-
1
-
-
84857685527
-
Cilia functions in development
-
Drummond IA, (2012) Cilia functions in development. Curr Opin Cell Biol 24: 24–30. doi: 10.1016/j.ceb.2011.12.007 22226236
-
(2012)
Curr Opin Cell Biol
, vol.24
, pp. 24-30
-
-
Drummond, I.A.1
-
2
-
-
79959991643
-
Keeping the balance between proliferation and differentiation: the primary cilium
-
Irigoin F, Badano JL, (2011) Keeping the balance between proliferation and differentiation: the primary cilium. Curr Genomics 12: 285–297. doi: 10.2174/138920211795860134 22131874
-
(2011)
Curr Genomics
, vol.12
, pp. 285-297
-
-
Irigoin, F.1
Badano, J.L.2
-
4
-
-
67649833788
-
The primary cilium as a complex signaling center
-
Berbari NF, O’Connor AK, Haycraft CJ, Yoder BK, (2009) The primary cilium as a complex signaling center. Curr Biol 19: R526–R535. doi: 10.1016/j.cub.2009.05.025 19602418
-
(2009)
Curr Biol
, vol.19
, pp. 526-535
-
-
Berbari, N.F.1
O’Connor, A.K.2
Haycraft, C.J.3
Yoder, B.K.4
-
5
-
-
77953895859
-
Trafficking to ciliary membrane: how to get across the periciliary diffusion barrier?
-
Nachury MV, Seeley ES, Jin H, (2010) Trafficking to ciliary membrane: how to get across the periciliary diffusion barrier? Annu Rev Cell Dev Biol 26: 59–87. doi: 10.1146/annurev.cellbio.042308.113337 19575670
-
(2010)
Annu Rev Cell Dev Biol
, vol.26
, pp. 59-87
-
-
Nachury, M.V.1
Seeley, E.S.2
Jin, H.3
-
6
-
-
84883454373
-
Assembling a primary cilium
-
Kim S, Dynlacht BD, (2013) Assembling a primary cilium. Curr Opin Cell Biol 25: 506–511. doi: 10.1016/j.ceb.2013.04.011 23747070
-
(2013)
Curr Opin Cell Biol
, vol.25
, pp. 506-511
-
-
Kim, S.1
Dynlacht, B.D.2
-
7
-
-
79953032655
-
Ciliogenesis: building the cell’s antenna
-
Ishikawa H, Marshall WF, (2011) Ciliogenesis: building the cell’s antenna. Nat Rev Mol Cell Biol 12: 222–234 doi: 10.1038/nrm3085 21427764
-
(2011)
Nat Rev Mol Cell Biol
, vol.12
, pp. 222-234
-
-
Ishikawa, H.1
Marshall, W.F.2
-
8
-
-
84877908359
-
PCM1 recruits Plk1 to the pericentriolar matrix to promote primary cilia disassembly before mitotic entry
-
Wang G, Chen Q, Zhang X, Zhang B, Zhuo X, et al. (2013) PCM1 recruits Plk1 to the pericentriolar matrix to promote primary cilia disassembly before mitotic entry. J Cell Sci 126: 1355–1365. doi: 10.1242/jcs.114918 23345402
-
(2013)
J Cell Sci
, vol.126
, pp. 1355-1365
-
-
Wang, G.1
Chen, Q.2
Zhang, X.3
Zhang, B.4
Zhuo, X.5
-
9
-
-
34250758641
-
HEF1-dependent Aurora A activation induces disassembly of the primary cilium
-
Pugacheva EN, Jablonski SA, Hartman TR, Henske EP, Golemis EA, (2007) HEF1-dependent Aurora A activation induces disassembly of the primary cilium. Cell 129: 1351–1363. 17604723
-
(2007)
Cell
, vol.129
, pp. 1351-1363
-
-
Pugacheva, E.N.1
Jablonski, S.A.2
Hartman, T.R.3
Henske, E.P.4
Golemis, E.A.5
-
10
-
-
84863992161
-
Scoring a backstage pass: mechanisms of ciliogenesis and ciliary access
-
Garcia-Gonzalo FR, Reiter JF, (2012) Scoring a backstage pass: mechanisms of ciliogenesis and ciliary access. J Cell Biol 197: 697–709. doi: 10.1083/jcb.201111146 22689651
-
(2012)
J Cell Biol
, vol.197
, pp. 697-709
-
-
Garcia-Gonzalo, F.R.1
Reiter, J.F.2
-
11
-
-
79956193249
-
Regulating the transition from centriole to basal body
-
Kobayashi T, Dynlacht BD, (2011) Regulating the transition from centriole to basal body. J Cell Biol 193: 435–444. doi: 10.1083/jcb.201101005 21536747
-
(2011)
J Cell Biol
, vol.193
, pp. 435-444
-
-
Kobayashi, T.1
Dynlacht, B.D.2
-
12
-
-
84872140151
-
Trafficking in and to the primary cilium
-
Hsiao Y-C, Tuz K, Ferland RJ, (2012) Trafficking in and to the primary cilium. Cilia 1: 4. doi: 10.1186/2046-2530-1-4 23351793
-
(2012)
Cilia
, vol.1
, pp. 4
-
-
Hsiao, Y.-C.1
Tuz, K.2
Ferland, R.J.3
-
13
-
-
79958059534
-
Rab6, Rab8, and MICAL3 cooperate in controlling docking and fusion of exocytotic carriers
-
Grigoriev I, Yu KL, Martinez-Sanchez E, Serra-Marques A, Smal I, et al. (2011) Rab6, Rab8, and MICAL3 cooperate in controlling docking and fusion of exocytotic carriers. Curr Biol 21: 967–974. doi: 10.1016/j.cub.2011.04.030 21596566
-
(2011)
Curr Biol
, vol.21
, pp. 967-974
-
-
Grigoriev, I.1
Yu, K.L.2
Martinez-Sanchez, E.3
Serra-Marques, A.4
Smal, I.5
-
14
-
-
0036732902
-
A Rab8-specific GDP/GTP exchange factor is involved in actin remodeling and polarized membrane transport
-
Hattula K, Furuhjelm J, Arffman A, Peranen J, (2002) A Rab8-specific GDP/GTP exchange factor is involved in actin remodeling and polarized membrane transport. Mol Biol Cell 13: 3268–3280. 12221131
-
(2002)
Mol Biol Cell
, vol.13
, pp. 3268-3280
-
-
Hattula, K.1
Furuhjelm, J.2
Arffman, A.3
Peranen, J.4
-
15
-
-
68049105101
-
Rab GTPases as coordinators of vesicle traffic
-
Stenmark H, (2009) Rab GTPases as coordinators of vesicle traffic. Nat Rev Mol Cell Biol 10: 513–525. doi: 10.1038/nrm2728 19603039
-
(2009)
Nat Rev Mol Cell Biol
, vol.10
, pp. 513-525
-
-
Stenmark, H.1
-
16
-
-
84859582076
-
Posttranslational modifications of Rab GTPases help their insertion into membranes
-
Pylypenko O, Goud B, (2012) Posttranslational modifications of Rab GTPases help their insertion into membranes. Proc Natl Acad Sci U S A 109: 5555–5556. doi: 10.1073/pnas.1202494109 22451945
-
(2012)
Proc Natl Acad Sci U S A
, vol.109
, pp. 5555-5556
-
-
Pylypenko, O.1
Goud, B.2
-
17
-
-
34250012834
-
A core complex of BBS proteins cooperates with the GTPase Rab8 to promote ciliary membrane biogenesis
-
Nachury MV, Loktev AV, Zhang Q, Westlake CJ, Peranen J, et al. (2007) A core complex of BBS proteins cooperates with the GTPase Rab8 to promote ciliary membrane biogenesis. Cell 129: 1201–1213. 17574030
-
(2007)
Cell
, vol.129
, pp. 1201-1213
-
-
Nachury, M.V.1
Loktev, A.V.2
Zhang, Q.3
Westlake, C.J.4
Peranen, J.5
-
18
-
-
1842731730
-
Identification of a novel gene, DZIP (DAZ-interacting protein), that encodes a protein that interacts with DAZ (deleted in azoospermia) and is expressed in embryonic stem cells and germ cells
-
Moore FL, Jaruzelska J, Dorfman DM, Reijo-Pera RA, (2004) Identification of a novel gene, DZIP (DAZ-interacting protein), that encodes a protein that interacts with DAZ (deleted in azoospermia) and is expressed in embryonic stem cells and germ cells. Genomics 83: 834–843. 15081113
-
(2004)
Genomics
, vol.83
, pp. 834-843
-
-
Moore, F.L.1
Jaruzelska, J.2
Dorfman, D.M.3
Reijo-Pera, R.A.4
-
19
-
-
77954086015
-
Gli2a protein localization reveals a role for Iguana/DZIP1 in primary ciliogenesis and a dependence of Hedgehog signal transduction on primary cilia in the zebrafish
-
Kim HR, Richardson J, van Eeden F, Ingham PW, (2010) Gli2a protein localization reveals a role for Iguana/DZIP1 in primary ciliogenesis and a dependence of Hedgehog signal transduction on primary cilia in the zebrafish. BMC Biol 8: 65. doi: 10.1186/1741-7007-8-65 20487519
-
(2010)
BMC Biol
, vol.8
, pp. 65
-
-
Kim, H.R.1
Richardson, J.2
van Eeden, F.3
Ingham, P.W.4
-
20
-
-
75149127765
-
The iguana/DZIP1 protein is a novel component of the ciliogenic pathway essential for axonemal biogenesis
-
Tay SY, Yu X, Wong KN, Panse P, Ng CP, et al. (2010) The iguana/DZIP1 protein is a novel component of the ciliogenic pathway essential for axonemal biogenesis. Dev Dyn 239: 527–534. doi: 10.1002/dvdy.22199 20014402
-
(2010)
Dev Dyn
, vol.239
, pp. 527-534
-
-
Tay, S.Y.1
Yu, X.2
Wong, K.N.3
Panse, P.4
Ng, C.P.5
-
21
-
-
70450224641
-
The Zn finger protein Iguana impacts Hedgehog signaling by promoting ciliogenesis
-
Glazer AM, Wilkinson AW, Backer CB, Lapan SW, Gutzman JH, et al. (2010) The Zn finger protein Iguana impacts Hedgehog signaling by promoting ciliogenesis. Dev Biol 337: 148–156. doi: 10.1016/j.ydbio.2009.10.025 19852954
-
(2010)
Dev Biol
, vol.337
, pp. 148-156
-
-
Glazer, A.M.1
Wilkinson, A.W.2
Backer, C.B.3
Lapan, S.W.4
Gutzman, J.H.5
-
22
-
-
84885633427
-
Centrosomal protein DZIP1 regulates Hedgehog signaling by promoting cytoplasmic retention of transcription factor GLI3 and affecting ciliogenesis
-
Wang C, Low WC, Liu A, Wang B, (2013) Centrosomal protein DZIP1 regulates Hedgehog signaling by promoting cytoplasmic retention of transcription factor GLI3 and affecting ciliogenesis. J Biol Chem 288: 29518–29529. doi: 10.1074/jbc.M113.492066 23955340
-
(2013)
J Biol Chem
, vol.288
, pp. 29518-29529
-
-
Wang, C.1
Low, W.C.2
Liu, A.3
Wang, B.4
-
23
-
-
84873735792
-
Decoding the phosphorylation code in Hedgehog signal transduction
-
Chen Y, Jiang J, (2013) Decoding the phosphorylation code in Hedgehog signal transduction. Cell Res 23: 186–200. doi: 10.1038/cr.2013.10 23337587
-
(2013)
Cell Res
, vol.23
, pp. 186-200
-
-
Chen, Y.1
Jiang, J.2
-
24
-
-
0037442990
-
A role for glycogen synthase kinase-3 in mitotic spindle dynamics and chromosome alignment
-
Wakefield JG, Stephens DJ, Tavare JM, (2003) A role for glycogen synthase kinase-3 in mitotic spindle dynamics and chromosome alignment. J Cell Sci 116: 637–646. 12538764
-
(2003)
J Cell Sci
, vol.116
, pp. 637-646
-
-
Wakefield, J.G.1
Stephens, D.J.2
Tavare, J.M.3
-
25
-
-
0034612636
-
Requirement for glycogen synthase kinase-3beta in cell survival and NF-kappaB activation
-
Hoeflich KP, Luo J, Rubie EA, Tsao MS, Jin O, et al. (2000) Requirement for glycogen synthase kinase-3beta in cell survival and NF-kappaB activation. Nature 406: 86–90. 10894547
-
(2000)
Nature
, vol.406
, pp. 86-90
-
-
Hoeflich, K.P.1
Luo, J.2
Rubie, E.A.3
Tsao, M.S.4
Jin, O.5
-
26
-
-
34247863920
-
pVHL and GSK3beta are components of a primary cilium-maintenance signalling network
-
Thoma CR, Frew IJ, Hoerner CR, Montani M, Moch H, et al. (2007) pVHL and GSK3beta are components of a primary cilium-maintenance signalling network. Nat Cell Biol 9: 588–595. 17450132
-
(2007)
Nat Cell Biol
, vol.9
, pp. 588-595
-
-
Thoma, C.R.1
Frew, I.J.2
Hoerner, C.R.3
Montani, M.4
Moch, H.5
-
27
-
-
77958454221
-
Cep120 is asymmetrically localized to the daughter centriole and is essential for centriole assembly
-
Mahjoub MR, Xie Z, Stearns T, (2010) Cep120 is asymmetrically localized to the daughter centriole and is essential for centriole assembly. J Cell Biol 191: 331–346. doi: 10.1083/jcb.201003009 20956381
-
(2010)
J Cell Biol
, vol.191
, pp. 331-346
-
-
Mahjoub, M.R.1
Xie, Z.2
Stearns, T.3
-
28
-
-
33845487091
-
FAPP2, cilium formation, and compartmentalization of the apical membrane in polarized Madin-Darby canine kidney (MDCK) cells
-
Vieira OV, Gaus K, Verkade P, Fullekrug J, Vaz WL, et al. (2006) FAPP2, cilium formation, and compartmentalization of the apical membrane in polarized Madin-Darby canine kidney (MDCK) cells. Proc Natl Acad Sci U S A 103: 18556–18561. 17116893
-
(2006)
Proc Natl Acad Sci U S A
, vol.103
, pp. 18556-18561
-
-
Vieira, O.V.1
Gaus, K.2
Verkade, P.3
Fullekrug, J.4
Vaz, W.L.5
-
29
-
-
35548974826
-
Cep164, a novel centriole appendage protein required for primary cilium formation
-
Graser S, Stierhof YD, Lavoie SB, Gassner OS, Lamla S, et al. (2007) Cep164, a novel centriole appendage protein required for primary cilium formation. J Cell Biol 179: 321–330. 17954613
-
(2007)
J Cell Biol
, vol.179
, pp. 321-330
-
-
Graser, S.1
Stierhof, Y.D.2
Lavoie, S.B.3
Gassner, O.S.4
Lamla, S.5
-
30
-
-
84885673303
-
Asymmetric inheritance of centrosome-associated primary cilium membrane directs ciliogenesis after cell division
-
Paridaen JT, Wilsch-Brauninger M, Huttner WB, (2013) Asymmetric inheritance of centrosome-associated primary cilium membrane directs ciliogenesis after cell division. Cell 155: 333–344. doi: 10.1016/j.cell.2013.08.060 24120134
-
(2013)
Cell
, vol.155
, pp. 333-344
-
-
Paridaen, J.T.1
Wilsch-Brauninger, M.2
Huttner, W.B.3
-
31
-
-
69949142444
-
Centriole age underlies asynchronous primary cilium growth in mammalian cells
-
Anderson CT, Stearns T, (2009) Centriole age underlies asynchronous primary cilium growth in mammalian cells. Curr Biol 19: 1498–1502. doi: 10.1016/j.cub.2009.07.034 19682908
-
(2009)
Curr Biol
, vol.19
, pp. 1498-1502
-
-
Anderson, C.T.1
Stearns, T.2
-
32
-
-
0036544554
-
The intraflagellar transport protein, IFT88, is essential for vertebrate photoreceptor assembly and maintenance
-
Pazour G, Baker S, Deane J, Cole D, Dickert B, et al. (2002) The intraflagellar transport protein, IFT88, is essential for vertebrate photoreceptor assembly and maintenance. J Cell Biol 157: 103–113. 11916979
-
(2002)
J Cell Biol
, vol.157
, pp. 103-113
-
-
Pazour, G.1
Baker, S.2
Deane, J.3
Cole, D.4
Dickert, B.5
-
33
-
-
0034735526
-
Chlamydomonas IFT88 and its mouse homologue, polycystic kidney disease gene tg737, are required for assembly of cilia and flagella
-
Pazour G, Dickert B, Vucica Y, Seeley E, Rosenbaum J, et al. (2000) Chlamydomonas IFT88 and its mouse homologue, polycystic kidney disease gene tg737, are required for assembly of cilia and flagella. J Cell Biol 151: 709–718. 11062270
-
(2000)
J Cell Biol
, vol.151
, pp. 709-718
-
-
Pazour, G.1
Dickert, B.2
Vucica, Y.3
Seeley, E.4
Rosenbaum, J.5
-
34
-
-
77951760146
-
Differential role of Rab proteins in ciliary trafficking: Rab23 regulates smoothened levels
-
Boehlke C, Bashkurov M, Buescher A, Krick T, John AK, et al. (2010) Differential role of Rab proteins in ciliary trafficking: Rab23 regulates smoothened levels. J Cell Sci 123: 1460–1467. doi: 10.1242/jcs.058883 20375059
-
(2010)
J Cell Sci
, vol.123
, pp. 1460-1467
-
-
Boehlke, C.1
Bashkurov, M.2
Buescher, A.3
Krick, T.4
John, A.K.5
-
35
-
-
0033533403
-
General role of GDP dissociation inhibitor 2 in membrane release of Rab proteins: modulations of its functional interactions by in vitro and in vivo structural modifications
-
Shisheva A, Chinni S, DeMarco C, (1999) General role of GDP dissociation inhibitor 2 in membrane release of Rab proteins: modulations of its functional interactions by in vitro and in vivo structural modifications. Biochemistry 38: 11711–11721. 10512627
-
(1999)
Biochemistry
, vol.38
, pp. 11711-11721
-
-
Shisheva, A.1
Chinni, S.2
DeMarco, C.3
-
36
-
-
59449108592
-
Alternative splicing in class V myosins determines association with Rab10
-
Roland JT, Lapierre LA, Goldenring JR, (2009) Alternative splicing in class V myosins determines association with Rab10. J Biol Chem 284: 1213–1223. doi: 10.1074/jbc.M805957200 19008234
-
(2009)
J Biol Chem
, vol.284
, pp. 1213-1223
-
-
Roland, J.T.1
Lapierre, L.A.2
Goldenring, J.R.3
-
37
-
-
0037383322
-
GSK-3: tricks of the trade for a multi-tasking kinase
-
Doble BW, Woodgett JR, (2003) GSK-3: tricks of the trade for a multi-tasking kinase. J Cell Sci 116: 1175–1186. 12615961
-
(2003)
J Cell Sci
, vol.116
, pp. 1175-1186
-
-
Doble, B.W.1
Woodgett, J.R.2
-
38
-
-
33845695896
-
GSK-3beta-regulated interaction of BICD with dynein is involved in microtubule anchorage at centrosome
-
Fumoto K, Hoogenraad CC, Kikuchi A, (2006) GSK-3beta-regulated interaction of BICD with dynein is involved in microtubule anchorage at centrosome. EMBO J 25: 5670–5682. 17139249
-
(2006)
EMBO J
, vol.25
, pp. 5670-5682
-
-
Fumoto, K.1
Hoogenraad, C.C.2
Kikuchi, A.3
-
39
-
-
79952597165
-
Primary cilia membrane assembly is initiated by Rab11 and transport protein particle II (TRAPPII) complex-dependent trafficking of Rabin8 to the centrosome
-
Westlake CJ, Baye LM, Nachury MV, Wright KJ, Ervin KE, et al. (2011) Primary cilia membrane assembly is initiated by Rab11 and transport protein particle II (TRAPPII) complex-dependent trafficking of Rabin8 to the centrosome. Proc Natl Acad Sci U S A 108: 2759–2764. doi: 10.1073/pnas.1018823108 21273506
-
(2011)
Proc Natl Acad Sci U S A
, vol.108
, pp. 2759-2764
-
-
Westlake, C.J.1
Baye, L.M.2
Nachury, M.V.3
Wright, K.J.4
Ervin, K.E.5
-
40
-
-
0034969088
-
A common phosphate binding site explains the unique substrate specificity of GSK3 and its inactivation by phosphorylation
-
Frame S, Cohen P, Biondi RM, (2001) A common phosphate binding site explains the unique substrate specificity of GSK3 and its inactivation by phosphorylation. Mol Cell 7: 1321–1327. 11430833
-
(2001)
Mol Cell
, vol.7
, pp. 1321-1327
-
-
Frame, S.1
Cohen, P.2
Biondi, R.M.3
-
41
-
-
80054693649
-
The antagonistic action of B56-containing protein phosphatase 2As and casein kinase 2 controls the phosphorylation and Gli turnover function of Daz interacting protein 1
-
Jin Z, Mei W, Strack S, Jia J, Yang J, (2011) The antagonistic action of B56-containing protein phosphatase 2As and casein kinase 2 controls the phosphorylation and Gli turnover function of Daz interacting protein 1. J Biol Chem 286: 36171–36179. doi: 10.1074/jbc.M111.274761 21878643
-
(2011)
J Biol Chem
, vol.286
, pp. 36171-36179
-
-
Jin, Z.1
Mei, W.2
Strack, S.3
Jia, J.4
Yang, J.5
-
42
-
-
0242363237
-
Yip3 catalyses the dissociation of endosomal Rab-GDI complexes
-
Sivars U, Aivazian D, Pfeffer S, (2003) Yip3 catalyses the dissociation of endosomal Rab-GDI complexes. Nature 425: 856–859. 14574414
-
(2003)
Nature
, vol.425
, pp. 856-859
-
-
Sivars, U.1
Aivazian, D.2
Pfeffer, S.3
-
43
-
-
0031023505
-
Identification of a GDI displacement factor that releases endosomal Rab GTPases from Rab-GDI
-
Dirac-Svejstrup A, Sumizawa T, Pfeffer S, (1997) Identification of a GDI displacement factor that releases endosomal Rab GTPases from Rab-GDI. EMBO J 16: 465–472. 9034329
-
(1997)
EMBO J
, vol.16
, pp. 465-472
-
-
Dirac-Svejstrup, A.1
Sumizawa, T.2
Pfeffer, S.3
-
44
-
-
84889234796
-
A bifunctional bacterial protein links GDI displacement to Rab1 activation
-
Machner M, Isberg R, (2007) A bifunctional bacterial protein links GDI displacement to Rab1 activation. Science 318: 974–977. 17947549
-
(2007)
Science
, vol.318
, pp. 974-977
-
-
Machner, M.1
Isberg, R.2
-
45
-
-
0035967873
-
Vps9, Rabex-5 and DSS4: proteins with weak but distinct nucleotide-exchange activities for Rab proteins
-
Esters H, Alexandrov K, Iakovenko A, Ivanova T, Thomä N, et al. (2001) Vps9, Rabex-5 and DSS4: proteins with weak but distinct nucleotide-exchange activities for Rab proteins. J Mol Biol 310: 141–156. 11419942
-
(2001)
J Mol Biol
, vol.310
, pp. 141-156
-
-
Esters, H.1
Alexandrov, K.2
Iakovenko, A.3
Ivanova, T.4
Thomä, N.5
-
46
-
-
0029099915
-
Structure of guanine-nucleotide-exchange factor human Mss4 and identification of its Rab-interacting surface
-
Yu H, Schreiber S, (1995) Structure of guanine-nucleotide-exchange factor human Mss4 and identification of its Rab-interacting surface. Nature 376: 788–791. 7651540
-
(1995)
Nature
, vol.376
, pp. 788-791
-
-
Yu, H.1
Schreiber, S.2
-
47
-
-
33645742291
-
Nucleotide exchange via local protein unfolding—structure of Rab8 in complex with MSS4
-
Itzen A, Pylypenko O, Goody R, Alexandrov K, Rak A, (2006) Nucleotide exchange via local protein unfolding—structure of Rab8 in complex with MSS4. EMBO J 25: 1445–1455. 16541104
-
(2006)
EMBO J
, vol.25
, pp. 1445-1455
-
-
Itzen, A.1
Pylypenko, O.2
Goody, R.3
Alexandrov, K.4
Rak, A.5
-
48
-
-
0028149342
-
Specific interactions of Mss4 with members of the Rab GTPase subfamily
-
Burton J, Burns M, Gatti E, Augustine G, De Camilli P, (1994) Specific interactions of Mss4 with members of the Rab GTPase subfamily. EMBO J 13: 5547–5558. 7988552
-
(1994)
EMBO J
, vol.13
, pp. 5547-5558
-
-
Burton, J.1
Burns, M.2
Gatti, E.3
Augustine, G.4
De Camilli, P.5
-
49
-
-
77956492290
-
Rab10 associates with primary cilia and the exocyst complex in renal epithelial cells
-
Babbey CM, Bacallao RL, Dunn KW, (2010) Rab10 associates with primary cilia and the exocyst complex in renal epithelial cells. Am J Physiol Renal Physiol 299: F495–F506. doi: 10.1152/ajprenal.00198.2010 20576682
-
(2010)
Am J Physiol Renal Physiol
, vol.299
, pp. 495-506
-
-
Babbey, C.M.1
Bacallao, R.L.2
Dunn, K.W.3
-
50
-
-
84871986826
-
Cep164 mediates vesicular docking to the mother centriole during early steps of ciliogenesis
-
Schmidt KN, Kuhns S, Neuner A, Hub B, Zentgraf H, et al. (2012) Cep164 mediates vesicular docking to the mother centriole during early steps of ciliogenesis. J Cell Biol 199: 1083–1101. doi: 10.1083/jcb.201202126 23253480
-
(2012)
J Cell Biol
, vol.199
, pp. 1083-1101
-
-
Schmidt, K.N.1
Kuhns, S.2
Neuner, A.3
Hub, B.4
Zentgraf, H.5
-
51
-
-
55849135237
-
Deletion of GSK-3beta in mice leads to hypertrophic cardiomyopathy secondary to cardiomyoblast hyperproliferation
-
Kerkela R, Kockeritz L, Macaulay K, Zhou J, Doble B, et al. (2008) Deletion of GSK-3beta in mice leads to hypertrophic cardiomyopathy secondary to cardiomyoblast hyperproliferation. J Clin Invest 118: 3609–3618. doi: 10.1172/JCI36245 18830417
-
(2008)
J Clin Invest
, vol.118
, pp. 3609-3618
-
-
Kerkela, R.1
Kockeritz, L.2
Macaulay, K.3
Zhou, J.4
Doble, B.5
-
52
-
-
79953316640
-
Do cilia put brakes on the cell cycle?
-
Jackson PK, (2011) Do cilia put brakes on the cell cycle? Nat Cell Biol 13: 340–342. doi: 10.1038/ncb0411-340 21460803
-
(2011)
Nat Cell Biol
, vol.13
, pp. 340-342
-
-
Jackson, P.K.1
-
53
-
-
79953305554
-
Ciliary transition zone activation of phosphorylated Tctex-1 controls ciliary resorption, S-phase entry and fate of neural progenitors
-
Li A, Saito M, Chuang J, Tseng Y, Dedesma C, et al. (2011) Ciliary transition zone activation of phosphorylated Tctex-1 controls ciliary resorption, S-phase entry and fate of neural progenitors. Nat Cell Biol 13: 402–411. doi: 10.1038/ncb2218 21394082
-
(2011)
Nat Cell Biol
, vol.13
, pp. 402-411
-
-
Li, A.1
Saito, M.2
Chuang, J.3
Tseng, Y.4
Dedesma, C.5
-
54
-
-
79953331186
-
Nde1-mediated inhibition of ciliogenesis affects cell cycle re-entry
-
Kim S, Zaghloul N, Bubenshchikova E, Oh E, Rankin S, et al. (2011) Nde1-mediated inhibition of ciliogenesis affects cell cycle re-entry. Nat Cell Biol 13: 351–360. doi: 10.1038/ncb2183 21394081
-
(2011)
Nat Cell Biol
, vol.13
, pp. 351-360
-
-
Kim, S.1
Zaghloul, N.2
Bubenshchikova, E.3
Oh, E.4
Rankin, S.5
-
55
-
-
33746472918
-
Priming-dependent phosphorylation and regulation of the tumor suppressor pVHL by glycogen synthase kinase 3
-
Hergovich A, Lisztwan J, Thoma CR, Wirbelauer C, Barry RE, et al. (2006) Priming-dependent phosphorylation and regulation of the tumor suppressor pVHL by glycogen synthase kinase 3. Mol Cell Biol 26: 5784–5796. 16847331
-
(2006)
Mol Cell Biol
, vol.26
, pp. 5784-5796
-
-
Hergovich, A.1
Lisztwan, J.2
Thoma, C.R.3
Wirbelauer, C.4
Barry, R.E.5
-
56
-
-
64749095806
-
Geminin is partially localized to the centrosome and plays a role in proper centrosome duplication
-
Lu F, Lan R, Zhang H, Jiang Q, Zhang C, (2009) Geminin is partially localized to the centrosome and plays a role in proper centrosome duplication. Biol Cell 101: 273–285. doi: 10.1042/BC20080109 18798731
-
(2009)
Biol Cell
, vol.101
, pp. 273-285
-
-
Lu, F.1
Lan, R.2
Zhang, H.3
Jiang, Q.4
Zhang, C.5
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