-
1
-
-
34249689753
-
Molecular regulation of angiogenesis and lymphangiogenesis
-
DOI 10.1038/nrm2183, PII NRM2183
-
Adams RH, Alitalo K. Molecular regulation of angiogenesis and lymphangiogenesis. Nat Rev Mol Cell Biol. 2007;8(6):464-478. (Pubitemid 46823443)
-
(2007)
Nature Reviews Molecular Cell Biology
, vol.8
, Issue.6
, pp. 464-478
-
-
Adams, R.H.1
Alitalo, K.2
-
2
-
-
60749096085
-
Control of vascular morphogenesis and homeostasis through the angiopoietin-Tie system
-
Augustin HG, Koh GY, Thurston G, Alitalo K. Control of vascular morphogenesis and homeostasis through the angiopoietin-Tie system. Nat Rev Mol Cell Biol. 2009;10(3):165-177.
-
(2009)
Nat Rev Mol Cell Biol
, vol.10
, Issue.3
, pp. 165-177
-
-
Augustin, H.G.1
Koh, G.Y.2
Thurston, G.3
Alitalo, K.4
-
3
-
-
34547941252
-
Autocrine VEGF Signaling Is Required for Vascular Homeostasis
-
DOI 10.1016/j.cell.2007.06.054, PII S0092867407009051
-
Lee S, Chen TT, Barber CL, et al. Autocrine VEGF signaling is required for vascular homeostasis. Cell. 2007;130(4):691-703. (Pubitemid 47268059)
-
(2007)
Cell
, vol.130
, Issue.4
, pp. 691-703
-
-
Lee, S.1
Chen, T.T.2
Barber, C.L.3
Jordan, M.C.4
Murdock, J.5
Desai, S.6
Ferrara, N.7
Nagy, A.8
Roos, K.P.9
Iruela-Arispe, M.L.10
-
4
-
-
30744432619
-
Endothelial cells and VEGF in vascular development
-
DOI 10.1038/nature04479, PII NATURE04479
-
Coultas L, Chawengsaksophak K, Rossant J. Endothelial cells and VEGF in vascular development. Nature. 2005;438(7070):937-945. (Pubitemid 43093959)
-
(2005)
Nature
, vol.438
, Issue.7070
, pp. 937-945
-
-
Coultas, L.1
Chawengsaksophak, K.2
Rossant, J.3
-
6
-
-
57649135172
-
A role for VEGF as a negative regulator of pericyte function and vessel maturation
-
Greenberg JI, Shields DJ, Barillas SG, et al. A role for VEGF as a negative regulator of pericyte function and vessel maturation. Nature. 2008; 456(7223):809-813.
-
(2008)
Nature
, vol.456
, Issue.7223
, pp. 809-813
-
-
Greenberg, J.I.1
Shields, D.J.2
Barillas, S.G.3
-
7
-
-
25444463573
-
Endothelial/ pericyte interactions
-
Armulik A, Abramsson A, Betsholtz C. Endothelial/ pericyte interactions. Circ Res. 2005;97(6): 512-523.
-
(2005)
Circ Res
, vol.97
, Issue.6
, pp. 512-523
-
-
Armulik, A.1
Abramsson, A.2
Betsholtz, C.3
-
8
-
-
67650753834
-
The role of the angiopoietins in vascular morphogenesis
-
Thomas M, Augustin HG. The role of the angiopoietins in vascular morphogenesis. Angiogenesis. 2009;12(2):125-137.
-
(2009)
Angiogenesis
, vol.12
, Issue.2
, pp. 125-137
-
-
Thomas, M.1
Augustin, H.G.2
-
9
-
-
80053210046
-
Notch1 controls macrophage recruitment and Notch signaling is activated at sites of endothelial cell anastomosis during retinal angiogenesis in mice
-
Outtz HH, Tattersall IW, Kofler NM, Steinbach N, Kitajewski J. Notch1 controls macrophage recruitment and Notch signaling is activated at sites of endothelial cell anastomosis during retinal angiogenesis in mice. Blood. 2011;118(12): 3436-3439.
-
(2011)
Blood
, vol.118
, Issue.12
, pp. 3436-3439
-
-
Outtz, H.H.1
Tattersall, I.W.2
Kofler, N.M.3
Steinbach, N.4
Kitajewski, J.5
-
10
-
-
77956273530
-
Tissue macrophages act as cellular chaperones for vascular anastomosis downstream of VEGF-mediated endothelial tip cell induction
-
Fantin A, Vieira JM, Gestri G, et al. Tissue macrophages act as cellular chaperones for vascular anastomosis downstream of VEGF-mediated endothelial tip cell induction. Blood. 2010;116(5): 829-840.
-
(2010)
Blood
, vol.116
, Issue.5
, pp. 829-840
-
-
Fantin, A.1
Vieira, J.M.2
Gestri, G.3
-
11
-
-
39749140405
-
HIF-independent regulation of VEGF and angiogenesis by the transcriptional coactivator PGC-1alphaα
-
DOI 10.1038/nature06613, PII NATURE06613
-
Arany Z, Foo SY, Ma Y, et al. HIF-independent regulation of VEGF and angiogenesis by the transcriptional coactivator PGC-1alphaα. Nature. 2008;451(7181):1008-1012. (Pubitemid 351301733)
-
(2008)
Nature
, vol.451
, Issue.7181
, pp. 1008-1012
-
-
Arany, Z.1
Foo, S.-Y.2
Ma, Y.3
Ruas, J.L.4
Bommi-Reddy, A.5
Girnun, G.6
Cooper, M.7
Laznik, D.8
Chinsomboon, J.9
Rangwala, S.M.10
Baek, K.H.11
Rosenzweig, A.12
Spiegelman, B.M.13
-
12
-
-
33745298519
-
Nuclear factor-kappaB in cancer development and progression
-
DOI 10.1038/nature04870, PII NATURE04870
-
Karin M. Nuclear factor-kappaB in cancer development and progression. Nature. 2006; 441(7092):431-436. (Pubitemid 44050137)
-
(2006)
Nature
, vol.441
, Issue.7092
, pp. 431-436
-
-
Karin, M.1
-
13
-
-
80053086676
-
Fluid forces control endothelial sprouting
-
Song JW, Munn LL. Fluid forces control endothelial sprouting. Proc Natl Acad Sci U S A. 2011; 108(37):15342-15347.
-
(2011)
Proc Natl Acad Sci U S A
, vol.108
, Issue.37
, pp. 15342-15347
-
-
Song, J.W.1
Munn, L.L.2
-
14
-
-
0033580466
-
The kinase TAK1 can activate the NIK-IκB as well as the MAP kinase cascade in the IL-1 signalling pathway
-
Ninomiya-Tsuji J, Kishimoto K, Hiyama A, et al. The kinase TAK1 can activate the NIK-IκB as well as the MAP kinase cascade in the IL-1 signalling pathway. Nature. 1999;398(6724):252-256.
-
(1999)
Nature
, vol.398
, Issue.6724
, pp. 252-256
-
-
Ninomiya-Tsuji, J.1
Kishimoto, K.2
Hiyama, A.3
-
15
-
-
27744577296
-
TAK1, but not TAB1 or TAB2, plays an essential role in multiple signaling pathways in vivo
-
DOI 10.1101/gad.1360605
-
Shim J-H, Xiao C, Paschal AE, et al. TAK1, but not TAB1 or TAB2, plays an essential role in multiple signaling pathways in vivo. Genes Dev. 2005;19(22):2668-2681. (Pubitemid 41627934)
-
(2005)
Genes and Development
, vol.19
, Issue.22
, pp. 2668-2681
-
-
Shim, J.-H.1
Xiao, C.2
Paschal, A.E.3
Bailey, S.T.4
Rao, P.5
Hayden, M.S.6
Lee, K.-Y.7
Bussey, C.8
Steckel, M.9
Tanaka, N.10
Yamada, G.11
Akira, S.12
Matsumoto, K.13
Ghosh, S.14
-
16
-
-
27544434183
-
Essential function for the kinase TAK1 in innate and adaptive immune responses
-
DOI 10.1038/ni1255, PII N1255
-
Sato S, Sanjo H, Takeda K, et al. Essential function for the kinase TAK1 in innate and adaptive immune responses. Nat Immunol. 2005;6(11): 1087-1095. (Pubitemid 41541786)
-
(2005)
Nature Immunology
, vol.6
, Issue.11
, pp. 1087-1095
-
-
Sato, S.1
Sanjo, H.2
Takeda, K.3
Ninomiya-Tsuji, J.4
Yamamoto, M.5
Kawai, T.6
Matsumoto, K.7
Takeuchi, O.8
Akira, S.9
-
17
-
-
78049504143
-
TGF-β-activated kinase 1 signaling maintains intestinal integrity by preventing accumulation of reactive oxygen species in the intestinal epithelium
-
Kajino-Sakamoto R, Omori E, Nighot PK, et al. TGF-β-activated kinase 1 signaling maintains intestinal integrity by preventing accumulation of reactive oxygen species in the intestinal epithelium. J Immunol. 2010;185(8):4729-4737.
-
(2010)
J Immunol
, vol.185
, Issue.8
, pp. 4729-4737
-
-
Kajino-Sakamoto, R.1
Omori, E.2
Nighot, P.K.3
-
18
-
-
54449085568
-
TAK1 regulates reactive oxygen species and cell death in keratinocytes, which is essential for skin integrity
-
Omori E, Morioka S, Matsumoto K, Ninomiya-Tsuji J. TAK1 regulates reactive oxygen species and cell death in keratinocytes, which is essential for skin integrity. J Biol Chem. 2008;283(38):26161-26168.
-
(2008)
J Biol Chem
, vol.283
, Issue.38
, pp. 26161-26168
-
-
Omori, E.1
Morioka, S.2
Matsumoto, K.3
Ninomiya-Tsuji, J.4
-
19
-
-
49049095991
-
Enterocyte-derived TAK1 signaling prevents epithelium apoptosis and the development of ileitis and colitis
-
Kajino-Sakamoto R, Inagaki M, Lippert E, et al. Enterocyte-derived TAK1 signaling prevents epithelium apoptosis and the development of ileitis and colitis. J Immunol. 2008;181(2):1143-1152.
-
(2008)
J Immunol
, vol.181
, Issue.2
, pp. 1143-1152
-
-
Kajino-Sakamoto, R.1
Inagaki, M.2
Lippert, E.3
-
20
-
-
33745851830
-
TAK1 is a master regulator of epidermal homeostasis involving skin inflammation and apoptosis
-
DOI 10.1074/jbc.M603384200
-
Omori E, Matsumoto K, Sanjo H, et al. TAK1 is a master regulator of epidermal homeostasis involving skin inflammation and apoptosis. J Biol Chem. 2006;281(28):19610-19617. (Pubitemid 44035464)
-
(2006)
Journal of Biological Chemistry
, vol.281
, Issue.28
, pp. 19610-19617
-
-
Omori, E.1
Matsumoto, K.2
Sanjo, H.3
Sato, S.4
Akira, S.5
Smart, R.C.6
Ninomiya-Tsuji, J.7
-
21
-
-
33748999526
-
TAK1 is indispensable for development of T cells and prevention of colitis by the generation of regulatory T cells
-
DOI 10.1093/intimm/dxl082
-
Sato S, Sanjo H, Tsujimura T, et al. TAK1 is indispensable for development of T cells and prevention of colitis by the generation of regulatory T cells. Int Immunol. 2006;18(10):1405-1411. (Pubitemid 44446818)
-
(2006)
International Immunology
, vol.18
, Issue.10
, pp. 1405-1411
-
-
Sato, S.1
Sanjo, H.2
Tsujimura, T.3
Ninomiya-Tsuji, J.4
Yamamoto, M.5
Kawai, T.6
Takeuchi, O.7
Akira, S.8
-
22
-
-
33746111852
-
The kinase TAK1 integrates antigen and cytokine receptor signaling for T cell development, survival and function
-
DOI 10.1038/ni1355, PII NI1355
-
Wan YY, Chi H, Xie M, Schneider MD, Flavell RA. The kinase TAK1 integrates antigen and cytokine receptor signaling for T cell development, survival and function. Nat Immunol. 2006;7(8): 851-858. (Pubitemid 44084092)
-
(2006)
Nature Immunology
, vol.7
, Issue.8
, pp. 851-858
-
-
Wan, Y.Y.1
Chi, H.2
Xie, M.3
Schneider, M.D.4
Flavell, R.A.5
-
23
-
-
0037407886
-
Expression of TAK1, a mediator of TGF-beta and BMP signaling, during mouse embryonic development
-
DOI 10.1016/S1567-133X(03)00012-7, PII S1567133X03000127
-
Jadrich JL, O'Connor MB, Coucouvanis E. Expression of TAK1, a mediator of TGF-beta and BMP signaling, during mouse embryonic development. Gene Expr Patterns. 2003;3(2):131-134. (Pubitemid 36503659)
-
(2003)
Gene Expression Patterns
, vol.3
, Issue.2
, pp. 131-134
-
-
Jadrich, J.L.1
O'Connor, M.B.2
Coucouvanis, E.3
-
24
-
-
33646713486
-
The TGFbeta activated kinase TAK1 regulates vascular development in vivo
-
DOI 10.1242/dev.02333
-
Jadrich JL, O'Connor MB, Coucouvanis E. The TGF β activated kinase TAK1 regulates vascular development in vivo. Development. 2006;133(8): 1529-1541. (Pubitemid 43732966)
-
(2006)
Development
, vol.133
, Issue.8
, pp. 1529-1541
-
-
Jadrich, J.L.1
O'Connor, M.B.2
Coucouvanis, E.3
-
25
-
-
0033634977
-
TAB2, a novel adaptor protein, mediates activation of TAK1 MAPKKK by linking TAK1 to TRAF6 in the IL-1 signal transduction pathway
-
Takaesu G, Kishida S, Hiyama A, et al. TAB2, a novel adaptor protein, mediates activation of TAK1 MAPKKK by linking TAK1 to TRAF6 in the IL-1 signal transduction pathway. Mol Cell. 2000; 5(4):649-658.
-
(2000)
Mol Cell
, vol.5
, Issue.4
, pp. 649-658
-
-
Takaesu, G.1
Kishida, S.2
Hiyama, A.3
-
26
-
-
57749122042
-
TAK1-binding protein 1, TAB1, mediates osmotic stress-induced TAK1 activation but is dispensable for TAK1- Mediated cytokine signaling
-
Inagaki M, Omori E, Kim JY, et al. TAK1-binding protein 1, TAB1, mediates osmotic stress-induced TAK1 activation but is dispensable for TAK1- mediated cytokine signaling. J Biol Chem. 2008; 283(48):33080-33086.
-
(2008)
J Biol Chem
, vol.283
, Issue.48
, pp. 33080-33086
-
-
Inagaki, M.1
Omori, E.2
Kim, J.Y.3
-
27
-
-
52049099157
-
Generation of a conditional mutant allele for Tab1 in mouse
-
Inagaki M, Komatsu Y, Scott G, et al. Generation of a conditional mutant allele for Tab1 in mouse. Genesis. 2008;46(8):431-439.
-
(2008)
Genesis
, vol.46
, Issue.8
, pp. 431-439
-
-
Inagaki, M.1
Komatsu, Y.2
Scott, G.3
-
28
-
-
0036895537
-
Targeted disruption of the Tab1 gene causes embryonic lethality and defects in cardiovascular and lung morphogenesis
-
DOI 10.1016/S0925-4773(02)00391-X, PII S092547730200391X
-
Komatsu Y, Shibuya H, Takeda N, et al. Targeted disruption of the Tab1 gene causes embryonic lethality and defects in cardiovascular and lung morphogenesis. Mech Dev. 2002;119(2):239-249. (Pubitemid 35430111)
-
(2002)
Mechanisms of Development
, vol.119
, Issue.2
, pp. 239-249
-
-
Komatsu, Y.1
Shibuya, H.2
Takeda, N.3
Ninomiya-Tsuji, J.4
Yasui, T.5
Miyado, K.6
Sekimoto, T.7
Ueno, N.8
Matsumoto, K.9
Yamada, G.10
-
29
-
-
0037313041
-
TAB2 is essential for prevention of apoptosis in fetal liver but not for interleukin-1 signaling
-
DOI 10.1128/MCB.23.4.1231-1238.2003
-
Sanjo H, Takeda K, Tsujimura T, et al. TAB2 is essential for prevention of apoptosis in fetal liver but not for interleukin-1 signaling. Mol Cell Biol. 2003;23(4):1231-1238. (Pubitemid 36177033)
-
(2003)
Molecular and Cellular Biology
, vol.23
, Issue.4
, pp. 1231-1238
-
-
Sanjo, H.1
Takeda, K.2
Tsujimura, T.3
Ninomiya-Tsuji, J.4
Matsumoto, K.5
Akira, S.6
-
30
-
-
77953231502
-
Haploinsufficiency of TAB2 causes congenital heart defects in humans
-
Thienpont B, Zhang L, Postma AV, et al. Haploinsufficiency of TAB2 causes congenital heart defects in humans. Am J Hum Genet. 2010;86(6): 839-849.
-
(2010)
Am J Hum Genet
, vol.86
, Issue.6
, pp. 839-849
-
-
Thienpont, B.1
Zhang, L.2
Postma, A.V.3
-
31
-
-
0037443388
-
Identification of 2 novel genes developmentally regulated in the mouse aorta-gonad-mesonephros region
-
DOI 10.1182/blood-2002-07-2260
-
Orelio C, Dzierzak E. Identification of 2 novel genes developmentally regulated in the mouse aorta-gonad-mesonephros region. Blood. 2003; 101(6):2246-2249. (Pubitemid 36302065)
-
(2003)
Blood
, vol.101
, Issue.6
, pp. 2246-2249
-
-
Orelio, C.1
Dzierzak, E.2
-
32
-
-
78049250350
-
Oxidative stress induces angiogenesis by activating TLR2 with novel endogenous ligands
-
West XZ, Malinin NL, Merkulova AA, et al. Oxidative stress induces angiogenesis by activating TLR2 with novel endogenous ligands. Nature. 2010;467(7318):972-976.
-
(2010)
Nature
, vol.467
, Issue.7318
, pp. 972-976
-
-
West, X.Z.1
Malinin, N.L.2
Merkulova, A.A.3
-
33
-
-
0035911253
-
Conditional vascular cell adhesion molecule 1 deletion in mice: Impaired lymphocyte migration to bone marrow
-
Koni PA, Joshi SK, Temann UA, et al. Conditional vascular cell adhesion molecule 1 deletion in mice: impaired lymphocyte migration to bone marrow. J Exp Med. 2001;193(6):741-754.
-
(2001)
J Exp Med
, vol.193
, Issue.6
, pp. 741-754
-
-
Koni, P.A.1
Joshi, S.K.2
Temann, U.A.3
-
34
-
-
0027297663
-
Mice deficient for the 55 kd tumor necrosis factor receptor are resistant to endotoxic shock, yet succumb to L. monocytogenes infection
-
DOI 10.1016/0092-8674(93)90134-C
-
Pfeffer K, Matsuyama T, Kundig TM, et al. Mice deficient for the 55 kd tumor necrosis factor receptor are resistant to endotoxic shock, yet succumb to L. monocytogenes infection. Cell. 1993; 73(3):457-467. (Pubitemid 23143346)
-
(1993)
Cell
, vol.73
, Issue.3
, pp. 457-467
-
-
Pfeffer, K.1
Matsuyama, T.2
Kundig, T.M.3
Wakeham, A.4
Kishihara, K.5
Shahinian, A.6
Wlegmann, K.7
Ohashi, P.S.8
Kronke, M.9
Mak, T.W.10
-
35
-
-
0037444638
-
A noninvasive genetic/pharmacologic strategy for visualizing cell morphology and clonal relationships in the mouse
-
Badea TC, Wang Y, Nathans J. A noninvasive genetic/pharmacologic strategy for visualizing cell morphology and clonal relationships in the mouse. J Neurosci. 2003;23(6):2314-2322. (Pubitemid 36368919)
-
(2003)
Journal of Neuroscience
, vol.23
, Issue.6
, pp. 2314-2322
-
-
Badea, T.C.1
Wang, Y.2
Nathans, J.3
-
36
-
-
0035865048
-
Tie2-Cre transgenic mice: A new model for endothelial cell-lineage analysis in vivo
-
DOI 10.1006/dbio.2000.0106
-
Kisanuki YY, Hammer RE, Miyazaki J, et al. Tie2- Cre transgenic mice: a new model for endothelial cell-lineage analysis in vivo. Dev Biol. 2001; 230(2):230-242. (Pubitemid 32171420)
-
(2001)
Developmental Biology
, vol.230
, Issue.2
, pp. 230-242
-
-
Kisanuki, Y.Y.1
Hammer, R.E.2
Miyazaki, J.-I.3
Williams, S.C.4
Richardson, J.A.5
Yanagisawa, M.6
-
37
-
-
77957105977
-
Molecular mechanisms of necroptosis: An ordered cellular explosion
-
Vandenabeele P, Galluzzi L, Vanden Berghe T, Kroemer G. Molecular mechanisms of necroptosis: an ordered cellular explosion. Nat Rev Mol Cell Biol. 2010;11(10):700-714.
-
(2010)
Nat Rev Mol Cell Biol
, vol.11
, Issue.10
, pp. 700-714
-
-
Vandenabeele, P.1
Galluzzi, L.2
Vanden Berghe, T.3
Kroemer, G.4
-
38
-
-
84855483251
-
TAK1 in brain endothelial cells mediates fever and lethargy
-
Ridder DA, Lang MF, Salinin S, et al. TAK1 in brain endothelial cells mediates fever and lethargy. J Exp Med. 2011;208(13):2615-2623.
-
(2011)
J Exp Med
, vol.208
, Issue.13
, pp. 2615-2623
-
-
Ridder, D.A.1
Lang, M.F.2
Salinin, S.3
-
39
-
-
0037133617
-
Targeting of both mouse neuropilin-1 and neuropilin-2 genes severely impairs developmental yolk sac and embryonic angiogenesis
-
DOI 10.1073/pnas.022017899
-
Takashima S, Kitakaze M, Asakura M, et al. Targeting of both mouse neuropilin-1 and neuropilin-2 genes severely impairs developmental yolk sac and embryonic angiogenesis. Proc Natl Acad Sci U S A. 2002;99(6):3657-3662. (Pubitemid 34252162)
-
(2002)
Proceedings of the National Academy of Sciences of the United States of America
, vol.99
, Issue.6
, pp. 3657-3662
-
-
Takashima, S.1
Kitakaze, M.2
Asakura, M.3
Asanuma, H.4
Sanada, S.5
Tashiro, F.6
Niwa, H.7
Miyazaki, J.-I.8
Hirota, S.9
Kitamura, Y.10
Kitsukawa, T.11
Fujisawa, H.12
Klagsbrun, M.13
Hori, M.14
-
40
-
-
34547959043
-
Angiomotin regulates endothelial cell migration during embryonic angiogenesis
-
DOI 10.1101/gad.432007
-
Aase K, Ernkvist M, Ebarasi L, et al. Angiomotin regulates endothelial cell migration during embryonic angiogenesis. Genes Dev. 2007;21(16): 2055-2068. (Pubitemid 47267291)
-
(2007)
Genes and Development
, vol.21
, Issue.16
, pp. 2055-2068
-
-
Aase, K.1
Ernkvist, M.2
Ebarasi, L.3
Jakobsson, L.4
Majumdar, A.5
Yi, C.6
Birot, O.7
Ming, Y.8
Kvanta, A.9
Edholm, D.10
Aspenstrom, P.11
Kissil, J.12
Claesson-Welsh, L.13
Shimono, A.14
Holmgren, L.15
-
41
-
-
33845994781
-
Protein phosphatase 6 down-regulates TAK1 kinase activation in the IL-1 signaling pathway
-
DOI 10.1074/jbc.M608155200
-
Kajino T, Ren H, Iemura S, et al. Protein phosphatase 6 down-regulates TAK1 kinase activation in the IL-1 signaling pathway. J Biol Chem. 2006; 281(52):39891-39896. (Pubitemid 46041792)
-
(2006)
Journal of Biological Chemistry
, vol.281
, Issue.52
, pp. 39891-39896
-
-
Kajino, T.1
Ren, H.2
Iemura, S.-I.3
Natsume, T.4
Stefansson, B.5
Brautigan, D.L.6
Matsumoto, K.7
Ninomiya-Tsuji, J.8
-
42
-
-
0346243941
-
Role of the TAB2-related protein TAB3 in IL-1 and TNF signaling
-
DOI 10.1093/emboj/cdg605
-
Ishitani T, Takaesu G, Ninomiya-Tsuji J, et al. Role of the TAB2-related protein TAB3 in IL-1 and TNF signaling. EMBO J. 2003;22(23):6277-6288. (Pubitemid 37522585)
-
(2003)
EMBO Journal
, vol.22
, Issue.23
, pp. 6277-6288
-
-
Ishitani, T.1
Takaesu, G.2
Ninomiya-Tsuji, J.3
Shibuya, H.4
Gaynor, R.B.5
Matsumoto, K.6
-
43
-
-
0037903145
-
A resorcylic acid lactone, 5Z-7-oxozeaenol, prevents inflammation by inhibiting the catalytic activity of TAK1 MAPK kinase kinase
-
DOI 10.1074/jbc.M207453200
-
Ninomiya-Tsuji J, Kajino T, Ono K, et al. A resorcylic acid lactone, 5Z-7-oxozeaenol, prevents inflammation by inhibiting the catalytic activity of TAK1 MAPK kinase kinase. J. Biol. Chem. 2003; 278(20):18485-18490. (Pubitemid 36799472)
-
(2003)
Journal of Biological Chemistry
, vol.278
, Issue.20
, pp. 18485-18490
-
-
Ninomiya-Tsuji, J.1
Kajino, T.2
Ono, K.3
Ohtomo, T.4
Matsumoto, M.5
Shiina, M.6
Mihara, M.7
Tsuchiya, M.8
Matsumoto, K.9
-
44
-
-
80052667572
-
Pericytes promote endothelial cell survival through induction of autocrine VEGF-A signaling and Bcl-w expression
-
Franco M, Roswall P, Cortez E, Hanahan D, Pietras K. Pericytes promote endothelial cell survival through induction of autocrine VEGF-A signaling and Bcl-w expression. Blood. 2011; 118(10):2906-2917.
-
(2011)
Blood
, vol.118
, Issue.10
, pp. 2906-2917
-
-
Franco, M.1
Roswall, P.2
Cortez, E.3
Hanahan, D.4
Pietras, K.5
-
45
-
-
33750576996
-
NF-kappaB regulation of endothelial cell function during LPS-induced toxemia and cancer
-
DOI 10.1172/JCI27392
-
Kisseleva T, Song L, Vorontchikhina M, et al. NF-kappaB regulation of endothelial cell function during LPS-induced toxemia and cancer. J Clin Invest. 2006;116(11):2955-2963. (Pubitemid 44684480)
-
(2006)
Journal of Clinical Investigation
, vol.116
, Issue.11
, pp. 2955-2963
-
-
Kisseleva, T.1
Song, L.2
Vorontchikhina, M.3
Feirt, N.4
Kitajewski, J.5
Schindler, C.6
-
46
-
-
79956277581
-
IKKβ regulates essential functions of the vascular endothelium through kinase-dependent and -independent pathways
-
Ashida N, Senbanerjee S, Kodama S, et al. IKKβ regulates essential functions of the vascular endothelium through kinase-dependent and -independent pathways. Nat Commun. 2011;2: 318.
-
(2011)
Nat Commun
, vol.2
, pp. 318
-
-
Ashida, N.1
Senbanerjee, S.2
Kodama, S.3
|