-
1
-
-
77956404377
-
Eaten alive: A history ofmacroautophagy
-
20811353
-
Yang Z, Klionsky DJ. Eaten alive: a history ofmacroautophagy. Nat Cell Biol 2010; 12: 814-22; PMID: 20811353; http://dx.doi.org/10.1038/ncb0910-814
-
(2010)
Nat Cell Biol
, vol.12
, pp. 814-822
-
-
Yang, Z.1
Klionsky, D.J.2
-
2
-
-
81055144784
-
Autophagy: Renovation of cells and tissues
-
22078875
-
Mizushima N, KomatsuM. Autophagy: renovation of cells and tissues. Cell 2011; 147: 728-41; PMID: 22078875; http://dx.doi.org/10.1016/j.cell.2011.10.026
-
(2011)
Cell
, vol.147
, pp. 728-741
-
-
Mizushima, N.1
Komatsu, M.2
-
3
-
-
84886797274
-
Autophagy in infection, inflammation and immunity
-
24064518
-
Deretic V, Saitoh T, Akira S. Autophagy in infection, inflammation and immunity. Nat Rev Immunol 2013; 13: 722-37; PMID: 24064518; http://dx.doi.org/10.1038/ nri3532
-
(2013)
Nat Rev Immunol
, vol.13
, pp. 722-737
-
-
Deretic, V.1
Saitoh, T.2
Akira, S.3
-
4
-
-
78751672975
-
Autophagy in immunity and inflammation
-
21248839
-
Levine B, MizushimaN, VirginHW. Autophagy in immunity and inflammation. Nature 2011; 469: 323-35; PMID: 21248839; http://dx.doi.org/10.1038/nature09782
-
(2011)
Nature
, vol.469
, pp. 323-335
-
-
Levine, B.1
Mizushima, N.2
Virgin, H.W.3
-
5
-
-
12844275079
-
Endogenous MHC class II processing of a viral nuclear antigen after autophagy
-
15591165
-
Paludan C, Schmid D, Landthaler M, Vockerodt M, Kube D, Tuschl T, Münz C. Endogenous MHC class II processing of a viral nuclear antigen after autophagy. Science 2005; 307: 593-6; PMID: 15591165; http://dx. doi.org/10.1126/science.1104904
-
(2005)
Science
, vol.307
, pp. 593-596
-
-
Paludan, C.1
Schmid, D.2
Landthaler, M.3
Vockerodt, M.4
Kube, D.5
Tuschl, T.6
Münz, C.7
-
6
-
-
77249112669
-
Antigen processing via autophagy-not only for MHC class II presentation anymore?
-
20149615
-
Munz C. Antigen processing via autophagy-not only for MHC class II presentation anymore? Curr Opin Immunol 2010; 22: 89-93; PMID: 20149615; http:// dx.doi.org/10.1016/j.coi.2010.01.016
-
(2010)
Curr Opin Immunol
, vol.22
, pp. 89-93
-
-
Munz, C.1
-
7
-
-
84865279637
-
The contribution of autophagy to lymphocyte survival and homeostasis
-
22889223
-
McLeod IX, Jia W, He YW. The contribution of autophagy to lymphocyte survival and homeostasis. Immunol Rev 2012; 249: 195-204; PMID: 22889223; http://dx.doi.org/10.1111/j.1600-065X.2012.01143.x
-
(2012)
Immunol Rev
, vol.249
, pp. 195-204
-
-
McLeod, I.X.1
Jia, W.2
He, Y.W.3
-
8
-
-
84872348186
-
Macroautophagy in T lymphocyte development and function
-
22566906
-
He MX, McLeod IX, Jia W, He YW. Macroautophagy in T lymphocyte development and function. Front Immunol 2012; 3: 22; PMID: 22566906
-
(2012)
Front Immunol
, vol.3
, pp. 22
-
-
He, M.X.1
McLeod, I.X.2
Jia, W.3
He, Y.W.4
-
9
-
-
78650643194
-
Macroautophagy regulates energy metabolism during effector T cell activation
-
21059894
-
Hubbard VM, Valdor R, Patel B, Singh R, Cuervo AM, Macian F. Macroautophagy regulates energy metabolism during effector T cell activation. J Immunol 2010; 185: 7349-57; PMID: 21059894; http://dx. doi.org/10.4049/jimmunol.1000576
-
(2010)
J Immunol
, vol.185
, pp. 7349-7357
-
-
Hubbard, V.M.1
Valdor, R.2
Patel, B.3
Singh, R.4
Cuervo, A.M.5
Macian, F.6
-
10
-
-
84911103917
-
Autophagy is essential for effector CD8(+) T cell survival and memory formation
-
25362489
-
Xu X, Araki K, Li S, Han JH, Ye L, TanWG, Konieczny BT, Bruinsma MW, Martinez J, Pearce EL, et al. Autophagy is essential for effector CD8(+) T cell survival and memory formation. Nat Immunol 2014; 15: 1152-61; PMID: 25362489; http://dx.doi.org/10.1038/ni.3025
-
(2014)
Nat Immunol
, vol.15
, pp. 1152-1161
-
-
Xu, X.1
Araki, K.2
Li, S.3
Han, J.H.4
Ye, L.5
Tan, W.G.6
Konieczny, B.T.7
Bruinsma, M.W.8
Martinez, J.9
Pearce, E.L.10
-
11
-
-
84928489717
-
Autophagy is a critical regulator of memory CD8(+) T cell formation
-
25385531
-
Puleston DJ, Zhang H, Powell TJ, Lipina E, Sims S, Panse I, Watson AS, Cerundolo V, Townsend AR, Klenerman P, et al. Autophagy is a critical regulator of memory CD8(+) T cell formation. Elife 2014; 3: e03706 (1-21); PMID: 25385531
-
(2014)
Elife
, vol.3
-
-
Puleston, D.J.1
Zhang, H.2
Powell, T.J.3
Lipina, E.4
Sims, S.5
Panse, I.6
Watson, A.S.7
Cerundolo, V.8
Townsend, A.R.9
Klenerman, P.10
-
12
-
-
84931442269
-
Invariant NKT Cells Require Autophagy To Coordinate Proliferation and Survival Signals during Differentiation
-
25926673
-
Pei B, Zhao M, Miller BC, Vela JL, Bruinsma MW, Virgin HW, Kronenberg M. Invariant NKT Cells Require Autophagy To Coordinate Proliferation and Survival Signals during Differentiation. J Immunol 2015; 194: 5872-84; PMID: 25926673; http://dx.doi. org/10.4049/jimmunol.1402154
-
(2015)
J Immunol
, vol.194
, pp. 5872-5884
-
-
Pei, B.1
Zhao, M.2
Miller, B.C.3
Vela, J.L.4
Bruinsma, M.W.5
Virgin, H.W.6
Kronenberg, M.7
-
13
-
-
84924388189
-
Essential role for autophagy during invariantNKT cell development
-
25512546
-
SalioM, PulestonDJ, Mathan TS, ShepherdD, Stranks AJ, Adamopoulou E, Veerapen N, Besra GS, Hollander GA, Simon AK, et al. Essential role for autophagy during invariantNKT cell development. Proc Natl Acad SciUS A 2014; 111: E5678-87; PMID: 25512546; http://dx.doi.org/10.1073/pnas.1413935112
-
(2014)
Proc Natl Acad SciUS A
, vol.111
, pp. E5678-E5687
-
-
Salio, M.1
Puleston, D.J.2
Mathan, T.S.3
Shepherd, D.4
Stranks, A.J.5
Adamopoulou, E.6
Veerapen, N.7
Besra, G.S.8
Hollander, G.A.9
Simon, A.K.10
-
14
-
-
84862976890
-
Selective autophagy of the adaptor protein Bcl10 modulates T cell receptor activation of NF-kappaB
-
22658522
-
Paul S, Kashyap AK, Jia W, He YW, Schaefer BC. Selective autophagy of the adaptor protein Bcl10 modulates T cell receptor activation of NF-kappaB. Immunity 2012; 36: 947-58; PMID: 22658522; http://dx.doi. org/10.1016/j.immuni.2012.04.008
-
(2012)
Immunity
, vol.36
, pp. 947-958
-
-
Paul, S.1
Kashyap, A.K.2
Jia, W.3
He, Y.W.4
Schaefer, B.C.5
-
15
-
-
34548700796
-
Unveiling the roles of autophagy in innate and adaptive immunity
-
17767194
-
Levine B, Deretic V. Unveiling the roles of autophagy in innate and adaptive immunity. Nat Rev Immunol 2007; 7: 767-77; PMID: 17767194; http://dx.doi.org/10.1038/nri2161
-
(2007)
Nat Rev Immunol
, vol.7
, pp. 767-777
-
-
Levine, B.1
Deretic, V.2
-
16
-
-
64249123646
-
Autophagy is essential for mitochondrial clearance in mature T lymphocytes
-
19299702
-
Pua HH, Guo J, KomatsuM, He YW. Autophagy is essential for mitochondrial clearance in mature T lymphocytes. J Immunol 2009; 182: 4046-55; PMID: 19299702; http://dx. doi.org/10.4049/jimmunol.0801143
-
(2009)
J Immunol
, vol.182
, pp. 4046-4055
-
-
Pua, H.H.1
Guo, J.2
Komatsu, M.3
He, Y.W.4
-
17
-
-
79251534395
-
Autophagy regulates endoplasmic reticulum homeostasis and calcium mobilization in T lymphocytes
-
21191072
-
Jia W, Pua HH, Li QJ, He YW. Autophagy regulates endoplasmic reticulum homeostasis and calcium mobilization in T lymphocytes. J Immunol 2011; 186: 1564-74; PMID: 21191072; http://dx.doi.org/10.4049/ jimmunol.1001822
-
(2011)
J Immunol
, vol.186
, pp. 1564-1574
-
-
Jia, W.1
Pua, H.H.2
Li, Q.J.3
He, Y.W.4
-
18
-
-
79955540204
-
Temporal regulation of intracellular organelle homeostasis in T lymphocytes by autophagy
-
21421856
-
Jia W, He YW. Temporal regulation of intracellular organelle homeostasis in T lymphocytes by autophagy. J Immunol 2011; 186: 5313-22; PMID: 21421856; http://dx.doi.org/10.4049/jimmunol.1002404
-
(2011)
J Immunol
, vol.186
, pp. 5313-5322
-
-
Jia, W.1
He, Y.W.2
-
19
-
-
33846461678
-
A critical role for the autophagy gene Atg5 in T cell survival and proliferation
-
17190837
-
Pua HH, Dzhagalov I, Chuck M, Mizushima N, He YW. A critical role for the autophagy gene Atg5 in T cell survival and proliferation. J Exp Med 2007; 204: 25-31; PMID: 17190837; http://dx.doi.org/10.1084/jem.20061303
-
(2007)
J Exp Med
, vol.204
, pp. 25-31
-
-
Pua, H.H.1
Dzhagalov, I.2
Chuck, M.3
Mizushima, N.4
He, Y.W.5
-
20
-
-
84877832630
-
Impaired autophagy, defective T cell homeostasis, and a wasting syndrome in mice with a T cell-specific deletion of vps34
-
23596309
-
Parekh VV, Wu L, Boyd KL, Williams JA, Gaddy JA, Olivares-Villagomez D, Cover TL, Zong WX, Zhang J, Van Kaer L. Impaired autophagy, defective T cell homeostasis, and a wasting syndrome in mice with a T cell-specific deletion of vps34. J Immunol 2013; 190: 5086-101; PMID: 23596309; http://dx.doi.org/10.4049/jimmunol.1202071
-
(2013)
J Immunol
, vol.190
, pp. 5086-5101
-
-
Parekh, V.V.1
Wu, L.2
Boyd, K.L.3
Williams, J.A.4
Gaddy, J.A.5
Olivares-Villagomez, D.6
Cover, T.L.7
Zong, W.X.8
Zhang, J.9
Van Kaer, L.10
-
21
-
-
67650216238
-
Identification of Atg5-dependent transcriptional changes and increases in mitochondrial mass in Atg5-deficient T lymphocytes
-
19276668
-
Stephenson LM, Miller BC, Ng A, Eisenberg J, Zhao Z, Cadwell K, Graham DB, Mizushima NN, Xavier R, Virgin HW, et al. Identification of Atg5-dependent transcriptional changes and increases in mitochondrial mass in Atg5-deficient T lymphocytes. Autophagy 2009; 5: 625-35; PMID: 19276668; http://dx.doi.org/10.4161/auto.5.5.8133
-
(2009)
Autophagy
, vol.5
, pp. 625-635
-
-
Stephenson, L.M.1
Miller, B.C.2
Ng, A.3
Eisenberg, J.4
Zhao, Z.5
Cadwell, K.6
Graham, D.B.7
Mizushima, N.N.8
Xavier, R.9
Virgin, H.W.10
-
22
-
-
0033564697
-
CDK inhibitors: Positive and negative regulators of G1-phase progression
-
10385618
-
Sherr CJ, Roberts JM. CDK inhibitors: positive and negative regulators of G1-phase progression. Genes Dev 1999; 13: 1501-12; PMID: 10385618; http://dx. doi.org/10.1101/gad.13.12.1501
-
(1999)
Genes Dev
, vol.13
, pp. 1501-1512
-
-
Sherr, C.J.1
Roberts, J.M.2
-
23
-
-
0842324788
-
Recycling the cell cycle: Cyclins revisited
-
14744433
-
Murray AW. Recycling the cell cycle: cyclins revisited. Cell 2004; 116: 221-34; PMID: 14744433; http://dx. doi.org/10.1016/S0092-8674(03)01080-8
-
(2004)
Cell
, vol.116
, pp. 221-234
-
-
Murray, A.W.1
-
24
-
-
77956318018
-
In CD28-costimulated human naive CD4+ T cells, I-kappaB kinase controls the expression of cell cycle regulatory proteins via interleukin-2-independent mechanisms
-
20465575
-
Lupino E, Buccinna B, Ramondetti C, Lomartire A, De Marco G, Ricotti E, Tovo PA, RinaudoMT, PiccininiM. In CD28-costimulated human naive CD4+ T cells, I-kappaB kinase controls the expression of cell cycle regulatory proteins via interleukin-2-independent mechanisms. Immunology 2010; 131: 231-41; PMID: 20465575; http://dx.doi. org/10.1111/j.1365-2567.2010.03297.x
-
(2010)
Immunology
, vol.131
, pp. 231-241
-
-
Lupino, E.1
Buccinna, B.2
Ramondetti, C.3
Lomartire, A.4
De Marco, G.5
Ricotti, E.6
Tovo, P.A.7
Rinaudo, M.T.8
Piccinini, M.9
-
25
-
-
38849187293
-
CDK inhibitors: Cell cycle regulators and beyond
-
18267085
-
Besson A, Dowdy SF, Roberts JM. CDK inhibitors: cell cycle regulators and beyond. Dev Cell 2008; 14: 159-69; PMID: 18267085; http://dx.doi.org/10.1016/j.devcel.2008.01.013
-
(2008)
Dev Cell
, vol.14
, pp. 159-169
-
-
Besson, A.1
Dowdy, S.F.2
Roberts, J.M.3
-
26
-
-
0035877767
-
CDKN1B regulates T cell proliferation
-
11297537
-
Mohapatra S, Agrawal D, Pledger WJ. CDKN1B regulates T cell proliferation. J Biol Chem 2001; 276: 21976-83; PMID: 11297537; http://dx.doi.org/10.1074/jbc.M009788200
-
(2001)
J Biol Chem
, vol.276
, pp. 21976-21983
-
-
Mohapatra, S.1
Agrawal, D.2
Pledger, W.J.3
-
27
-
-
0029024015
-
Role of the ubiquitin-proteasome pathway in regulating abundance of the cyclin-dependent kinase inhibitor p27
-
7624798
-
Pagano M, Tam SW, Theodoras AM, Beer-Romero P, Del Sal G, Chau V, Yew PR, Draetta GF, Rolfe M. Role of the ubiquitin-proteasome pathway in regulating abundance of the cyclin-dependent kinase inhibitor p27. Science 1995; 269: 682-5; PMID: 7624798; http://dx.doi.org/10.1126/science.7624798
-
(1995)
Science
, vol.269
, pp. 682-685
-
-
Pagano, M.1
Tam, S.W.2
Theodoras, A.M.3
Beer-Romero, P.4
Del Sal, G.5
Chau, V.6
Yew, P.R.7
Draetta, G.F.8
Rolfe, M.9
-
28
-
-
0034568688
-
The F-box protein family
-
REVIEWS3002, PMID: 11178263
-
Kipreos ET, PaganoM. The F-box protein family.Genome Biol 2000; 1: REVIEWS3002; PMID: 11178263; http://dx. doi.org/10.1186/gb-2000-1-5-reviews3002
-
(2000)
Genome Biol
, vol.1
-
-
Kipreos, E.T.1
Pagano, M.2
-
29
-
-
0033176887
-
SKP2 is required for ubiquitin-mediated degradation of the CDK inhibitor p27
-
10559916
-
Carrano AC, Eytan E, Hershko A, Pagano M. SKP2 is required for ubiquitin-mediated degradation of the CDK inhibitor p27. Nat Cell Biol 1999; 1: 193-9; PMID: 10559916; http://dx.doi.org/10.1038/12013
-
(1999)
Nat Cell Biol
, vol.1
, pp. 193-199
-
-
Carrano, A.C.1
Eytan, E.2
Hershko, A.3
Pagano, M.4
-
30
-
-
0033174070
-
p45SKP2 promotes CDKN1B degradation and induces S phase in quiescent cells
-
10559918
-
Sutterluty H, Chatelain E, Marti A, Wirbelauer C, Senften M, Muller U, Krek W. p45SKP2 promotes CDKN1B degradation and induces S phase in quiescent cells. Nat Cell Biol 1999; 1: 207-14; PMID: 10559918; http://dx.doi.org/10.1038/12027
-
(1999)
Nat Cell Biol
, vol.1
, pp. 207-214
-
-
Sutterluty, H.1
Chatelain, E.2
Marti, A.3
Wirbelauer, C.4
Senften, M.5
Muller, U.6
Krek, W.7
-
31
-
-
0035092687
-
The cell-cycle regulatory protein Cks1 is required for SCF(Skp2)-mediated ubiquitinylation of p27
-
11231585
-
Ganoth D, Bornstein G, Ko TK, Larsen B, Tyers M, Pagano M, Hershko A. The cell-cycle regulatory protein Cks1 is required for SCF(Skp2)-mediated ubiquitinylation of p27. Nat Cell Biol 2001; 3: 321-4; PMID: 11231585; http://dx.doi.org/10.1038/35060126
-
(2001)
Nat Cell Biol
, vol.3
, pp. 321-324
-
-
Ganoth, D.1
Bornstein, G.2
Ko, T.K.3
Larsen, B.4
Tyers, M.5
Pagano, M.6
Hershko, A.7
-
32
-
-
2342650733
-
Skp2-mediated degradation of p27 regulates progression into mitosis
-
15130491
-
Nakayama K, Nagahama H, Minamishima YA, Miyake S, Ishida N, Hatakeyama S, Kitagawa M, Iemura S, Natsume T, Nakayama KI. Skp2-mediated degradation of p27 regulates progression into mitosis. Dev Cell 2004; 6: 661-72; PMID: 15130491; http://dx.doi.org/10.1016/S1534-5807(04)00131-5
-
(2004)
Dev Cell
, vol.6
, pp. 661-672
-
-
Nakayama, K.1
Nagahama, H.2
Minamishima, Y.A.3
Miyake, S.4
Ishida, N.5
Hatakeyama, S.6
Kitagawa, M.7
Iemura, S.8
Natsume, T.9
Nakayama, K.I.10
-
33
-
-
10344260649
-
Cytoplasmic ubiquitin ligase KPC regulates proteolysis of p27(Kip1) at G1 phase
-
15531880
-
Kamura T, Hara T, Matsumoto M, Ishida N, Okumura F, Hatakeyama S, Yoshida M, Nakayama K, Nakayama KI. Cytoplasmic ubiquitin ligase KPC regulates proteolysis of p27(Kip1) at G1 phase. Nat Cell Biol 2004; 6: 1229-35; PMID: 15531880; http://dx.doi. org/10.1038/ncb1194
-
(2004)
Nat Cell Biol
, vol.6
, pp. 1229-1235
-
-
Kamura, T.1
Hara, T.2
Matsumoto, M.3
Ishida, N.4
Okumura, F.5
Hatakeyama, S.6
Yoshida, M.7
Nakayama, K.8
Nakayama, K.I.9
-
34
-
-
84869762838
-
p27(Kip1) negatively regulates the magnitude and persistence of CD4 T cell memory
-
23071285
-
Jatzek A, Tejera MM, Singh A, Sullivan JA, Plisch EH, Suresh M. p27(Kip1) negatively regulates the magnitude and persistence of CD4 T cell memory. J Immunol 2012; 189: 5119-28; PMID: 23071285; http://dx. doi.org/10.4049/jimmunol.1201482
-
(2012)
J Immunol
, vol.189
, pp. 5119-5128
-
-
Jatzek, A.1
Tejera, M.M.2
Singh, A.3
Sullivan, J.A.4
Plisch, E.H.5
Suresh, M.6
-
35
-
-
77957824896
-
Regulation of memory CD8 T-cell differentiation by cyclin-dependent kinase inhibitor CDKN1B
-
20805358
-
Singh A, Jatzek A, Plisch EH, Srinivasan R, Svaren J, Suresh M. Regulation of memory CD8 T-cell differentiation by cyclin-dependent kinase inhibitor CDKN1B. Mol Cell Biol 2010; 30: 5145-59; PMID: 20805358; http://dx.doi.org/10.1128/MCB.01045-09
-
(2010)
Mol Cell Biol
, vol.30
, pp. 5145-5159
-
-
Singh, A.1
Jatzek, A.2
Plisch, E.H.3
Srinivasan, R.4
Svaren, J.5
Suresh, M.6
-
36
-
-
33750123428
-
A pathway regulated by cell cycle inhibitor CDKN1B and checkpoint inhibitor Smad3 is involved in the induction of T cell tolerance
-
17013388
-
Li L, Iwamoto Y, Berezovskaya A, Boussiotis VA. A pathway regulated by cell cycle inhibitor CDKN1B and checkpoint inhibitor Smad3 is involved in the induction of T cell tolerance. Nat Immunol 2006; 7: 1157-65; PMID: 17013388; http://dx.doi.org/10.1038/ni1398
-
(2006)
Nat Immunol
, vol.7
, pp. 1157-1165
-
-
Li, L.1
Iwamoto, Y.2
Berezovskaya, A.3
Boussiotis, V.A.4
-
37
-
-
75649112322
-
Autophagy and lymphocyte homeostasis
-
19802561
-
Pua HH, He YW. Autophagy and lymphocyte homeostasis. Curr Top Microbiol Immunol 2009; 335: 85-105; PMID: 19802561
-
(2009)
Curr Top Microbiol Immunol
, vol.335
, pp. 85-105
-
-
Pua, H.H.1
He, Y.W.2
-
38
-
-
84872725220
-
Transfer of CD8+ T cell memory using Bcl-2 as a marker
-
23269245
-
Dunkle A, Dzhagalov I, Gordy C, He YW. Transfer of CD8+ T cell memory using Bcl-2 as a marker. J Immunol 2013; 190: 940-7; PMID: 23269245; http://dx.doi. org/10.4049/jimmunol.1103481
-
(2013)
J Immunol
, vol.190
, pp. 940-947
-
-
Dunkle, A.1
Dzhagalov, I.2
Gordy, C.3
He, Y.W.4
-
39
-
-
18944372860
-
The antiapoptotic protein Bcl-xL is dispensable for the development of effector and memory T lymphocytes
-
15905539
-
Zhang N, He YW. The antiapoptotic protein Bcl-xL is dispensable for the development of effector and memory T lymphocytes. J Immunol 2005; 174: 6967-73; PMID: 15905539; http://dx.doi.org/10.4049/ jimmunol.174.11.6967
-
(2005)
J Immunol
, vol.174
, pp. 6967-6973
-
-
Zhang, N.1
He, Y.W.2
-
40
-
-
60749098440
-
Inhibition of CDKN1B gene transcription by mitogens
-
19158484
-
Bagui TK, Cui D, Roy S, Mohapatra S, Shor AC, Ma L, Pledger WJ. Inhibition of CDKN1B gene transcription by mitogens. Cell Cycle 2009; 8: 115-24; PMID: 19158484; http://dx.doi.org/10.4161/cc.8.1.7527
-
(2009)
Cell Cycle
, vol.8
, pp. 115-124
-
-
Bagui, T.K.1
Cui, D.2
Roy, S.3
Mohapatra, S.4
Shor, A.C.5
Ma, L.6
Pledger, W.J.7
-
41
-
-
33645064841
-
IL-7 promotes T cell proliferation through destabilization of CDKN1B
-
16492801
-
Li WQ, Jiang Q, Aleem E, Kaldis P, Khaled AR, Durum SK. IL-7 promotes T cell proliferation through destabilization of CDKN1B. J Exp Med 2006; 203: 573-82; PMID: 16492801; http://dx.doi.org/10.1084/jem.20051520
-
(2006)
J Exp Med
, vol.203
, pp. 573-582
-
-
Li, W.Q.1
Jiang, Q.2
Aleem, E.3
Kaldis, P.4
Khaled, A.R.5
Durum, S.K.6
-
42
-
-
84870980670
-
Ubiquitination and selective autophagy
-
22722335
-
Shaid S, Brandts CH, Serve H, Dikic I. Ubiquitination and selective autophagy. Cell Death Differ 2013; 20: 21-30; PMID: 22722335; http://dx.doi.org/10.1038/cdd.2012.72
-
(2013)
Cell Death Differ
, vol.20
, pp. 21-30
-
-
Shaid, S.1
Brandts, C.H.2
Serve, H.3
Dikic, I.4
-
43
-
-
65549142204
-
A role for ubiquitin in selective autophagy
-
19450525
-
Kirkin V, McEwan DG, Novak I, Dikic I. A role for ubiquitin in selective autophagy. Mol Cell 2009; 34: 259-69; PMID: 19450525; http://dx.doi.org/10.1016/j.molcel.2009.04.026
-
(2009)
Mol Cell
, vol.34
, pp. 259-269
-
-
Kirkin, V.1
McEwan, D.G.2
Novak, I.3
Dikic, I.4
-
44
-
-
0035921821
-
A mouse knock-in model exposes sequential proteolytic pathways that regulate CDKN1B in G1 and S phase
-
11565035
-
Malek NP, Sundberg H, McGrew S, Nakayama K, Kyriakides TR, Roberts JM. A mouse knock-in model exposes sequential proteolytic pathways that regulate CDKN1B in G1 and S phase. Nature 2001; 413: 323-7; PMID: 11565035; http://dx.doi.org/10.1038/35095083
-
(2001)
Nature
, vol.413
, pp. 323-327
-
-
Malek, N.P.1
Sundberg, H.2
McGrew, S.3
Nakayama, K.4
Kyriakides, T.R.5
Roberts, J.M.6
-
45
-
-
0033135878
-
Ubiquitination of p27 is regulated by Cdk-dependent phosphorylation and trimeric complex formation
-
10323868
-
Montagnoli A, Fiore F, Eytan E, Carrano AC, Draetta GF, Hershko A, Pagano M. Ubiquitination of p27 is regulated by Cdk-dependent phosphorylation and trimeric complex formation. Genes Dev 1999; 13: 1181-9; PMID: 10323868; http://dx.doi.org/10.1101/ gad.13.9.1181
-
(1999)
Genes Dev
, vol.13
, pp. 1181-1189
-
-
Montagnoli, A.1
Fiore, F.2
Eytan, E.3
Carrano, A.C.4
Draetta, G.F.5
Hershko, A.6
Pagano, M.7
-
46
-
-
33846321913
-
Cdk-inhibitory activity and stability of CDKN1B are directly regulated by oncogenic tyrosine kinases
-
17254966
-
Grimmler M, Wang Y, Mund T, Cilensek Z, Keidel EM, Waddell MB, Jäkel H, Kullmann M, Kriwacki RW, Hengst L. Cdk-inhibitory activity and stability of CDKN1B are directly regulated by oncogenic tyrosine kinases. Cell 2007; 128: 269-80; PMID: 17254966; http://dx.doi.org/10.1016/j.cell.2006.11.047
-
(2007)
Cell
, vol.128
, pp. 269-280
-
-
Grimmler, M.1
Wang, Y.2
Mund, T.3
Cilensek, Z.4
Keidel, E.M.5
Waddell, M.B.6
Jäkel, H.7
Kullmann, M.8
Kriwacki, R.W.9
Hengst, L.10
-
47
-
-
0035803593
-
p27 cytoplasmic localization is regulated by phosphorylation on Ser10 and is not a prerequisite for its proteolysis
-
11726503
-
Rodier G, Montagnoli A, Di Marcotullio L, Coulombe P, Draetta GF, Pagano M, Meloche S. p27 cytoplasmic localization is regulated by phosphorylation on Ser10 and is not a prerequisite for its proteolysis. EMBO J 2001; 20: 6672-82; PMID: 11726503; http://dx.doi. org/10.1093/emboj/20.23.6672
-
(2001)
EMBO J
, vol.20
, pp. 6672-6682
-
-
Rodier, G.1
Montagnoli, A.2
Di Marcotullio, L.3
Coulombe, P.4
Draetta, G.F.5
Pagano, M.6
Meloche, S.7
-
48
-
-
0035966104
-
Degradation of p27(Kip1) at the G(0)-G(1) transition mediated by a Skp2-independent ubiquitination pathway
-
11682478
-
Hara T, Kamura T, Nakayama K, Oshikawa K, Hatakeyama S. Degradation of p27(Kip1) at the G(0)-G(1) transition mediated by a Skp2-independent ubiquitination pathway. J Biol Chem 2001; 276: 48937-43; PMID: 11682478; http://dx.doi.org/10.1074/jbc. M107274200
-
(2001)
J Biol Chem
, vol.276
, pp. 48937-48943
-
-
Hara, T.1
Kamura, T.2
Nakayama, K.3
Oshikawa, K.4
Hatakeyama, S.5
-
49
-
-
27144534830
-
Role of the UBL-UBA protein KPC2 in degradation of p27 at G1 phase of the cell cycle
-
16227581
-
Hara T, Kamura T, Kotoshiba S, Takahashi H, Fujiwara K, Onoyama I, Shirakawa M, Mizushima N, Nakayama KI. Role of the UBL-UBA protein KPC2 in degradation of p27 at G1 phase of the cell cycle. Mol Cell Biol 2005; 25: 9292-303; PMID: 16227581; http://dx.doi.org/10.1128/MCB.25.21.9292-9303.2005
-
(2005)
Mol Cell Biol
, vol.25
, pp. 9292-9303
-
-
Hara, T.1
Kamura, T.2
Kotoshiba, S.3
Takahashi, H.4
Fujiwara, K.5
Onoyama, I.6
Shirakawa, M.7
Mizushima, N.8
Nakayama, K.I.9
-
50
-
-
77955795702
-
Tumor suppressor p27(Kip1) undergoes endolysosomal degradation through its interaction with sorting nexin 6
-
20228253
-
Fuster JJ, Gonzalez JM, Edo MD, Viana R, Boya P, Cervera J, Verges M, Rivera J, Andrés V. Tumor suppressor p27(Kip1) undergoes endolysosomal degradation through its interaction with sorting nexin 6. FASEB J 2010; 24: 2998-3009; PMID: 20228253; http://dx.doi.org/10.1096/fj.09-138255
-
(2010)
FASEB J
, vol.24
, pp. 2998-3009
-
-
Fuster, J.J.1
Gonzalez, J.M.2
Edo, M.D.3
Viana, R.4
Boya, P.5
Cervera, J.6
Verges, M.7
Rivera, J.8
Andrés, V.9
-
51
-
-
38349114036
-
Lysine 63-linked ubiquitination promotes the formation and autophagic clearance of protein inclusions associated with neurodegenerative diseases
-
17981811
-
Tan JM, Wong ES, Kirkpatrick DS, Pletnikova O, Ko HS, Tay SP, Ho MW, Troncoso J, Gygi SP, Lee MK, et al. Lysine 63-linked ubiquitination promotes the formation and autophagic clearance of protein inclusions associated with neurodegenerative diseases. Hum Mol Genet 2008; 17: 431-9; PMID: 17981811; http://dx. doi.org/10.1093/hmg/ddm320
-
(2008)
Hum Mol Genet
, vol.17
, pp. 431-439
-
-
Tan, J.M.1
Wong, E.S.2
Kirkpatrick, D.S.3
Pletnikova, O.4
Ko, H.S.5
Tay, S.P.6
Ho, M.W.7
Troncoso, J.8
Gygi, S.P.9
Lee, M.K.10
-
52
-
-
47149092405
-
Targeting the p27 E3 ligase SCF(Skp2) results in p27- and Skp2-mediated cell-cycle arrest and activation of autophagy
-
18305219
-
Chen Q, Xie W, Kuhn DJ, Voorhees PM, Lopez-Girona A, Mendy D, Corral LG, Krenitsky VP, Xu W, Moutouh-de Parseval L, et al. Targeting the p27 E3 ligase SCF(Skp2) results in p27- and Skp2-mediated cell-cycle arrest and activation of autophagy. Blood 2008; 111: 4690-9; PMID: 18305219; http://dx.doi. org/10.1182/blood-2007-09-112904
-
(2008)
Blood
, vol.111
, pp. 4690-4699
-
-
Chen, Q.1
Xie, W.2
Kuhn, D.J.3
Voorhees, P.M.4
Lopez-Girona, A.5
Mendy, D.6
Corral, L.G.7
Krenitsky, V.P.8
Xu, W.9
Moutouh-De Parseval, L.10
-
53
-
-
33947250696
-
The energy sensing LKB1-AMPK pathway regulates p27(kip1) phosphorylation mediating the decision to enter autophagy or apoptosis
-
17237771
-
Liang J, Shao SH, Xu ZX, Hennessy B, Ding Z, Larrea M, Kondo S, Dumont DJ, Gutterman JU, Walker CL, et al. The energy sensing LKB1-AMPK pathway regulates p27(kip1) phosphorylation mediating the decision to enter autophagy or apoptosis. Nat Cell Biol 2007; 9: 218-24; PMID: 17237771; http://dx.doi.org/10.1038/ncb1537
-
(2007)
Nat Cell Biol
, vol.9
, pp. 218-224
-
-
Liang, J.1
Shao, S.H.2
Xu, Z.X.3
Hennessy, B.4
Ding, Z.5
Larrea, M.6
Kondo, S.7
Dumont, D.J.8
Gutterman, J.U.9
Walker, C.L.10
-
54
-
-
84908207126
-
Chaperone- mediated autophagy regulates T cell responses through targeted degradation of negative regulators of T cell activation
-
25263126
-
Valdor R, Mocholi E, Botbol Y, Guerrero-Ros I, Chandra D,Koga H,GravekampC,Cuervo AM,Macian F. Chaperone- mediated autophagy regulates T cell responses through targeted degradation of negative regulators of T cell activation. Nat Immunol 2014; 15: 1046-54; PMID: 25263126; http://dx.doi.org/10.1038/ni.3003
-
(2014)
Nat Immunol
, vol.15
, pp. 1046-1054
-
-
Valdor, R.1
Mocholi, E.2
Botbol, Y.3
Guerrero-Ros, I.4
Chandra, D.5
Koga, H.6
Gravekamp, C.7
Cuervo, A.M.8
Macian, F.9
-
55
-
-
21044455137
-
Impairment of starvation-induced and constitutive autophagy in Atg7-deficient mice
-
15866887
-
Komatsu M, Waguri S, Ueno T, Iwata J, Murata S, Tanida I, Ezaki J, Mizushima N, Ohsumi Y, Uchiyama Y, et al. Impairment of starvation-induced and constitutive autophagy in Atg7-deficient mice. J Cell Biol 2005; 169: 425-34; PMID: 15866887; http://dx.doi. org/10.1083/jcb.200412022
-
(2005)
J Cell Biol
, vol.169
, pp. 425-434
-
-
Komatsu, M.1
Waguri, S.2
Ueno, T.3
Iwata, J.4
Murata, S.5
Tanida, I.6
Ezaki, J.7
Mizushima, N.8
Ohsumi, Y.9
Uchiyama, Y.10
-
56
-
-
84857844643
-
Mammalian Atg2 proteins are essential for autophagosome formation and important for regulation of size and distribution of lipid droplets
-
22219374
-
Velikkakath AK, Nishimura T, Oita E, Ishihara N, Mizushima N. Mammalian Atg2 proteins are essential for autophagosome formation and important for regulation of size and distribution of lipid droplets. Mol Biol Cell 2012; 23: 896-909; PMID: 22219374; http:// dx.doi.org/10.1091/mbc.E11-09-0785
-
(2012)
Mol Biol Cell
, vol.23
, pp. 896-909
-
-
Velikkakath, A.K.1
Nishimura, T.2
Oita, E.3
Ishihara, N.4
Mizushima, N.5
|