-
1
-
-
70350359860
-
Biogenesis of tail-anchored proteins: the beginning for the end?
-
Rabu C, Schmid V, Schwappach B, High S, (2009) Biogenesis of tail-anchored proteins: the beginning for the end? J Cell Sci 122: 3605-3612.
-
(2009)
J Cell Sci
, vol.122
, pp. 3605-3612
-
-
Rabu, C.1
Schmid, V.2
Schwappach, B.3
High, S.4
-
2
-
-
8744269767
-
Tail-anchored protein biosynthesis at the endoplasmic reticulum: the same but different
-
High S, Abell BM, (2004) Tail-anchored protein biosynthesis at the endoplasmic reticulum: the same but different. Biochem Soc Trans 32: 659-662.
-
(2004)
Biochem Soc Trans
, vol.32
, pp. 659-662
-
-
High, S.1
Abell, B.M.2
-
3
-
-
55549102665
-
A Precursor-specific Role for Hsp40/Hsc70 during Tail-anchored Protein Integration at the Endoplasmic Reticulum
-
Rabu C, Wipf P, Brodsky JL, High S, (2008) A Precursor-specific Role for Hsp40/Hsc70 during Tail-anchored Protein Integration at the Endoplasmic Reticulum. J Biol Chem 283: 27504-27513.
-
(2008)
J Biol Chem
, vol.283
, pp. 27504-27513
-
-
Rabu, C.1
Wipf, P.2
Brodsky, J.L.3
High, S.4
-
4
-
-
33845307248
-
Unassisted translocation of large polypeptide domains across phospholipid bilayers
-
Brambillasca S, Yabal M, Makarow M, Borgese N, (2006) Unassisted translocation of large polypeptide domains across phospholipid bilayers. J Cell Biol 175: 767-777.
-
(2006)
J Cell Biol
, vol.175
, pp. 767-777
-
-
Brambillasca, S.1
Yabal, M.2
Makarow, M.3
Borgese, N.4
-
5
-
-
77954378286
-
Remote origins of tail-anchored proteins
-
Borgese N, Righi M, (2010) Remote origins of tail-anchored proteins. Traffic 11: 877-885.
-
(2010)
Traffic
, vol.11
, pp. 877-885
-
-
Borgese, N.1
Righi, M.2
-
6
-
-
79851511792
-
Targeting pathways of C-tail-anchored proteins
-
Borgese N, Fasana E, (2011) Targeting pathways of C-tail-anchored proteins. Biochim Biophys Acta 1808: 937-946.
-
(2011)
Biochim Biophys Acta
, vol.1808
, pp. 937-946
-
-
Borgese, N.1
Fasana, E.2
-
7
-
-
33947218544
-
Identification of a Targeting Factor for Posttranslational Membrane Protein Insertion into the ER
-
Stefanovic S, Hegde RS, (2007) Identification of a Targeting Factor for Posttranslational Membrane Protein Insertion into the ER. Cell 128: 1147-1159.
-
(2007)
Cell
, vol.128
, pp. 1147-1159
-
-
Stefanovic, S.1
Hegde, R.S.2
-
8
-
-
46749104133
-
Distinct targeting pathways for the membrane insertion of tail-anchored (TA) proteins
-
Favaloro V, Spasic M, Schwappach B, Dobberstein B, (2008) Distinct targeting pathways for the membrane insertion of tail-anchored (TA) proteins. J Cell Sci 121: 1832-1840.
-
(2008)
J Cell Sci
, vol.121
, pp. 1832-1840
-
-
Favaloro, V.1
Spasic, M.2
Schwappach, B.3
Dobberstein, B.4
-
9
-
-
79953137111
-
WRB is the receptor for TRC40/Asna1-mediated insertion of tail-anchored proteins into the ER membrane
-
Vilardi F, Lorenz H, Dobberstein B, (2011) WRB is the receptor for TRC40/Asna1-mediated insertion of tail-anchored proteins into the ER membrane. J Cell Sci 124: 1301-1307.
-
(2011)
J Cell Sci
, vol.124
, pp. 1301-1307
-
-
Vilardi, F.1
Lorenz, H.2
Dobberstein, B.3
-
10
-
-
84869082795
-
Molecular Machinery for Insertion of Tail-Anchored Membrane Proteins into the Endoplasmic Reticulum Membrane in Mammalian Cells
-
Yamamoto Y, Sakisaka T, (2012) Molecular Machinery for Insertion of Tail-Anchored Membrane Proteins into the Endoplasmic Reticulum Membrane in Mammalian Cells. Mol Cell 48: 387-397.
-
(2012)
Mol Cell
, vol.48
, pp. 387-397
-
-
Yamamoto, Y.1
Sakisaka, T.2
-
11
-
-
49549086224
-
The GET complex mediates insertion of tail-anchored proteins into the ER membrane
-
Schuldiner M, Metz J, Schmid V, Denic V, Rakwalska M, et al. (2008) The GET complex mediates insertion of tail-anchored proteins into the ER membrane. Cell 134: 634-645.
-
(2008)
Cell
, vol.134
, pp. 634-645
-
-
Schuldiner, M.1
Metz, J.2
Schmid, V.3
Denic, V.4
Rakwalska, M.5
-
12
-
-
80051474125
-
Structural basis for tail-anchored membrane protein biogenesis by the Get3-receptor complex
-
Stefer S, Reitz S, Wang F, Wild K, Pang YY, et al. (2011) Structural basis for tail-anchored membrane protein biogenesis by the Get3-receptor complex. Science 333: 758-762.
-
(2011)
Science
, vol.333
, pp. 758-762
-
-
Stefer, S.1
Reitz, S.2
Wang, F.3
Wild, K.4
Pang, Y.Y.5
-
13
-
-
80052407064
-
The mechanism of membrane-associated steps in tail-anchored protein insertion
-
Mariappan M, Mateja A, Dobosz M, Bove E, Hegde RS, et al. (2011) The mechanism of membrane-associated steps in tail-anchored protein insertion. Nature 477: 61-66.
-
(2011)
Nature
, vol.477
, pp. 61-66
-
-
Mariappan, M.1
Mateja, A.2
Dobosz, M.3
Bove, E.4
Hegde, R.S.5
-
14
-
-
77954352789
-
Bat3 promotes the membrane integration of tail-anchored proteins
-
Leznicki P, Clancy A, Schwappach B, High S, (2010) Bat3 promotes the membrane integration of tail-anchored proteins. J Cell Sci 123: 2170-2178.
-
(2010)
J Cell Sci
, vol.123
, pp. 2170-2178
-
-
Leznicki, P.1
Clancy, A.2
Schwappach, B.3
High, S.4
-
15
-
-
77956183398
-
A ribosome-associating factor chaperones tail-anchored membrane proteins
-
Mariappan M, Li X, Stefanovic S, Sharma A, Mateja A, et al. (2010) A ribosome-associating factor chaperones tail-anchored membrane proteins. Nature 466: 1120-1124.
-
(2010)
Nature
, vol.466
, pp. 1120-1124
-
-
Mariappan, M.1
Li, X.2
Stefanovic, S.3
Sharma, A.4
Mateja, A.5
-
16
-
-
63449128473
-
Comprehensive characterization of genes required for protein folding in the endoplasmic reticulum
-
Jonikas MC, Collins SR, Denic V, Oh E, Quan EM, et al. (2009) Comprehensive characterization of genes required for protein folding in the endoplasmic reticulum. Science 323: 1693-1697.
-
(2009)
Science
, vol.323
, pp. 1693-1697
-
-
Jonikas, M.C.1
Collins, S.R.2
Denic, V.3
Oh, E.4
Quan, E.M.5
-
17
-
-
77957376226
-
A chaperone cascade sorts proteins for posttranslational membrane insertion into the endoplasmic reticulum
-
Wang F, Brown EC, Mak G, Zhuang J, Denic V, (2010) A chaperone cascade sorts proteins for posttranslational membrane insertion into the endoplasmic reticulum. Mol Cell 40: 159-171.
-
(2010)
Mol Cell
, vol.40
, pp. 159-171
-
-
Wang, F.1
Brown, E.C.2
Mak, G.3
Zhuang, J.4
Denic, V.5
-
18
-
-
77957350308
-
The special delivery of a tail-anchored protein: why it pays to use a dedicated courier
-
Brodsky JL, (2010) The special delivery of a tail-anchored protein: why it pays to use a dedicated courier. Mol Cell 40: 5-7.
-
(2010)
Mol Cell
, vol.40
, pp. 5-7
-
-
Brodsky, J.L.1
-
19
-
-
0344688165
-
Analysis of a high-throughput yeast two-hybrid system and its use to predict the function of intracellular proteins encoded within the human MHC class III region
-
Lehner B, Semple JI, Brown SE, Counsell D, Campbell RD, et al. (2004) Analysis of a high-throughput yeast two-hybrid system and its use to predict the function of intracellular proteins encoded within the human MHC class III region. Genomics 83: 153-167.
-
(2004)
Genomics
, vol.83
, pp. 153-167
-
-
Lehner, B.1
Semple, J.I.2
Brown, S.E.3
Counsell, D.4
Campbell, R.D.5
-
20
-
-
33745934813
-
Human SGT interacts with Bag-6/Bat-3/Scythe and cells with reduced levels of either protein display persistence of few misaligned chromosomes and mitotic arrest
-
Winnefeld M, Grewenig A, Schnolzer M, Spring H, Knoch TA, et al. (2006) Human SGT interacts with Bag-6/Bat-3/Scythe and cells with reduced levels of either protein display persistence of few misaligned chromosomes and mitotic arrest. Exp Cell Res 312: 2500-2514.
-
(2006)
Exp Cell Res
, vol.312
, pp. 2500-2514
-
-
Winnefeld, M.1
Grewenig, A.2
Schnolzer, M.3
Spring, H.4
Knoch, T.A.5
-
21
-
-
67649634849
-
Defining the human deubiquitinating enzyme interaction landscape
-
Sowa ME, Bennett EJ, Gygi SP, Harper JW, (2009) Defining the human deubiquitinating enzyme interaction landscape. Cell 138: 389-403.
-
(2009)
Cell
, vol.138
, pp. 389-403
-
-
Sowa, M.E.1
Bennett, E.J.2
Gygi, S.P.3
Harper, J.W.4
-
22
-
-
84872853351
-
Structure of the Sgt2/Get5 complex provides insights into GET-mediated targeting of tail-anchored membrane proteins
-
Simon AC, Simpson PJ, Goldstone RM, Krysztofinska EM, Murray JW, et al. (2013) Structure of the Sgt2/Get5 complex provides insights into GET-mediated targeting of tail-anchored membrane proteins. Proc Natl Acad Sci U S A 110: 1327-1332.
-
(2013)
Proc Natl Acad Sci U S A
, vol.110
, pp. 1327-1332
-
-
Simon, A.C.1
Simpson, P.J.2
Goldstone, R.M.3
Krysztofinska, E.M.4
Murray, J.W.5
-
23
-
-
84871680407
-
Structures of the Sgt2/SGTA Dimerization Domain with the Get5/UBL4A UBL Domain Reveal an Interaction that Forms a Conserved Dynamic Interface
-
Chartron JW, Vandervelde DG, Clemons WM Jr, (2012) Structures of the Sgt2/SGTA Dimerization Domain with the Get5/UBL4A UBL Domain Reveal an Interaction that Forms a Conserved Dynamic Interface. Cell Reports 2: 1620-1632.
-
(2012)
Cell Reports
, vol.2
, pp. 1620-1632
-
-
Chartron, J.W.1
Vandervelde, D.G.2
Clemons Jr., W.M.3
-
24
-
-
84871682623
-
SGTA Recognizes a Noncanonical Ubiquitin-like Domain in the Bag6-Ubl4A-Trc35 Complex to Promote Endoplasmic Reticulum-Associated Degradation
-
Xu Y, Cai M, Yang Y, Huang L, Ye Y, (2012) SGTA Recognizes a Noncanonical Ubiquitin-like Domain in the Bag6-Ubl4A-Trc35 Complex to Promote Endoplasmic Reticulum-Associated Degradation. Cell Reports 2: 1633-1644.
-
(2012)
Cell Reports
, vol.2
, pp. 1633-1644
-
-
Xu, Y.1
Cai, M.2
Yang, Y.3
Huang, L.4
Ye, Y.5
-
25
-
-
79957745796
-
A biochemical analysis of the constraints of tail-anchored protein biogenesis
-
Leznicki P, Warwicker J, High S, (2011) A biochemical analysis of the constraints of tail-anchored protein biogenesis. Biochem J 436: 719-727.
-
(2011)
Biochem J
, vol.436
, pp. 719-727
-
-
Leznicki, P.1
Warwicker, J.2
High, S.3
-
26
-
-
33748901612
-
The conserved ATPase Get3/Arr4 modulates the activity of membrane-associated proteins in Saccharomyces cerevisiae
-
Auld KL, Hitchcock AL, Doherty HK, Frietze S, Huang LS, et al. (2006) The conserved ATPase Get3/Arr4 modulates the activity of membrane-associated proteins in Saccharomyces cerevisiae. Genetics 174: 215-227.
-
(2006)
Genetics
, vol.174
, pp. 215-227
-
-
Auld, K.L.1
Hitchcock, A.L.2
Doherty, H.K.3
Frietze, S.4
Huang, L.S.5
-
27
-
-
77955878748
-
BAG-6 is essential for selective elimination of defective proteasomal substrates
-
Minami R, Hayakawa A, Kagawa H, Yanagi Y, Yokosawa H, et al. (2010) BAG-6 is essential for selective elimination of defective proteasomal substrates. J Cell Biol 190: 637-650.
-
(2010)
J Cell Biol
, vol.190
, pp. 637-650
-
-
Minami, R.1
Hayakawa, A.2
Kagawa, H.3
Yanagi, Y.4
Yokosawa, H.5
-
28
-
-
79953687692
-
Enzymatic blockade of the ubiquitin-proteasome pathway
-
Ernst R, Claessen JH, Mueller B, Sanyal S, Spooner E, et al. (2011) Enzymatic blockade of the ubiquitin-proteasome pathway. PLoS Biology 8: e1000605.
-
(2011)
PLoS Biology
, vol.8
-
-
Ernst, R.1
Claessen, J.H.2
Mueller, B.3
Sanyal, S.4
Spooner, E.5
-
29
-
-
79959347089
-
A ubiquitin ligase-associated chaperone holdase maintains polypeptides in soluble states for proteasome degradation
-
Wang Q, Liu Y, Soetandyo N, Baek K, Hegde R, et al. (2011) A ubiquitin ligase-associated chaperone holdase maintains polypeptides in soluble states for proteasome degradation. Mol Cell 42: 758-770.
-
(2011)
Mol Cell
, vol.42
, pp. 758-770
-
-
Wang, Q.1
Liu, Y.2
Soetandyo, N.3
Baek, K.4
Hegde, R.5
-
30
-
-
79960637590
-
Protein targeting and degradation are coupled for elimination of mislocalized proteins
-
Hessa T, Sharma A, Mariappan M, Eshleman HD, Gutierrez E, et al. (2011) Protein targeting and degradation are coupled for elimination of mislocalized proteins. Nature 475: 394-397.
-
(2011)
Nature
, vol.475
, pp. 394-397
-
-
Hessa, T.1
Sharma, A.2
Mariappan, M.3
Eshleman, H.D.4
Gutierrez, E.5
-
31
-
-
84869780364
-
SGTA antagonizes BAG6-mediated protein triage
-
Leznicki P, High S, (2012) SGTA antagonizes BAG6-mediated protein triage. Proc Natl Acad Sci U S A 109: 19214-19219.
-
(2012)
Proc Natl Acad Sci U S A
, vol.109
, pp. 19214-19219
-
-
Leznicki, P.1
High, S.2
-
32
-
-
80053334902
-
Protein Degradation: BAGging Up the Trash
-
Ast T, Schuldiner M, (2011) Protein Degradation: BAGging Up the Trash. Current Biology 21: R692-R695.
-
(2011)
Current Biology
, vol.21
-
-
Ast, T.1
Schuldiner, M.2
-
33
-
-
77951209587
-
Crystal structure of Get4/Get5 complex and its interactions with Sgt2, Get3 and Ydj1
-
Chang YW, Chuang YC, Ho YC, Cheng MY, Sun YJ, et al. (2010) Crystal structure of Get4/Get5 complex and its interactions with Sgt2, Get3 and Ydj1. J Biol Chem in press.
-
(2010)
J Biol Chem
-
-
Chang, Y.W.1
Chuang, Y.C.2
Ho, Y.C.3
Cheng, M.Y.4
Sun, Y.J.5
-
34
-
-
80053210242
-
A structural model of the sgt2 protein and its interactions with chaperones and the get4/get5 complex
-
Chartron JW, Gonzalez GM, Clemons WM Jr, (2011) A structural model of the sgt2 protein and its interactions with chaperones and the get4/get5 complex. J Biol Chem 286: 34325-34334.
-
(2011)
J Biol Chem
, vol.286
, pp. 34325-34334
-
-
Chartron, J.W.1
Gonzalez, G.M.2
Clemons Jr., W.M.3
-
35
-
-
77955437784
-
Structural characterization of the Get4/Get5 complex and its interaction with Get3
-
Chartron JW, Suloway CJ, Zaslaver M, Clemons WM Jr, (2010) Structural characterization of the Get4/Get5 complex and its interaction with Get3. Proc Natl Acad Sci U S A 107: 12127-12132.
-
(2010)
Proc Natl Acad Sci U S A
, vol.107
, pp. 12127-12132
-
-
Chartron, J.W.1
Suloway, C.J.2
Zaslaver, M.3
Clemons Jr., W.M.4
-
36
-
-
13544271768
-
Small glutamine-rich tetratricopeptide repeat-containing protein is composed of three structural units with distinct functions
-
Liou ST, Wang C, (2005) Small glutamine-rich tetratricopeptide repeat-containing protein is composed of three structural units with distinct functions. Arch Biochem Biophys 435: 253-263.
-
(2005)
Arch Biochem Biophys
, vol.435
, pp. 253-263
-
-
Liou, S.T.1
Wang, C.2
-
37
-
-
29144522878
-
Unique proteasome subunit Xrpn10c is a specific receptor for the antiapoptotic ubiquitin-like protein Scythe
-
Kikukawa Y, Minami R, Shimada M, Kobayashi M, Tanaka K, et al. (2005) Unique proteasome subunit Xrpn10c is a specific receptor for the antiapoptotic ubiquitin-like protein Scythe. Febs J 272: 6373-6386.
-
(2005)
Febs J
, vol.272
, pp. 6373-6386
-
-
Kikukawa, Y.1
Minami, R.2
Shimada, M.3
Kobayashi, M.4
Tanaka, K.5
-
38
-
-
13444262028
-
Recognition of transmembrane helices by the endoplasmic reticulum translocon
-
Hessa T, Kim H, Bihlmaier K, Lundin C, Boekel J, et al. (2005) Recognition of transmembrane helices by the endoplasmic reticulum translocon. Nature 433: 377-381.
-
(2005)
Nature
, vol.433
, pp. 377-381
-
-
Hessa, T.1
Kim, H.2
Bihlmaier, K.3
Lundin, C.4
Boekel, J.5
-
39
-
-
80054041334
-
Membrane protein insertion at the endoplasmic reticulum
-
Shao S, Hegde RS, (2011) Membrane protein insertion at the endoplasmic reticulum. Annu Rev Cell Dev Biol 27: 25-56.
-
(2011)
Annu Rev Cell Dev Biol
, vol.27
, pp. 25-56
-
-
Shao, S.1
Hegde, R.S.2
-
40
-
-
55449121084
-
BAT3 and SET1A form a complex with CTCFL/BORIS to modulate H3K4 histone dimethylation and gene expression
-
Nguyen P, Bar-Sela G, Sun L, Bisht KS, Cui H, et al. (2008) BAT3 and SET1A form a complex with CTCFL/BORIS to modulate H3K4 histone dimethylation and gene expression. Mol Cell Biol 28: 6720-6729.
-
(2008)
Mol Cell Biol
, vol.28
, pp. 6720-6729
-
-
Nguyen, P.1
Bar-Sela, G.2
Sun, L.3
Bisht, K.S.4
Cui, H.5
-
41
-
-
79955972197
-
Overexpression of peroxisomal testis specific 1 protein induces germ cell apoptosis and leads to infertility in male mice
-
Kaczmarek K, Studencka M, Meinhardt A, Wieczerzak K, Thoms S, et al. (2011) Overexpression of peroxisomal testis specific 1 protein induces germ cell apoptosis and leads to infertility in male mice. Mol Biol Cell 22: 1766-1779.
-
(2011)
Mol Biol Cell
, vol.22
, pp. 1766-1779
-
-
Kaczmarek, K.1
Studencka, M.2
Meinhardt, A.3
Wieczerzak, K.4
Thoms, S.5
-
42
-
-
34147156192
-
HLA-B-associated transcript 3 (Bat3)/Scythe is essential for p300-mediated acetylation of p53
-
Sasaki T, Gan EC, Wakeham A, Kornbluth S, Mak TW, et al. (2007) HLA-B-associated transcript 3 (Bat3)/Scythe is essential for p300-mediated acetylation of p53. Genes and Dev 21: 848-861.
-
(2007)
Genes and Dev
, vol.21
, pp. 848-861
-
-
Sasaki, T.1
Gan, E.C.2
Wakeham, A.3
Kornbluth, S.4
Mak, T.W.5
-
43
-
-
79959906869
-
Acetylation regulates gluconeogenesis by promoting PEPCK1 degradation via recruiting the UBR5 ubiquitin ligase
-
Jiang W, Wang S, Xiao M, Lin Y, Zhou L, et al. (2011) Acetylation regulates gluconeogenesis by promoting PEPCK1 degradation via recruiting the UBR5 ubiquitin ligase. Mol Cell 43: 33-44.
-
(2011)
Mol Cell
, vol.43
, pp. 33-44
-
-
Jiang, W.1
Wang, S.2
Xiao, M.3
Lin, Y.4
Zhou, L.5
-
44
-
-
26244449794
-
Control of Golgi morphology and function by Sed5 t-SNARE phosphorylation
-
Weinberger A, Kamena F, Kama R, Spang A, Gerst JE, (2005) Control of Golgi morphology and function by Sed5 t-SNARE phosphorylation. Mol Biol Cell 16: 4918-4930.
-
(2005)
Mol Biol Cell
, vol.16
, pp. 4918-4930
-
-
Weinberger, A.1
Kamena, F.2
Kama, R.3
Spang, A.4
Gerst, J.E.5
-
45
-
-
0032579440
-
Designer deletion strains derived from Saccharomyces cerevisiae S288C: a useful set of strains and plasmids for PCR-mediated gene disruption and other applications
-
Brachmann CB, Davies A, Cost GJ, Caputo E, Li J, et al. (1998) Designer deletion strains derived from Saccharomyces cerevisiae S288C: a useful set of strains and plasmids for PCR-mediated gene disruption and other applications. Yeast 14: 115-132.
-
(1998)
Yeast
, vol.14
, pp. 115-132
-
-
Brachmann, C.B.1
Davies, A.2
Cost, G.J.3
Caputo, E.4
Li, J.5
-
46
-
-
0033529707
-
Functional characterization of the S. cerevisiae genome by gene deletion and parallel analysis
-
Winzeler EA, Shoemaker DD, Astromoff A, Liang H, Anderson K, et al. (1999) Functional characterization of the S. cerevisiae genome by gene deletion and parallel analysis. Science 285: 901-906.
-
(1999)
Science
, vol.285
, pp. 901-906
-
-
Winzeler, E.A.1
Shoemaker, D.D.2
Astromoff, A.3
Liang, H.4
Anderson, K.5
-
47
-
-
0004265596
-
-
New York: Greene Publishing Associates and Wiley-Interscience
-
Ausubel FM, Brent R, Kingston RE, Moore DD, Seidman JG, et al. (1997). Current Protocols in Molecular Biology. New York: Greene Publishing Associates and Wiley-Interscience.
-
(1997)
Current Protocols in Molecular Biology
-
-
Ausubel, F.M.1
Brent, R.2
Kingston, R.E.3
Moore, D.D.4
Seidman, J.G.5
-
48
-
-
0000856498
-
Two nuclear mutations that block mitochondrial protein import in yeast
-
Yaffe MP, Schatz G, (1984) Two nuclear mutations that block mitochondrial protein import in yeast. Proc Natl Acad Sci U S A 81: 4819-4823.
-
(1984)
Proc Natl Acad Sci U S A
, vol.81
, pp. 4819-4823
-
-
Yaffe, M.P.1
Schatz, G.2
-
49
-
-
43049155955
-
The BAG proteins: a ubiquitous family of chaperone regulators
-
Kabbage M, Dickman MB, (2008) The BAG proteins: a ubiquitous family of chaperone regulators. Cell Mol Life Sci 65: 1390-1402.
-
(2008)
Cell Mol Life Sci
, vol.65
, pp. 1390-1402
-
-
Kabbage, M.1
Dickman, M.B.2
-
50
-
-
80052491229
-
Versatile TPR domains accommodate different modes of target protein recognition and function
-
Allan RK, Ratajczak T, (2011) Versatile TPR domains accommodate different modes of target protein recognition and function. Cell stress and chaperones 16: 353-367.
-
(2011)
Cell Stress and Chaperones
, vol.16
, pp. 353-367
-
-
Allan, R.K.1
Ratajczak, T.2
-
51
-
-
79959440698
-
Cooperative and independent activities of Sgt2 and Get5 in the targeting of tail-anchored proteins
-
Kohl C, Tessarz P, von der Malsburg K, Zahn R, Bukau B, et al. (2011) Cooperative and independent activities of Sgt2 and Get5 in the targeting of tail-anchored proteins. Biol Chem 392: 601-608.
-
(2011)
Biol Chem
, vol.392
, pp. 601-608
-
-
Kohl, C.1
Tessarz, P.2
von der Malsburg, K.3
Zahn, R.4
Bukau, B.5
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