-
1
-
-
77956106755
-
Autophagy, a guardian against neurodegeneration
-
PMID:20188203
-
García-Arencibia M, Hochfeld WE, Toh PP, Rubinsztein DC. Autophagy, a guardian against neurodegeneration. Semin Cell Dev Biol 2010; 21: 691-8; PMID:20188203; http://dx.doi.org/10.1016/j.semcdb.2010.02.008
-
(2010)
Semin Cell Dev Biol
, vol.21
, pp. 691-698
-
-
García-Arencibia, M.1
Hochfeld, W.E.2
Toh, P.P.3
Rubinsztein, D.C.4
-
2
-
-
77951750296
-
Selective autophagy in cancer development and therapy
-
PMID:20424122
-
Dikic I, Johansen T, Kirkin V. Selective autophagy in cancer development and therapy. Cancer Res 2010; 70:3431-4; PMID:20424122; http://dx.doi.org/10. 1158/0008-5472.CAN-09-4027
-
(2010)
Cancer Res
, vol.70
, pp. 3431-3434
-
-
Dikic, I.1
Johansen, T.2
Kirkin, V.3
-
3
-
-
64049114864
-
Autophagy is an essential component of Drosophila immunity against vesicular stomatitis virus
-
PMID:19362021
-
Shelly S, Lukinova N, Bambina S, Berman A, Cherry S. Autophagy is an essential component of Drosophila immunity against vesicular stomatitis virus. Immunity 2009; 30:588-98; PMID:19362021; http://dx.doi.org/10.1016/j.immuni. 2009.02.009
-
(2009)
Immunity
, vol.30
, pp. 588-598
-
-
Shelly, S.1
Lukinova, N.2
Bambina, S.3
Berman, A.4
Cherry, S.5
-
4
-
-
77951256153
-
Autophagy in infection
-
PMID:20116986
-
Deretic V. Autophagy in infection. Curr Opin Cell Biol 2010; 22:252-62; PMID:20116986; http://dx.doi.org/10.1016/j.ceb.2009.12.009
-
(2010)
Curr Opin Cell Biol
, vol.22
, pp. 252-262
-
-
Deretic, V.1
-
5
-
-
47849094901
-
Autophagic control of listeria through intracellular innate immune recognition in drosophila
-
PMID:18604211
-
Yano T, Mita S, Ohmori H, Oshima Y, Fujimoto Y, Ueda R, et al. Autophagic control of listeria through intracellular innate immune recognition in drosophila. Nat Immunol 2008; 9:908-16; PMID:18604211; http://dx.doi.org/10. 1038/ni.1634
-
(2008)
Nat Immunol
, vol.9
, pp. 908-916
-
-
Yano, T.1
Mita, S.2
Ohmori, H.3
Oshima, Y.4
Fujimoto, Y.5
Ueda, R.6
-
6
-
-
76449083770
-
The molecular mechanism of mitochondria autophagy in yeast
-
PMID:20487284
-
Kanki T, Klionsky DJ. The molecular mechanism of mitochondria autophagy in yeast. Mol Microbiol 2010; 75:795-800; PMID:20487284; http://dx.doi.org/10. 1111/j.1365-2958.2009.07035.x
-
(2010)
Mol Microbiol
, vol.75
, pp. 795-800
-
-
Kanki, T.1
Klionsky, D.J.2
-
7
-
-
72649089533
-
Autophagy induction by the pathogen receptor CD46
-
PMID:19837375
-
Joubert PE, Meiffren G, Grégoire IP, Pontini G, Richetta C, Flacher M, et al. Autophagy induction by the pathogen receptor CD46. Cell Host Microbe 2009; 6:354-66; PMID:19837375; http://dx.doi.org/10.1016/j.chom.2009.09. 006
-
(2009)
Cell Host Microbe
, vol.6
, pp. 354-366
-
-
Joubert, P.E.1
Meiffren, G.2
Grégoire, I.P.3
Pontini, G.4
Richetta, C.5
Flacher, M.6
-
8
-
-
77956179625
-
Regulation of macroautophagy in Saccharomyces cerevisiae
-
PMID:20359542
-
Inoue Y, Klionsky DJ. Regulation of macroautophagy in Saccharomyces cerevisiae. Semin Cell Dev Biol 2010; 21:664-70; PMID:20359542; http://dx.doi.org/10.1016/j.semcdb.2010.03.009
-
(2010)
Semin Cell Dev Biol
, vol.21
, pp. 664-670
-
-
Inoue, Y.1
Klionsky, D.J.2
-
9
-
-
34848886914
-
Autophagosome formation: Core machinery and adaptations
-
PMID:17909521
-
Xie Z, Klionsky DJ. Autophagosome formation: core machinery and adaptations. Nat Cell Biol 2007; 9: 1102-9; PMID:17909521; http://dx.doi.org/10. 1038/ncb1007-1102
-
(2007)
Nat Cell Biol
, vol.9
, pp. 1102-1109
-
-
Xie, Z.1
Klionsky, D.J.2
-
10
-
-
39049194057
-
The evolutionarily conserved domain of Beclin 1 is required for Vps34 binding, autophagy and tumor suppressor function
-
PMID:16874027
-
Furuya N, Yu J, Byfield M, Pattingre S, Levine B. The evolutionarily conserved domain of Beclin 1 is required for Vps34 binding, autophagy and tumor suppressor function. Autophagy 2005; 1:46-52; PMID:16874027; http://dx.doi.org/10.4161/auto.1.1.1542
-
(2005)
Autophagy
, vol.1
, pp. 46-52
-
-
Furuya, N.1
Yu, J.2
Byfield, M.3
Pattingre, S.4
Levine, B.5
-
11
-
-
32244442749
-
Functional specificity of the mammalian Beclin-Vps34 PI 3-kinase complex in macroautophagy versus endocytosis and lysosomal enzyme trafficking
-
PMID:16390869
-
Zeng X, Overmeyer JH, Maltese WA. Functional specificity of the mammalian Beclin-Vps34 PI 3-kinase complex in macroautophagy versus endocytosis and lysosomal enzyme trafficking. J Cell Sci 2006; 119:259-70; PMID:16390869; http://dx.doi.org/10.1242/jcs.02735
-
(2006)
J Cell Sci
, vol.119
, pp. 259-270
-
-
Zeng, X.1
Overmeyer, J.H.2
Maltese, W.A.3
-
12
-
-
77951214016
-
Mammalian autophagy: Core molecular machinery and signaling regulation
-
PMID:20034776
-
Yang Z, Klionsky DJ. Mammalian autophagy: core molecular machinery and signaling regulation. Curr Opin Cell Biol 2010; 22:124-31; PMID:20034776; http://dx.doi.org/10.1016/j.ceb.2009.11.014
-
(2010)
Curr Opin Cell Biol
, vol.22
, pp. 124-131
-
-
Yang, Z.1
Klionsky, D.J.2
-
13
-
-
4344563878
-
Role and regulation of starvation-induced autophagy in the Drosophila fat body
-
PMID:15296714
-
Scott RC, Schuldiner O, Neufeld TP. Role and regulation of starvation-induced autophagy in the Drosophila fat body. Dev Cell 2004; 7:167-78; PMID:15296714; http://dx.doi.org/10.1016/j.devcel.2004.07.009
-
(2004)
Dev Cell
, vol.7
, pp. 167-178
-
-
Scott, R.C.1
Schuldiner, O.2
Neufeld, T.P.3
-
14
-
-
65549142204
-
A role for ubiquitin in selective autophagy
-
PMID: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
-
15
-
-
34548259958
-
p62/SQSTM1 binds directly to Atg8/LC3 to facilitate degradation of ubiquitinated protein aggregates by autophagy
-
PMID:17580304
-
Pankiv S, Clausen TH, Lamark T, Brech A, Bruun JA, Outzen H, et al. p62/SQSTM1 binds directly to Atg8/LC3 to facilitate degradation of ubiquitinated protein aggregates by autophagy. J Biol Chem 2007; 282:24131-45; PMID:17580304; http://dx.doi.org/10.1074/jbc.M702824200
-
(2007)
J Biol Chem
, vol.282
, pp. 24131-24145
-
-
Pankiv, S.1
Clausen, T.H.2
Lamark, T.3
Brech, A.4
Bruun, J.A.5
Outzen, H.6
-
16
-
-
27944504351
-
p62/SQSTM1 forms protein aggregates degraded by autophagy and has a protective effect on huntingtin-induced cell death
-
PMID:16286508
-
Bjørkøy G, Lamark T, Brech A, Outzen H, Perander M, Overvatn A, et al. p62/SQSTM1 forms protein aggregates degraded by autophagy and has a protective effect on huntingtin-induced cell death. J Cell Biol 2005; 171:603-14; PMID:16286508; http://dx.doi.org/10.1083/jcb.200507002
-
(2005)
J Cell Biol
, vol.171
, pp. 603-614
-
-
Bjørkøy, G.1
Lamark, T.2
Brech, A.3
Outzen, H.4
Perander, M.5
Overvatn, A.6
-
17
-
-
67650234499
-
NBR1 cooperates with p62 in selective autophagy of ubiquitinated targets
-
PMID: 19398892
-
Kirkin V, Lamark T, Johansen T, Dikic I. NBR1 cooperates with p62 in selective autophagy of ubiquitinated targets. Autophagy 2009; 5:732-3; PMID: 19398892; http://dx.doi.org/10.4161/auto.5.5.8566
-
(2009)
Autophagy
, vol.5
, pp. 732-733
-
-
Kirkin, V.1
Lamark, T.2
Johansen, T.3
Dikic, I.4
-
18
-
-
79952348751
-
The ubiquitin-binding adaptor proteins p62/SQSTM1 and NDP52 are recruited independently to bacteria-associated microdomains to target Salmonella to the autophagy pathway
-
PMID:21079414
-
Cemma M, Kim PK, Brumell JH. The ubiquitin-binding adaptor proteins p62/SQSTM1 and NDP52 are recruited independently to bacteria-associated microdomains to target Salmonella to the autophagy pathway. Autophagy 2011; 7:341-5; PMID:21079414; http://dx.doi.org/10.4161/auto.7.3.14046
-
(2011)
Autophagy
, vol.7
, pp. 341-345
-
-
Cemma, M.1
Kim, P.K.2
Brumell, J.H.3
-
19
-
-
77952914565
-
p62/SQSTM1 and ALFY interact to facilitate the formation of p62 bodies/ALIS and their degradation by autophagy
-
PMID:20168092
-
Clausen TH, Lamark T, Isakson P, Finley K, Larsen KB, Brech A, et al. p62/SQSTM1 and ALFY interact to facilitate the formation of p62 bodies/ALIS and their degradation by autophagy. Autophagy 2010; 6:330-44; PMID:20168092; http://dx.doi.org/10.4161/auto.6.3.11226
-
(2010)
Autophagy
, vol.6
, pp. 330-344
-
-
Clausen, T.H.1
Lamark, T.2
Isakson, P.3
Finley, K.4
Larsen, K.B.5
Brech, A.6
-
20
-
-
77950903972
-
The selective macroautophagic degradation of aggregated proteins requires the PI3P-binding protein Alfy
-
PMID:20417604
-
Filimonenko M, Isakson P, Finley KD, Anderson M, Jeong H, Melia TJ, et al. The selective macroautophagic degradation of aggregated proteins requires the PI3P-binding protein Alfy. Mol Cell 2010; 38:265-79; PMID:20417604; http://dx.doi.org/10.1016/j.molcel.2010.04.007
-
(2010)
Mol Cell
, vol.38
, pp. 265-279
-
-
Filimonenko, M.1
Isakson, P.2
Finley, K.D.3
Anderson, M.4
Jeong, H.5
Melia, T.J.6
-
21
-
-
75949130828
-
PINK1/Parkin-mediated mitophagy is dependent on VDAC1 and p62/SQSTM1
-
PMID: 20098416
-
Geisler S, Holmström KM, Skujat D, Fiesel FC, Rothfuss OC, Kahle PJ, et al. PINK1/Parkin-mediated mitophagy is dependent on VDAC1 and p62/SQSTM1. Nat Cell Biol 2010; 12:119-31; PMID: 20098416; http://dx.doi.org/10.1038/ncb2012
-
(2010)
Nat Cell Biol
, vol.12
, pp. 119-131
-
-
Geisler, S.1
Holmström, K.M.2
Skujat, D.3
Fiesel, F.C.4
Rothfuss, O.C.5
Kahle, P.J.6
-
22
-
-
28344456279
-
A genomic and functional inventory of deubiquitinating enzymes
-
PMID:16325574
-
Nijman SM, Luna-Vargas MP, Velds A, Brummelkamp TR, Dirac AM, Sixma TK, et al. A genomic and functional inventory of deubiquitinating enzymes. Cell 2005; 123:773-86; PMID:16325574; http://dx.doi.org/10.1016/j.cell.2005.11.007
-
(2005)
Cell
, vol.123
, pp. 773-786
-
-
Nijman, S.M.1
Luna-Vargas, M.P.2
Velds, A.3
Brummelkamp, T.R.4
Dirac, A.M.5
Sixma, T.K.6
-
23
-
-
72649083654
-
The Drosophila ubiquitin-specific protease dUSP36/Scny targets IMD to prevent constitutive immune signaling
-
PMID:19837371
-
Thevenon D, Engel E, Avet-Rochex A, Gottar M, Bergeret E, Tricoire H, et al. The Drosophila ubiquitin-specific protease dUSP36/Scny targets IMD to prevent constitutive immune signaling. Cell Host Microbe 2009; 6:309-20; PMID:19837371; http://dx.doi.org/10.1016/j.chom.2009.09.007
-
(2009)
Cell Host Microbe
, vol.6
, pp. 309-320
-
-
Thevenon, D.1
Engel, E.2
Avet-Rochex, A.3
Gottar, M.4
Bergeret, E.5
Tricoire, H.6
-
24
-
-
64049086956
-
The deubiquitinase emperor's thumb is a regulator of apoptosis in Drosophila
-
PMID:19217892
-
Ribaya JP, Ranmuthu M, Copeland J, Boyarskiy S, Blair AP, Hay B, et al. The deubiquitinase emperor's thumb is a regulator of apoptosis in Drosophila. Dev Biol 2009; 329:25-35; PMID:19217892; http://dx.doi.org/10.1016/j.ydbio.2009. 02.005
-
(2009)
Dev Biol
, vol.329
, pp. 25-35
-
-
Ribaya, J.P.1
Ranmuthu, M.2
Copeland, J.3
Boyarskiy, S.4
Blair, A.P.5
Hay, B.6
-
25
-
-
58149398016
-
Drosophila stem cells share a common requirement for the histone H2B ubiquitin protease scrawny
-
PMID:19039105
-
Buszczak M, Paterno S, Spradling AC. Drosophila stem cells share a common requirement for the histone H2B ubiquitin protease scrawny. Science 2009; 323:248-51; PMID:19039105; http://dx.doi.org/10.1126/science.1165678
-
(2009)
Science
, vol.323
, pp. 248-251
-
-
Buszczak, M.1
Paterno, S.2
Spradling, A.C.3
-
26
-
-
33845874899
-
Direct induction of autophagy by Atg1 inhibits cell growth and induces apoptotic cell death
-
PMID: 17208179
-
Scott RC, Juhász G, Neufeld TP. Direct induction of autophagy by Atg1 inhibits cell growth and induces apoptotic cell death. Curr Biol 2007; 17:1-11; PMID: 17208179; http://dx.doi.org/10.1016/j.cub.2006.10.053
-
(2007)
Curr Biol
, vol.17
, pp. 1-11
-
-
Scott, R.C.1
Juhász, G.2
Neufeld, T.P.3
-
27
-
-
0035341376
-
Mosaic analysis with a repressible cell marker (MARCM) for Drosophila neural development
-
PMID:11311363
-
Lee T, Luo L. Mosaic analysis with a repressible cell marker (MARCM) for Drosophila neural development. Trends Neurosci 2001; 24:251-4; PMID:11311363; http://dx.doi.org/10.1016/S0166-2236(00)01791-4
-
(2001)
Trends Neurosci
, vol.24
, pp. 251-254
-
-
Lee, T.1
Luo, L.2
-
28
-
-
4344608793
-
Programmed autophagy in the Drosophila fat body is induced by ecdysone through regulation of the PI3K pathway
-
PMID:15296715
-
Rusten TE, Lindmo K, Juhász G, Sass M, Seglen PO, Brech A, et al. Programmed autophagy in the Drosophila fat body is induced by ecdysone through regulation of the PI3K pathway. Dev Cell 2004; 7:179-92; PMID:15296715; http://dx.doi.org/10.1016/j.devcel.2004.07.005
-
(2004)
Dev Cell
, vol.7
, pp. 179-192
-
-
Rusten, T.E.1
Lindmo, K.2
Juhász, G.3
Sass, M.4
Seglen, P.O.5
Brech, A.6
-
29
-
-
59349105233
-
Monitoring autophagy in mammalian cultured cells through the dynamics of LC3
-
PMID:19200872
-
Kimura S, Fujita N, Noda T, Yoshimori T. Monitoring autophagy in mammalian cultured cells through the dynamics of LC3. Methods Enzymol 2009; 452:1-12; PMID:19200872; http://dx.doi.org/10.1016/S0076-6879(08)03601-X
-
(2009)
Methods Enzymol
, vol.452
, pp. 1-12
-
-
Kimura, S.1
Fujita, N.2
Noda, T.3
Yoshimori, T.4
-
30
-
-
0034312315
-
Regulation of cellular growth by the Drosophila target of rapamycin dTOR
-
PMID:11069888
-
Zhang H, Stallock JP, Ng JC, Reinhard C, Neufeld TP. Regulation of cellular growth by the Drosophila target of rapamycin dTOR. Genes Dev 2000; 14:2712-24; PMID:11069888; http://dx.doi.org/10.1101/gad.835000
-
(2000)
Genes Dev
, vol.14
, pp. 2712-2724
-
-
Zhang, H.1
Stallock, J.P.2
Ng, J.C.3
Reinhard, C.4
Neufeld, T.P.5
-
31
-
-
77950668890
-
The AAA+ ATPase ATAD3A controls mitochondrial dynamics at the interface of the inner and outer membranes
-
PMID:20154147
-
Gilquin B, Taillebourg E, Cherradi N, Hubstenberger A, Gay O, Merle N, et al. The AAA+ ATPase ATAD3A controls mitochondrial dynamics at the interface of the inner and outer membranes. Mol Cell Biol 2010; 30:1984-96; PMID:20154147; http://dx.doi.org/10.1128/MCB.00007-10
-
(2010)
Mol Cell Biol
, vol.30
, pp. 1984-1996
-
-
Gilquin, B.1
Taillebourg, E.2
Cherradi, N.3
Hubstenberger, A.4
Gay, O.5
Merle, N.6
-
32
-
-
44149127993
-
The class III PI(3)K Vps34 promotes autophagy and endocytosis but not TOR signaling in Drosophila
-
PMID: 18474623
-
Juhász G, Hill JH, Yan Y, Sass M, Baehrecke EH, Backer JM, et al. The class III PI(3)K Vps34 promotes autophagy and endocytosis but not TOR signaling in Drosophila. J Cell Biol 2008; 181:655-66; PMID: 18474623; http://dx.doi.org/10.1083/jcb.200712051
-
(2008)
J Cell Biol
, vol.181
, pp. 655-666
-
-
Juhász, G.1
Hill, J.H.2
Yan, Y.3
Sass, M.4
Baehrecke, E.H.5
Backer, J.M.6
-
33
-
-
0036742659
-
Inhibition of cellular growth and proliferation by dTOR overexpression in Drosophila
-
PMID:12324961
-
Hennig KM, Neufeld TP. Inhibition of cellular growth and proliferation by dTOR overexpression in Drosophila. Genesis 2002; 34:107-10; PMID:12324961; http://dx.doi.org/10.1002/gene.10139
-
(2002)
Genesis
, vol.34
, pp. 107-110
-
-
Hennig, K.M.1
Neufeld, T.P.2
-
34
-
-
0031040449
-
Induction of Drosophila eye development by decapentaplegic
-
PMID:9053304
-
Pignoni F, Zipursky SL. Induction of Drosophila eye development by decapentaplegic. Development 1997; 124:271-8; PMID:9053304
-
(1997)
Development
, vol.124
, pp. 271-278
-
-
Pignoni, F.1
Zipursky, S.L.2
-
35
-
-
0036185928
-
The Drosophila gene taranis encodes a novel trithorax group member potentially linked to the cell cycle regulatory apparatus
-
PMID:11861561
-
Calgaro S, Boube M, Cribbs DL, Bourbon HM. The Drosophila gene taranis encodes a novel trithorax group member potentially linked to the cell cycle regulatory apparatus. Genetics 2002; 160:547-60; PMID:11861561
-
(2002)
Genetics
, vol.160
, pp. 547-560
-
-
Calgaro, S.1
Boube, M.2
Cribbs, D.L.3
Bourbon, H.M.4
-
36
-
-
18744372992
-
The Drosophila atypical protein kinase C-ref(2)p complex constitutes a conserved module for signaling in the toll pathway
-
PMID: 12446795
-
Avila A, Silverman N, Diaz-Meco MT, Moscat J. The Drosophila atypical protein kinase C-ref(2)p complex constitutes a conserved module for signaling in the toll pathway. Mol Cell Biol 2002; 22:8787-95; PMID: 12446795; http://dx.doi.org/10.1128/MCB.22.24.8787-8795.2002
-
(2002)
Mol Cell Biol
, vol.22
, pp. 8787-8795
-
-
Avila, A.1
Silverman, N.2
Diaz-Meco, M.T.3
Moscat, J.4
-
37
-
-
34548585433
-
Control of sigma virus multiplication by the ref(2)P gene of Drosophila melanogaster: An in vivo study of the PB1 domain of Ref(2)P
-
PMID:17409092
-
Carré-Mlouka A, Gaumer S, Gay P, Petitjean AM, Coulondre C, Dru P, et al. Control of sigma virus multiplication by the ref(2)P gene of Drosophila melanogaster: an in vivo study of the PB1 domain of Ref(2)P. Genetics 2007; 176:409-19; PMID:17409092; http://dx.doi.org/10.1534/genetics.106.063826
-
(2007)
Genetics
, vol.176
, pp. 409-419
-
-
Carré-Mlouka, A.1
Gaumer, S.2
Gay, P.3
Petitjean, A.M.4
Coulondre, C.5
Dru, P.6
-
38
-
-
41549151641
-
Ref(2)P, the Drosophila melanogaster homologue of mammalian p62, is required for the formation of protein aggregates in adult brain
-
PMID:18347073
-
Nezis IP, Simonsen A, Sagona AP, Finley K, Gaumer S, Contamine D, et al. Ref(2)P, the Drosophila melanogaster homologue of mammalian p62, is required for the formation of protein aggregates in adult brain. J Cell Biol 2008; 180:1065-71; PMID:18347073; http://dx.doi.org/10.1083/jcb.200711108
-
(2008)
J Cell Biol
, vol.180
, pp. 1065-1071
-
-
Nezis, I.P.1
Simonsen, A.2
Sagona, A.P.3
Finley, K.4
Gaumer, S.5
Contamine, D.6
-
39
-
-
0029014415
-
Localization of domains within the Drosophila Ref(2)P protein involved in the intracellular control of sigma rhabdovirus multiplication
-
PMID:7769706
-
Wyers F, Petitjean AM, Dru P, Gay P, Contamine D. Localization of domains within the Drosophila Ref(2)P protein involved in the intracellular control of sigma rhabdovirus multiplication. J Virol 1995; 69:4463-70; PMID:7769706
-
(1995)
J Virol
, vol.69
, pp. 4463-4470
-
-
Wyers, F.1
Petitjean, A.M.2
Dru, P.3
Gay, P.4
Contamine, D.5
-
40
-
-
0024462112
-
Molecular analysis of ref(2)P, a Drosophila gene implicated in sigma rhabdovirus multiplication and necessary for male fertility
-
PMID:2510997
-
Dezelee S, Bras F, Contamine D, Lopez-Ferber M, Segretain D, Teninges D. Molecular analysis of ref(2)P, a Drosophila gene implicated in sigma rhabdovirus multiplication and necessary for male fertility. EMBO J 1989; 8:3437-46; PMID:2510997
-
(1989)
EMBO J
, vol.8
, pp. 3437-3446
-
-
Dezelee, S.1
Bras, F.2
Contamine, D.3
Lopez-Ferber, M.4
Segretain, D.5
Teninges, D.6
-
41
-
-
33745192802
-
Suppression of basal autophagy in neural cells causes neurodegenerative disease in mice
-
PMID: 16625204
-
Hara T, Nakamura K, Matsui M, Yamamoto A, Nakahara Y, Suzuki-Migishima R, et al. Suppression of basal autophagy in neural cells causes neurodegenerative disease in mice. Nature 2006; 441:885-9; PMID: 16625204; http://dx.doi.org/10. 1038/nature04724
-
(2006)
Nature
, vol.441
, pp. 885-889
-
-
Hara, T.1
Nakamura, K.2
Matsui, M.3
Yamamoto, A.4
Nakahara, Y.5
Suzuki-Migishima, R.6
-
42
-
-
33646800306
-
Loss of autophagy in the central nervous system causes neurodegeneration in mice
-
PMID:16625205
-
Komatsu M, Waguri S, Chiba T, Murata S, Iwata J, Tanida I, et al. Loss of autophagy in the central nervous system causes neurodegeneration in mice. Nature 2006; 441:880-4; PMID:16625205; http://dx.doi.org/10.1038/nature04723
-
(2006)
Nature
, vol.441
, pp. 880-884
-
-
Komatsu, M.1
Waguri, S.2
Chiba, T.3
Murata, S.4
Iwata, J.5
Tanida, I.6
-
43
-
-
66149152311
-
Nucleolar structure and function are regulated by the deubiquitylating enzyme USP36
-
PMID: 19208757
-
Endo A, Matsumoto M, Inada T, Yamamoto A, Nakayama KI, Kitamura N, et al. Nucleolar structure and function are regulated by the deubiquitylating enzyme USP36. J Cell Sci 2009; 122:678-86; PMID: 19208757; http://dx.doi.org/10.1242/ jcs.044461
-
(2009)
J Cell Sci
, vol.122
, pp. 678-686
-
-
Endo, A.1
Matsumoto, M.2
Inada, T.3
Yamamoto, A.4
Nakayama, K.I.5
Kitamura, N.6
-
44
-
-
43049157518
-
The Drosophila peptidoglycan recognition protein PGRP-LF blocks PGRP-LC and IMD/JNK pathway activation
-
PMID:18474356
-
Maillet F, Bischoff V, Vignal C, Hoffmann J, Royet J. The Drosophila peptidoglycan recognition protein PGRP-LF blocks PGRP-LC and IMD/JNK pathway activation. Cell Host Microbe 2008; 3:293-303; PMID:18474356; http://dx.doi.org/10.1016/j.chom.2008.04.002
-
(2008)
Cell Host Microbe
, vol.3
, pp. 293-303
-
-
Maillet, F.1
Bischoff, V.2
Vignal, C.3
Hoffmann, J.4
Royet, J.5
-
45
-
-
78349276861
-
Autophagy is activated by proteasomal inhibition and involved in aggresome clearance in cultured astrocytes
-
PMID:20645412
-
Jänen SB, Chaachouay H, Richter-Landsberg C. Autophagy is activated by proteasomal inhibition and involved in aggresome clearance in cultured astrocytes. Glia 2010; 58:1766-74; PMID:20645412; http://dx.doi.org/10.1002/ glia.21047
-
(2010)
Glia
, vol.58
, pp. 1766-1774
-
-
Jänen, S.B.1
Chaachouay, H.2
Richter-Landsberg, C.3
-
46
-
-
79955470830
-
Trimming of ubiquitin chains by proteasome-associated deubiquitinating enzymes
-
PMID:20823120
-
Lee MJ, Lee BH, Hanna J, King RW, Finley D. Trimming of ubiquitin chains by proteasome-associated deubiquitinating enzymes. Mol Cell Proteomics 2011; 10:R110.003871; PMID:20823120; http://dx.doi.org/10.1074/mcp.R110.003871
-
(2011)
Mol Cell Proteomics
, vol.10
-
-
Lee, M.J.1
Lee, B.H.2
Hanna, J.3
King, R.W.4
Finley, D.5
-
47
-
-
77954898129
-
A genome-wide siRNA screen reveals multiple mTORC1 independent signaling pathways regulating autophagy under normal nutritional conditions
-
PMID:20627085
-
Lipinski MM, Hoffman G, Ng A, Zhou W, Py BF, Hsu E, et al. A genome-wide siRNA screen reveals multiple mTORC1 independent signaling pathways regulating autophagy under normal nutritional conditions. Dev Cell 2010; 18:1041-52; PMID:20627085; http://dx.doi.org/10.1016/j.devcel.2010.05.005
-
(2010)
Dev Cell
, vol.18
, pp. 1041-1052
-
-
Lipinski, M.M.1
Hoffman, G.2
Ng, A.3
Zhou, W.4
Py, B.F.5
Hsu, E.6
-
48
-
-
33745235142
-
TOR coordinates bulk and targeted endocytosis in the Drosophila melanogaster fat body to regulate cell growth
-
PMID:16785324
-
Hennig KM, Colombani J, Neufeld TP. TOR coordinates bulk and targeted endocytosis in the Drosophila melanogaster fat body to regulate cell growth. J Cell Biol 2006; 173:963-74; PMID:16785324; http://dx.doi.org/10.1083/jcb. 200511140
-
(2006)
J Cell Biol
, vol.173
, pp. 963-974
-
-
Hennig, K.M.1
Colombani, J.2
Neufeld, T.P.3
|