014) 40:91-104. doi:10.1016/j.immuni.2013.11.019.
-
(2014)
Immunity
, vol.40
, pp. 91-104
-
-
Epelman, S.1
Lavine, K.J.2
Beaudin, A.E.3
Sojka, D.K.4
Carrero, J.A.5
Calderon, B.6
-
102
-
-
84885454468
-
Alveolar macrophages develop from fetal monocytes that differentiate into long-lived cells in the first week of life via GM-CSF
-
Guilliams M, De Kleer I, Henri S, Post S, Vanhoutte L, De Prijck S, et al. Alveolar macrophages develop from fetal monocytes that differentiate into long-lived cells in the first week of life via GM-CSF. J Exp Med (2013) 210:1977-92. doi:10.1084/jem.20131199.
-
(2013)
J Exp Med
, vol.210
, pp. 1977-1992
-
-
Guilliams, M.1
De Kleer, I.2
Henri, S.3
Post, S.4
Vanhoutte, L.5
De Prijck, S.6
-
103
-
-
84925465211
-
Tissue-resident macrophages originate from yolk-sac-derived erythro-myeloid progenitors
-
Gomez Perdiguero E, Klapproth K, Schulz C, Busch K, Azzoni E, Crozet L, et al. Tissue-resident macrophages originate from yolk-sac-derived erythro-myeloid progenitors. Nature (2015) 518:547-51. doi:10.1038/nature13989.
-
(2015)
Nature
, vol.518
, pp. 547-551
-
-
Gomez Perdiguero, E.1
Klapproth, K.2
Schulz, C.3
Busch, K.4
Azzoni, E.5
Crozet, L.6
-
104
-
-
84864298329
-
Adult Langerhans cells derive predominantly from embryonic fetal liver monocytes with a minor contribution of yolk sac-derived macrophages
-
Hoeffel G, Wang Y, Greter M, See P, Teo P, Malleret B, et al. Adult Langerhans cells derive predominantly from embryonic fetal liver monocytes with a minor contribution of yolk sac-derived macrophages. J Exp Med (2012) 209:1167-81. doi:10.1084/jem.20120340.
-
(2012)
J Exp Med
, vol.209
, pp. 1167-1181
-
-
Hoeffel, G.1
Wang, Y.2
Greter, M.3
See, P.4
Teo, P.5
Malleret, B.6
-
105
-
-
84940984138
-
Most tissue-resident macrophages except microglia are derived from fetal hematopoietic stem cells
-
Sheng J, Ruedl C, Karjalainen K. Most tissue-resident macrophages except microglia are derived from fetal hematopoietic stem cells. Immunity (2015) 43:382-93. doi:10.1016/j.immuni.2015.07.016.
-
(2015)
Immunity
, vol.43
, pp. 382-393
-
-
Sheng, J.1
Ruedl, C.2
Karjalainen, K.3
-
106
-
-
84904573974
-
Crosstalk between muscularis macrophages and enteric neurons regulates gastrointestinal motility
-
Muller PA, Koscso B, Rajani GM, Stevanovic K, Berres ML, Hashimoto D, et al. Crosstalk between muscularis macrophages and enteric neurons regulates gastrointestinal motility. Cell (2014) 158:300-13. doi:10.1016/j.cell.2014.04.050.
-
(2014)
Cell
, vol.158
, pp. 300-313
-
-
Muller, P.A.1
Koscso, B.2
Rajani, G.M.3
Stevanovic, K.4
Berres, M.L.5
Hashimoto, D.6
-
107
-
-
84921313153
-
Constant replenishment from circulating monocytes maintains the macrophage pool in the intestine of adult mice
-
Bain CC, Bravo-Blas A, Scott CL, Gomez Perdiguero E, Geissmann F, Henri S, et al. Constant replenishment from circulating monocytes maintains the macrophage pool in the intestine of adult mice. Nat Immunol (2014) 15:929-37. doi:10.1038/ni.2967.
-
(2014)
Nat Immunol
, vol.15
, pp. 929-937
-
-
Bain, C.C.1
Bravo-Blas, A.2
Scott, C.L.3
Gomez Perdiguero, E.4
Geissmann, F.5
Henri, S.6
-
108
-
-
84908227801
-
Progressive replacement of embryo-derived cardiac macrophages with age
-
Molawi K, Wolf Y, Kandalla PK, Favret J, Hagemeyer N, Frenzel K, et al. Progressive replacement of embryo-derived cardiac macrophages with age. J Exp Med (2014) 211:2151-8. doi:10.1084/jem.20140639.
-
(2014)
J Exp Med
, vol.211
, pp. 2151-2158
-
-
Molawi, K.1
Wolf, Y.2
Kandalla, P.K.3
Favret, J.4
Hagemeyer, N.5
Frenzel, K.6
-
109
-
-
84891540739
-
Local apoptosis mediates clearance of macrophages from resolving inflammation in mice
-
Gautier EL, Ivanov S, Lesnik P, Randolph GJ. Local apoptosis mediates clearance of macrophages from resolving inflammation in mice. Blood (2013) 122:2714-22. doi:10.1182/blood-2013-01-478206.
-
(2013)
Blood
, vol.122
, pp. 2714-2722
-
-
Gautier, E.L.1
Ivanov, S.2
Lesnik, P.3
Randolph, G.J.4
-
110
-
-
78349311415
-
IL-34 and M-CSF share the receptor Fms but are not identical in biological activity and signal activation
-
Chihara T, Suzu S, Hassan R, Chutiwitoonchai N, Hiyoshi M, Motoyoshi K, et al. IL-34 and M-CSF share the receptor Fms but are not identical in biological activity and signal activation. Cell Death Differ (2010) 17:1917-27. doi:10.1038/cdd.2010.60.
-
(2010)
Cell Death Differ
, vol.17
, pp. 1917-1927
-
-
Chihara, T.1
Suzu, S.2
Hassan, R.3
Chutiwitoonchai, N.4
Hiyoshi, M.5
Motoyoshi, K.6
-
111
-
-
84870907320
-
Stroma-derived interleukin-34 controls the development and maintenance of Langerhans cells and the maintenance of microglia
-
Greter M, Lelios I, Pelczar P, Hoeffel G, Price J, Leboeuf M, et al. Stroma-derived interleukin-34 controls the development and maintenance of Langerhans cells and the maintenance of microglia. Immunity (2012) 37:1050-60. doi:10.1016/j.immuni.2012.11.001.
-
(2012)
Immunity
, vol.37
, pp. 1050-1060
-
-
Greter, M.1
Lelios, I.2
Pelczar, P.3
Hoeffel, G.4
Price, J.5
Leboeuf, M.6
-
112
-
-
84864152036
-
IL-34 is a tissue-restricted ligand of CSF1R required for the development of Langerhans cells and microglia
-
Wang Y, Szretter KJ, Vermi W, Gilfillan S, Rossini C, Cella M, et al. IL-34 is a tissue-restricted ligand of CSF1R required for the development of Langerhans cells and microglia. Nat Immunol (2012) 13:753-60. doi:10.1038/ni.2360.
-
(2012)
Nat Immunol
, vol.13
, pp. 753-760
-
-
Wang, Y.1
Szretter, K.J.2
Vermi, W.3
Gilfillan, S.4
Rossini, C.5
Cella, M.6
-
113
-
-
10344230611
-
Enhancement of hematopoietic stem cell repopulating capacity and self-renewal in the absence of the transcription factor C/EBP alpha
-
Zhang P, Iwasaki-Arai J, Iwasaki H, Fenyus ML, Dayaram T, Owens BM, et al. Enhancement of hematopoietic stem cell repopulating capacity and self-renewal in the absence of the transcription factor C/EBP alpha. Immunity (2004) 21:853-63. doi:10.1016/j.immuni.2004.11.006.
-
(2004)
Immunity
, vol.21
, pp. 853-863
-
-
Zhang, P.1
Iwasaki-Arai, J.2
Iwasaki, H.3
Fenyus, M.L.4
Dayaram, T.5
Owens, B.M.6
-
114
-
-
0030024112
-
CCAAT enhancer-binding protein (C/EBP) and AML1 (CBF alpha2) synergistically activate the macrophage colony-stimulating factor receptor promoter
-
Zhang DE, Hetherington CJ, Meyers S, Rhoades KL, Larson CJ, Chen HM, et al. CCAAT enhancer-binding protein (C/EBP) and AML1 (CBF alpha2) synergistically activate the macrophage colony-stimulating factor receptor promoter. Mol Cell Biol (1996) 16:1231-40.
-
(1996)
Mol Cell Biol
, vol.16
, pp. 1231-1240
-
-
Zhang, D.E.1
Hetherington, C.J.2
Meyers, S.3
Rhoades, K.L.4
Larson, C.J.5
Chen, H.M.6
-
115
-
-
84920724792
-
Environment drives selection and function of enhancers controlling tissue-specific macrophage identities
-
Gosselin D, Link VM, Romanoski CE, Fonseca GJ, Eichenfield DZ, Spann NJ, et al. Environment drives selection and function of enhancers controlling tissue-specific macrophage identities. Cell (2014) 159:1327-40. doi:10.1016/j.cell.2014.11.023.
-
(2014)
Cell
, vol.159
, pp. 1327-1340
-
-
Gosselin, D.1
Link, V.M.2
Romanoski, C.E.3
Fonseca, G.J.4
Eichenfield, D.Z.5
Spann, N.J.6
-
116
-
-
84920724791
-
Tissue-resident macrophage enhancer landscapes are shaped by the local microenvironment
-
Lavin Y, Winter D, Blecher-Gonen R, David E, Keren-Shaul H, Merad M, et al. Tissue-resident macrophage enhancer landscapes are shaped by the local microenvironment. Cell (2014) 159:1312-26. doi:10.1016/j.cell.2014.11.018.
-
(2014)
Cell
, vol.159
, pp. 1312-1326
-
-
Lavin, Y.1
Winter, D.2
Blecher-Gonen, R.3
David, E.4
Keren-Shaul, H.5
Merad, M.6
-
117
-
-
84878242024
-
Identification of transcriptional regulators in the mouse immune system
-
Jojic V, Shay T, Sylvia K, Zuk O, Sun X, Kang J, et al. Identification of transcriptional regulators in the mouse immune system. Nat Immunol (2013) 14:633-43. doi:10.1038/ni.2587.
-
(2013)
Nat Immunol
, vol.14
, pp. 633-643
-
-
Jojic, V.1
Shay, T.2
Sylvia, K.3
Zuk, O.4
Sun, X.5
Kang, J.6
-
118
-
-
84896366680
-
Heme-mediated SPI-C induction promotes monocyte differentiation into iron-recycling macrophages
-
Haldar M, Kohyama M, So AY, Kc W, Wu X, Briseno CG, et al. Heme-mediated SPI-C induction promotes monocyte differentiation into iron-recycling macrophages. Cell (2014) 156:1223-34. doi:10.1016/j.cell.2014.01.069.
-
(2014)
Cell
, vol.156
, pp. 1223-1234
-
-
Haldar, M.1
Kohyama, M.2
So, A.Y.3
Kc, W.4
Wu, X.5
Briseno, C.G.6
-
119
-
-
84880846105
-
The nuclear receptor LXRalpha controls the functional specialization of splenic macrophages
-
A-Gonzalez N, Guillen JA, Gallardo G, Diaz M, de la Rosa JV, Hernandez IH, et al. The nuclear receptor LXRalpha controls the functional specialization of splenic macrophages. Nat Immunol (2013) 14:831-9. doi:10.1038/ni.2622.
-
(2013)
Nat Immunol
, vol.14
, pp. 831-839
-
-
A.-Gonzalez, N.1
Guillen, J.A.2
Gallardo, G.3
Diaz, M.4
de la Rosa, J.V.5
Hernandez, I.H.6
-
120
-
-
84865410948
-
Systemic analysis of PPARgamma in mouse macrophage populations reveals marked diversity in expression with critical roles in resolution of inflammation and airway immunity
-
Gautier EL, Chow A, Spanbroek R, Marcelin G, Greter M, Jakubzick C, et al. Systemic analysis of PPARgamma in mouse macrophage populations reveals marked diversity in expression with critical roles in resolution of inflammation and airway immunity. J Immunol (2012) 189:2614-24. doi:10.4049/jimmunol.1200495.
-
(2012)
J Immunol
, vol.189
, pp. 2614-2624
-
-
Gautier, E.L.1
Chow, A.2
Spanbroek, R.3
Marcelin, G.4
Greter, M.5
Jakubzick, C.6
-
121
-
-
50649097541
-
Fat and beyond: the diverse biology of PPARgamma
-
Tontonoz P, Spiegelman BM. Fat and beyond: the diverse biology of PPARgamma. Annu Rev Biochem (2008) 77:289-312. doi:10.1146/annurev.biochem.77.061307.091829.
-
(2008)
Annu Rev Biochem
, vol.77
, pp. 289-312
-
-
Tontonoz, P.1
Spiegelman, B.M.2
-
122
-
-
77952732710
-
Targeted PPAR{gamma} deficiency in alveolar macrophages disrupts surfactant catabolism
-
Baker AD, Malur A, Barna BP, Ghosh S, Kavuru MS, Malur AG, et al. Targeted PPAR{gamma} deficiency in alveolar macrophages disrupts surfactant catabolism. J Lipid Res (2010) 51:1325-31. doi:10.1194/jlr. M001651.
-
(2010)
J Lipid Res
, vol.51
, pp. 1325-1331
-
-
Baker, A.D.1
Malur, A.2
Barna, B.P.3
Ghosh, S.4
Kavuru, M.S.5
Malur, A.G.6
-
123
-
-
84908148912
-
Induction of the nuclear receptor PPAR-gamma by the cytokine GM-CSF is critical for the differentiation of fetal monocytes into alveolar macrophages
-
Schneider C, Nobs SP, Kurrer M, Rehrauer H, Thiele C, Kopf M. Induction of the nuclear receptor PPAR-gamma by the cytokine GM-CSF is critical for the differentiation of fetal monocytes into alveolar macrophages. Nat Immunol (2014) 15:1026-37. doi:10.1038/ni.3005.
-
(2014)
Nat Immunol
, vol.15
, pp. 1026-1037
-
-
Schneider, C.1
Nobs, S.P.2
Kurrer, M.3
Rehrauer, H.4
Thiele, C.5
Kopf, M.6
-
124
-
-
84904407541
-
Gata6 regulates aspartoacylase expression in resident peritoneal macrophages and controls their survival
-
Gautier EL, Ivanov S, Williams JW, Huang SC, Marcelin G, Fairfax K, et al. Gata6 regulates aspartoacylase expression in resident peritoneal macrophages and controls their survival. J Exp Med (2014) 211:1525-31. doi:10.1084/jem.20140570.
-
(2014)
J Exp Med
, vol.211
, pp. 1525-1531
-
-
Gautier, E.L.1
Ivanov, S.2
Williams, J.W.3
Huang, S.C.4
Marcelin, G.5
Fairfax, K.6
-
125
-
-
79958715229
-
Local macrophage proliferation, rather than recruitment from the blood, is a signature of TH2 inflammation
-
Jenkins SJ, Ruckerl D, Cook PC, Jones LH, Finkelman FD, Van Rooijen N, et al. Local macrophage proliferation, rather than recruitment from the blood, is a signature of TH2 inflammation. Science (2011) 332:1284-8. doi:10.1126/science.1204351.
-
(2011)
Science
, vol.332
, pp. 1284-1288
-
-
Jenkins, S.J.1
Ruckerl, D.2
Cook, P.C.3
Jones, L.H.4
Finkelman, F.D.5
Van Rooijen, N.6
-
126
-
-
84900386841
-
The transcription factor Gata6 links tissue macrophage phenotype and proliferative renewal
-
Rosas M, Davies LC, Giles PJ, Liao CT, Kharfan B, Stone TC, et al. The transcription factor Gata6 links tissue macrophage phenotype and proliferative renewal. Science (2014) 344:645-8. doi:10.1126/science.1251414.
-
(2014)
Science
, vol.344
, pp. 645-648
-
-
Rosas, M.1
Davies, L.C.2
Giles, P.J.3
Liao, C.T.4
Kharfan, B.5
Stone, T.C.6
-
127
-
-
84911016319
-
High-dimensional analysis of the murine myeloid cell system
-
Becher B, Schlitzer A, Chen J, Mair F, Sumatoh HR, Teng KW, et al. High-dimensional analysis of the murine myeloid cell system. Nat Immunol (2014) 15:1181-9. doi:10.1038/ni.3006.
-
(2014)
Nat Immunol
, vol.15
, pp. 1181-1189
-
-
Becher, B.1
Schlitzer, A.2
Chen, J.3
Mair, F.4
Sumatoh, H.R.5
Teng, K.W.6
-
128
-
-
84876297531
-
Diverse and heritable lineage imprinting of early haematopoietic progenitors
-
Naik SH, Perie L, Swart E, Gerlach C, van Rooij N, de Boer RJ, et al. Diverse and heritable lineage imprinting of early haematopoietic progenitors. Nature (2013) 496:229-32. doi:10.1038/nature12013.
-
(2013)
Nature
, vol.496
, pp. 229-232
-
-
Naik, S.H.1
Perie, L.2
Swart, E.3
Gerlach, C.4
van Rooij, N.5
de Boer, R.J.6
|