-
1
-
-
80054075348
-
Exploring protein lipidation with chemical biology
-
Hang, H.C. and Linder, M.E. (2011) Exploring protein lipidation with chemical biology. Chem. Rev. 111, 6341–6358 doi:10.1021/cr2001977
-
(2011)
Chem. Rev.
, vol.111
, pp. 6341-6358
-
-
Hang, H.C.1
Linder, M.E.2
-
2
-
-
84971529429
-
Fatty acylation of proteins: The long and the short of it
-
Resh, M.D. (2016) Fatty acylation of proteins: the long and the short of it. Prog. Lipid Res. 63, 120–131 doi:10.1016/j.plipres.2016.05.002
-
(2016)
Prog. Lipid Res.
, vol.63
, pp. 120-131
-
-
Resh, M.D.1
-
3
-
-
84940777607
-
Curation of the mammalian palmitoylome indicates a pivotal role for palmitoylation in diseases and disorders of the nervous system and cancers
-
Sanders, S.S., Martin, D.D.O., Butland, S.L., Lavallée-Adam, M., Calzolari, D., Kay, C. et al. (2015) Curation of the mammalian palmitoylome indicates a pivotal role for palmitoylation in diseases and disorders of the nervous system and cancers. PLoS Comput. Biol. 11, e1004405 doi:10.1371/journal.pcbi. 1004405
-
(2015)
Plos Comput. Biol.
, vol.11
, pp. e1004405
-
-
Sanders, S.S.1
Martin, D.D.O.2
Butland, S.L.3
Lavallée-Adam, M.4
Calzolari, D.5
Kay, C.6
-
4
-
-
84940973446
-
SwissPalm: Protein palmitoylation database
-
Blanc, M., David, F., Abrami, L., Migliozzi, D., Armand, F., Bürgi, J. et al. (2015) SwissPalm: protein palmitoylation database. F1000Research 4, 261 doi:10.12688/f1000research.6464.1
-
(2015)
F1000research
, vol.4
, pp. 261
-
-
Blanc, M.1
David, F.2
Abrami, L.3
Migliozzi, D.4
Armand, F.5
Bürgi, J.6
-
5
-
-
84878758131
-
What does S-palmitoylation do to membrane proteins?
-
Blaskovic, S., Blanc, M. and van der Goot, F.G. (2013) What does S-palmitoylation do to membrane proteins? FEBS J. 280, 2766–2774 doi:10.1111/febs.12263
-
(2013)
FEBS J.
, vol.280
, pp. 2766-2774
-
-
Blaskovic, S.1
Blanc, M.2
Van Der Goot, F.G.3
-
6
-
-
84856468404
-
Global profiling of dynamic protein palmitoylation
-
Martin, B.R., Wang, C., Adibekian, A., Tully, S.E. and Cravatt, B.F. (2011) Global profiling of dynamic protein palmitoylation. Nat. Methods 9, 84–89 doi:10.1038/nmeth.1769
-
(2011)
Nat. Methods
, vol.9
, pp. 84-89
-
-
Martin, B.R.1
Wang, C.2
Adibekian, A.3
Tully, S.E.4
Cravatt, B.F.5
-
7
-
-
0037174987
-
Identification of a Ras palmitoyltransferase in Saccharomyces cerevisiae
-
Lobo, S., Greentree, W.K., Linder, M.E. and Deschenes, R.J. (2002) Identification of a Ras palmitoyltransferase in Saccharomyces cerevisiae. J. Biol. Chem. 277, 41268–41273 doi:10.1074/jbc.M206573200
-
(2002)
J. Biol. Chem.
, vol.277
, pp. 41268-41273
-
-
Lobo, S.1
Greentree, W.K.2
Linder, M.E.3
Deschenes, R.J.4
-
8
-
-
0037078323
-
The yeast DHHC cysteine-rich domain protein Akr1p is a palmitoyl transferase
-
Roth, A.F., Feng, Y., Chen, L. and Davis, N.G. (2002) The yeast DHHC cysteine-rich domain protein Akr1p is a palmitoyl transferase. J. Cell Biol. 159, 23–28 doi:10.1083/jcb.200206120
-
(2002)
J. Cell Biol.
, vol.159
, pp. 23-28
-
-
Roth, A.F.1
Feng, Y.2
Chen, L.3
Davis, N.G.4
-
9
-
-
84880959257
-
Quantitative control of protein S-palmitoylation regulates meiotic entry in fission yeast
-
Zhang, M.M., Wu, P.-Y.J., Kelly, F.D., Nurse, P. and Hang, H.C. (2013) Quantitative control of protein S-palmitoylation regulates meiotic entry in fission yeast. PLoS Biol. 11, e1001597 doi:10.1371/journal.pbio.1001597
-
(2013)
Plos Biol.
, vol.11
, pp. e1001597
-
-
Zhang, M.M.1
Wu, P.-Y.J.2
Kelly, F.D.3
Nurse, P.4
Hang, H.C.5
-
10
-
-
33744826797
-
Thematic review series: Lipid posttranslational modifications. Protein palmitoylation by a family of DHHC protein S-acyltransferases
-
Mitchell, D.A., Vasudevan, A., Linder, M.E. and Deschenes, R.J. (2006) Thematic review series: lipid posttranslational modifications. Protein palmitoylation by a family of DHHC protein S-acyltransferases. J. Lipid Res. 47, 1118–1127 doi:10.1194/jlr.R600007-JLR200
-
(2006)
J. Lipid Res.
, vol.47
, pp. 1118-1127
-
-
Mitchell, D.A.1
Vasudevan, A.2
Linder, M.E.3
Deschenes, R.J.4
-
11
-
-
79955649200
-
DHHC palmitoyl transferases: Substrate interactions and (patho)physiology
-
Greaves, J. and Chamberlain, L.H. (2011) DHHC palmitoyl transferases: substrate interactions and (patho)physiology. Trends Biochem. Sci. 36, 245–253 doi:10.1016/j.tibs.2011.01.003
-
(2011)
Trends Biochem. Sci.
, vol.36
, pp. 245-253
-
-
Greaves, J.1
Chamberlain, L.H.2
-
12
-
-
84860698596
-
Putting proteins in their place: Palmitoylation in Huntington disease and other neuropsychiatric diseases
-
Young, F.B., Butland, S.L., Sanders, S.S., Sutton, L.M. and Hayden, M.R. (2012) Putting proteins in their place: palmitoylation in Huntington disease and other neuropsychiatric diseases. Prog. Neurobiol. 97, 220–238 doi:10.1016/j.pneurobio.2011.11.002
-
(2012)
Prog. Neurobiol.
, vol.97
, pp. 220-238
-
-
Young, F.B.1
Butland, S.L.2
Sanders, S.S.3
Sutton, L.M.4
Hayden, M.R.5
-
13
-
-
84934779807
-
Protein S-palmitoylation and cancer
-
Yeste-Velasco, M., Linder, M.E. and Lu, Y.-J. (2015) Protein S-palmitoylation and cancer. Biochim. Biophys. Acta 1856, 107–120 doi:10.1016/j.bbcan. 2015.06.004
-
(2015)
Biochim. Biophys. Acta
, vol.1856
, pp. 107-120
-
-
Yeste-Velasco, M.1
Linder, M.E.2
Lu, Y.-J.3
-
14
-
-
33646899047
-
Global analysis of protein palmitoylation in yeast
-
Roth, A.F., Wan, J., Bailey, A.O., Sun, B., Kuchar, J.A., Green, W.N. et al. (2006) Global analysis of protein palmitoylation in yeast. Cell 125, 1003–1013 doi:10.1016/j.cell.2006.03.042
-
(2006)
Cell
, vol.125
, pp. 1003-1013
-
-
Roth, A.F.1
Wan, J.2
Bailey, A.O.3
Sun, B.4
Kuchar, J.A.5
Green, W.N.6
-
15
-
-
33748064354
-
Unique self-palmitoylation activity of the transport protein particle component Bet3: A mechanism required for protein stability
-
Kummel, D., Heinemann, U. and Veit, M. (2006) Unique self-palmitoylation activity of the transport protein particle component Bet3: a mechanism required for protein stability. Proc. Natl Acad. Sci. U.S.A. 103, 12701–12706 doi:10.1073/pnas.0603513103
-
(2006)
Proc. Natl Acad. Sci. U.S.A.
, vol.103
, pp. 12701-12706
-
-
Kummel, D.1
Heinemann, U.2
Veit, M.3
-
16
-
-
84959087365
-
Autopalmitoylation of TEAD proteins regulates transcriptional output of the Hippo pathway
-
Chan, P.Y., Han, X., Zheng, B., DeRan, M., Yu, J., Jarugumilli, G.K. et al. (2016) Autopalmitoylation of TEAD proteins regulates transcriptional output of the Hippo pathway. Nat. Chem. Biol. 12, 282–289 doi:10.1038/nchembio.2036
-
(2016)
Nat. Chem. Biol.
, vol.12
, pp. 282-289
-
-
Chan, P.Y.1
Han, X.2
Zheng, B.3
DeRan, M.4
Yu, J.5
Jarugumilli, G.K.6
-
17
-
-
84953358284
-
Palmitoylation of TEAD transcription factors is required for their stability and function in hippo pathway signaling
-
Noland, C.L., Gierke, S., Schnier, P.D., Murray, J., Sandoval, W.N., Sagolla, M. et al. (2016) Palmitoylation of TEAD transcription factors is required for their stability and function in hippo pathway signaling. Structure 24, 179–186 doi:10.1016/j.str.2015.11.005
-
(2016)
Structure
, vol.24
, pp. 179-186
-
-
Noland, C.L.1
Gierke, S.2
Schnier, P.D.3
Murray, J.4
Sandoval, W.N.5
Sagolla, M.6
-
18
-
-
61449211070
-
Acyltransferases for secreted signalling proteins (Review)
-
Chang, S.-C. and Magee, A.I. (2009) Acyltransferases for secreted signalling proteins (Review). Mol. Membr. Biol. 26, 104–113 doi:10.1080/09687680802706432
-
(2009)
Mol. Membr. Biol.
, vol.26
, pp. 104-113
-
-
Chang, S.-C.1
Magee, A.I.2
-
19
-
-
15044343147
-
Transmembrane topology of the protein palmitoyl transferase Akr1
-
Politis, E.G., Roth, A.F. and Davis, N.G. (2005) Transmembrane topology of the protein palmitoyl transferase Akr1. J. Biol. Chem. 280, 10156–10163 doi:10.1074/jbc.M411946200
-
(2005)
J. Biol. Chem.
, vol.280
, pp. 10156-10163
-
-
Politis, E.G.1
Roth, A.F.2
Davis, N.G.3
-
20
-
-
64249172320
-
A novel motif at the C-terminus of palmitoyltransferases is essential for Swf1 and Pfa3 function in vivo
-
González Montoro, A., Quiroga, R., Maccioni, H.J.F. and Valdez Taubas, J. (2009) A novel motif at the C-terminus of palmitoyltransferases is essential for Swf1 and Pfa3 function in vivo. Biochem. J. 419, 301–308 doi:10.1042/BJ20080921
-
(2009)
Biochem. J.
, vol.419
, pp. 301-308
-
-
González Montoro, A.1
Quiroga, R.2
Maccioni, H.J.F.3
Valdez Taubas, J.4
-
21
-
-
24744466287
-
DHHC9 and GCP16 constitute a human protein fatty acyltransferase with specificity for H- And N-Ras
-
Swarthout, J.T., Lobo, S., Farh, L., Croke, M.R., Greentree, W.K., Deschenes, R.J. et al. (2005) DHHC9 and GCP16 constitute a human protein fatty acyltransferase with specificity for H- and N-Ras. J. Biol. Chem. 280, 31141–31148 doi:10.1074/jbc.M504113200
-
(2005)
J. Biol. Chem.
, vol.280
, pp. 31141-31148
-
-
Swarthout, J.T.1
Lobo, S.2
Farh, L.3
Croke, M.R.4
Greentree, W.K.5
Deschenes, R.J.6
-
22
-
-
84892467472
-
Regulation of Ras localization and cell transformation by evolutionarily conserved palmitoyltransferases
-
Young, E., Zheng, Z.-Y., Wilkins, A.D., Jeong, H.-T., Li, M., Lichtarge, O. et al. (2014) Regulation of Ras localization and cell transformation by evolutionarily conserved palmitoyltransferases. Mol. Cell. Biol. 34, 374–385 doi:10.1128/MCB.01248-13
-
(2014)
Mol. Cell. Biol.
, vol.34
, pp. 374-385
-
-
Young, E.1
Zheng, Z.-Y.2
Wilkins, A.D.3
Jeong, H.-T.4
Li, M.5
Lichtarge, O.6
-
23
-
-
78649662343
-
Mutational analysis of Saccharomyces cerevisiae Erf2 reveals a two-step reaction mechanism for protein palmitoylation by DHHC enzymes
-
Mitchell, D.A., Mitchell, G., Ling, Y., Budde, C. and Deschenes, R.J. (2010) Mutational analysis of Saccharomyces cerevisiae Erf2 reveals a two-step reaction mechanism for protein palmitoylation by DHHC enzymes. J. Biol. Chem. 285, 38104–38114 doi:10.1074/jbc.M110.169102
-
(2010)
J. Biol. Chem.
, vol.285
, pp. 38104-38114
-
-
Mitchell, D.A.1
Mitchell, G.2
Ling, Y.3
Budde, C.4
Deschenes, R.J.5
-
24
-
-
84857737571
-
DHHC protein S-acyltransferases use similar ping-pong kinetic mechanisms but display different acyl-CoA specificities
-
Jennings, B.C. and Linder, M.E. (2012) DHHC protein S-acyltransferases use similar ping-pong kinetic mechanisms but display different acyl-CoA specificities. J. Biol. Chem. 287, 7236–7245 doi:10.1074/jbc.M111.337246
-
(2012)
J. Biol. Chem.
, vol.287
, pp. 7236-7245
-
-
Jennings, B.C.1
Linder, M.E.2
-
25
-
-
84949008123
-
The cysteine-rich domain of the DHHC3 palmitoyltransferase is palmitoylated and contains tightly bound zinc
-
Gottlieb, C.D., Zhang, S. and Linder, M.E. (2015) The cysteine-rich domain of the DHHC3 palmitoyltransferase is palmitoylated and contains tightly bound zinc. J. Biol. Chem. 290, 29259–29269 doi:10.1074/jbc.M115.691147
-
(2015)
J. Biol. Chem.
, vol.290
, pp. 29259-29269
-
-
Gottlieb, C.D.1
Zhang, S.2
Linder, M.E.3
-
26
-
-
84867267220
-
The Erf4 subunit of the yeast Ras palmitoyl acyltransferase is required for stability of the acyl-Erf2 intermediate and palmitoyl transfer to a Ras2 substrate
-
Mitchell, D.A., Hamel, L.D., Ishizuka, K., Mitchell, G., Schaefer, L.M. and Deschenes, R.J. (2012) The Erf4 subunit of the yeast Ras palmitoyl acyltransferase is required for stability of the acyl-Erf2 intermediate and palmitoyl transfer to a Ras2 substrate. J. Biol. Chem. 287, 34337–34348 doi:10.1074/jbc.M112.379297
-
(2012)
J. Biol. Chem.
, vol.287
, pp. 34337-34348
-
-
Mitchell, D.A.1
Hamel, L.D.2
Ishizuka, K.3
Mitchell, G.4
Schaefer, L.M.5
Deschenes, R.J.6
-
27
-
-
84903538724
-
Mutations in the X-linked intellectual disability gene, zDHHC9, alter autopalmitoylation activity by distinct mechanisms
-
Mitchell, D.A., Hamel, L.D., Reddy, K.D., Farh, L., Rettew, L.M., Sanchez, P.R. et al. (2014) Mutations in the X-linked intellectual disability gene, zDHHC9, alter autopalmitoylation activity by distinct mechanisms. J. Biol. Chem. 289, 18582–18592 doi:10.1074/jbc.M114.567420
-
(2014)
J. Biol. Chem.
, vol.289
, pp. 18582-18592
-
-
Mitchell, D.A.1
Hamel, L.D.2
Reddy, K.D.3
Farh, L.4
Rettew, L.M.5
Sanchez, P.R.6
-
28
-
-
34247636034
-
Mutations in ZDHHC9, which encodes a palmitoyltransferase of NRAS and HRAS, cause X-linked mental retardation associated with a Marfanoid habitus
-
Raymond, F.L., Tarpey, P.S., Edkins, S., Tofts, C., O’Meara, S., Teague, J. et al. (2007) Mutations in ZDHHC9, which encodes a palmitoyltransferase of NRAS and HRAS, cause X-linked mental retardation associated with a Marfanoid habitus. Am. J. Hum. Genet. 80, 982–987 doi:10.1086/513609
-
(2007)
Am. J. Hum. Genet.
, vol.80
, pp. 982-987
-
-
Raymond, F.L.1
Tarpey, P.S.2
Edkins, S.3
Tofts, C.4
O’Meara, S.5
Teague, J.6
-
29
-
-
84941584634
-
The canonical DHHC motif is not absolutely required for the activity of the yeast S-acyltransferases Swf1 and Pfa4
-
González Montoro, A., Chumpen Ramirez, S. and Valdez Taubas, J. (2015) The canonical DHHC motif is not absolutely required for the activity of the yeast S-acyltransferases Swf1 and Pfa4. J. Biol. Chem. 290, 22448–22459 doi:10.1074/jbc.M115.651356
-
(2015)
J. Biol. Chem.
, vol.290
, pp. 22448-22459
-
-
González Montoro, A.1
Chumpen Ramirez, S.2
Valdez Taubas, J.3
-
30
-
-
0039445009
-
Variations of the C2H2 zinc finger motif in the yeast genome and classification of yeast zinc finger proteins
-
Böhm, S., Frishman, D. and Mewes, H.W. (1997) Variations of the C2H2 zinc finger motif in the yeast genome and classification of yeast zinc finger proteins. Nucleic Acids Res. 25, 2464–2469 doi:10.1093/nar/25.12.2464
-
(1997)
Nucleic Acids Res.
, vol.25
, pp. 2464-2469
-
-
Böhm, S.1
Frishman, D.2
Mewes, H.W.3
-
31
-
-
0033614462
-
The Drosophila STAM gene homolog is in a tight gene cluster, and its expression correlates to that of the adjacent gene ial
-
PMID: 10231582
-
Mesilaty-Gross, S., Reich, A., Motro, B. and Wides, R. (1999) The Drosophila STAM gene homolog is in a tight gene cluster, and its expression correlates to that of the adjacent gene ial. Gene 231, 173–186 PMID:10231582
-
(1999)
Gene
, vol.231
, pp. 173-186
-
-
Mesilaty-Gross, S.1
Reich, A.2
Motro, B.3
Wides, R.4
-
32
-
-
0033012819
-
The DHHC domain: A new highly conserved cysteine-rich motif
-
Putilina, T., Wong, P. and Gentleman, S. (1999) The DHHC domain: a new highly conserved cysteine-rich motif. Mol. Cell. Biochem. 195, 219–226 doi:10.1023/A:1006932522197
-
(1999)
Mol. Cell. Biochem.
, vol.195
, pp. 219-226
-
-
Putilina, T.1
Wong, P.2
Gentleman, S.3
-
33
-
-
67649882018
-
Analysis of DHHC acyltransferases implies overlapping substrate specificity and a two-step reaction mechanism
-
Hou, H., John Peter, A.T., Meiringer, C., Subramanian, K. and Ungermann, C. (2009) Analysis of DHHC acyltransferases implies overlapping substrate specificity and a two-step reaction mechanism. Traffic 10, 1061–1073 doi:10.1111/j.1600-0854.2009.00925.x
-
(2009)
Traffic
, vol.10
, pp. 1061-1073
-
-
Hou, H.1
John Peter, A.T.2
Meiringer, C.3
Subramanian, K.4
Ungermann, C.5
-
34
-
-
84883354970
-
Zinc co-ordination by the DHHC cysteine-rich domain of the palmitoyltransferase Swf1
-
González Montoro, A., Quiroga, R. and Valdez Taubas, J. (2013) Zinc co-ordination by the DHHC cysteine-rich domain of the palmitoyltransferase Swf1. Biochem. J. 454, 427–435 doi:10.1042/BJ20121693
-
(2013)
Biochem. J.
, vol.454
, pp. 427-435
-
-
González Montoro, A.1
Quiroga, R.2
Valdez Taubas, J.3
-
35
-
-
84884547415
-
DHHC8-dependent PICK1 palmitoylation is required for induction of cerebellar long-term synaptic depression
-
Thomas, G.M., Hayashi, T., Huganir, R.L. and Linden, D.J. (2013) DHHC8-dependent PICK1 palmitoylation is required for induction of cerebellar long-term synaptic depression. J. Neurosci. 33, 15401–15407 doi:10.1523/JNEUROSCI.1283-13.2013
-
(2013)
J. Neurosci.
, vol.33
, pp. 15401-15407
-
-
Thomas, G.M.1
Hayashi, T.2
Huganir, R.L.3
Linden, D.J.4
-
36
-
-
84863012668
-
Palmitoylation by DHHC5/8 targets GRIP1 to dendritic endosomes to regulate AMPA-R trafficking
-
Thomas, G.M., Hayashi, T., Chiu, S.-L., Chen, C.-M. and Huganir, R.L. (2012) Palmitoylation by DHHC5/8 targets GRIP1 to dendritic endosomes to regulate AMPA-R trafficking. Neuron 73, 482–496 doi:10.1016/j.neuron.2011.11.021
-
(2012)
Neuron
, vol.73
, pp. 482-496
-
-
Thomas, G.M.1
Hayashi, T.2
Chiu, S.-L.3
Chen, C.-M.4
Huganir, R.L.5
-
37
-
-
84916613044
-
Substrate recognition by the cell surface palmitoyl transferase DHHC5
-
Howie, J., Reilly, L., Fraser, N.J., Vlachaki Walker, J.M., Wypijewski, K.J., Ashford, M.L.J. et al. (2014) Substrate recognition by the cell surface palmitoyl transferase DHHC5. Proc. Natl Acad. Sci. U.S.A. 111, 17534–17539 doi:10.1073/pnas.1413627111
-
(2014)
Proc. Natl Acad. Sci. U.S.A.
, vol.111
, pp. 17534-17539
-
-
Howie, J.1
Reilly, L.2
Fraser, N.J.3
Vlachaki Walker, J.M.4
Wypijewski, K.J.5
Ashford, M.L.J.6
-
38
-
-
84942294146
-
Functional advantages of dynamic protein disorder
-
Berlow, R.B., Dyson, H.J. and Wright, P.E. (2015) Functional advantages of dynamic protein disorder. FEBS Lett. 589, 2433–2440 doi:10.1016/j.febslet.2015.06.003
-
(2015)
FEBS Lett.
, vol.589
, pp. 2433-2440
-
-
Berlow, R.B.1
Dyson, H.J.2
Wright, P.E.3
-
39
-
-
84901017485
-
Advantages of proteins being disordered
-
Liu, Z. and Huang, Y. (2014) Advantages of proteins being disordered. Protein Sci. 23, 539–550 doi:10.1002/pro.2443
-
(2014)
Protein Sci.
, vol.23
, pp. 539-550
-
-
Liu, Z.1
Huang, Y.2
-
40
-
-
84919487651
-
Stable expression and function of the inositol 1,4,5-triphosphate receptor requires palmitoylation by a DHHC6/selenoprotein K complex
-
Fredericks, G.J., Hoffmann, F.K.W., Rose, A.H., Osterheld, H.J., Hess, F.M., Mercier, F. et al. (2014) Stable expression and function of the inositol 1,4,5-triphosphate receptor requires palmitoylation by a DHHC6/selenoprotein K complex. Proc. Natl Acad. Sci. U.S.A. 111, 16478–16483 doi:10.1073/pnas.1417176111
-
(2014)
Proc. Natl Acad. Sci. U.S.A.
, vol.111
, pp. 16478-16483
-
-
Fredericks, G.J.1
Hoffmann, F.K.W.2
Rose, A.H.3
Osterheld, H.J.4
Hess, F.M.5
Mercier, F.6
-
41
-
-
84941282873
-
Identification of a novel sequence motif recognized by the ankyrin repeat domain of zDHHC17/13 S-acyltransferases
-
Lemonidis, K., Sanchez-Perez, M.C. and Chamberlain, L.H. (2015) Identification of a novel sequence motif recognized by the ankyrin repeat domain of zDHHC17/13 S-acyltransferases. J. Biol. Chem. 290, 21939–21950 doi:10.1074/jbc.M115.657668
-
(2015)
J. Biol. Chem.
, vol.290
, pp. 21939-21950
-
-
Lemonidis, K.1
Sanchez-Perez, M.C.2
Chamberlain, L.H.3
-
42
-
-
82955207208
-
The ankyrin repeats and DHHC S-acyl transferase domain of AKR1 act independently to regulate switching from vegetative to mating states in yeast
-
Hemsley, P.A. and Grierson, C.S. (2011) The ankyrin repeats and DHHC S-acyl transferase domain of AKR1 act independently to regulate switching from vegetative to mating states in yeast. PLoS ONE 6, e28799 doi:10.1371/journal.pone.0028799
-
(2011)
Plos ONE
, vol.6
, pp. e28799
-
-
Hemsley, P.A.1
Grierson, C.S.2
-
43
-
-
80051710358
-
Palmitoyl acyltransferase zD17 mediates neuronal responses in acute ischemic brain injury by regulating JNK activation in a signaling module
-
Yang, G. and Cynader, M.S. (2011) Palmitoyl acyltransferase zD17 mediates neuronal responses in acute ischemic brain injury by regulating JNK activation in a signaling module. J. Neurosci. 31, 11980–11991 doi:10.1523/JNEUROSCI.2510-11.2011
-
(2011)
J. Neurosci.
, vol.31
, pp. 11980-11991
-
-
Yang, G.1
Cynader, M.S.2
-
44
-
-
0033042833
-
The pool of fatty acids covalently bound to platelet proteins by thioester linkages can be altered by exogenously supplied fatty acids
-
Muszbek, L., Haramura, G., Cluette-Brown, J.E., Van Cott, E.M. and Laposata, M. (1999) The pool of fatty acids covalently bound to platelet proteins by thioester linkages can be altered by exogenously supplied fatty acids. Lipids 34(S1), S331–S337 doi:10.1007/BF02562334
-
(1999)
Lipids
, vol.34
, Issue.S1
, pp. S331-S337
-
-
Muszbek, L.1
Haramura, G.2
Cluette-Brown, J.E.3
Van Cott, E.M.4
Laposata, M.5
-
45
-
-
0023654486
-
Acylation of disc membrane rhodopsin may be nonenzymatic
-
PMID: 3558391
-
O’Brien, P., St Jules, R., Reedy, T., Bazan, N. and Zatz, M. (1987) Acylation of disc membrane rhodopsin may be nonenzymatic. J. Biol. Chem. 262, 5210–5215 PMID:3558391
-
(1987)
J. Biol. Chem.
, vol.262
, pp. 5210-5215
-
-
O’Brien, P.1
St Jules, R.2
Reedy, T.3
Bazan, N.4
Zatz, M.5
-
46
-
-
79953195562
-
Proteomic analysis of fatty-acylated proteins in mammalian cells with chemical reporters reveals S-acylation of histone H3 variants
-
Wilson, J.P., Raghavan, A.S., Yang, Y.-Y., Charron, G. and Hang, H.C. (2011) Proteomic analysis of fatty-acylated proteins in mammalian cells with chemical reporters reveals S-acylation of histone H3 variants. Mol. Cell. Proteomics 10, M110.001198 doi:10.1074/mcp.M110.001198
-
(2011)
Mol. Cell. Proteomics
, vol.10
-
-
Wilson, J.P.1
Raghavan, A.S.2
Yang, Y.-Y.3
Charron, G.4
Hang, H.C.5
-
47
-
-
50949090986
-
S acylation of the hemagglutinin of influenza viruses: Mass spectrometry reveals site-specific attachment of stearic acid to a transmembrane cysteine
-
Kordyukova, L.V., Serebryakova, M.V., Baratova, L.A. and Veit, M. (2008) S acylation of the hemagglutinin of influenza viruses: mass spectrometry reveals site-specific attachment of stearic acid to a transmembrane cysteine. J. Virol. 82, 9288–9292 doi:10.1128/JVI.00704-08
-
(2008)
J. Virol.
, vol.82
, pp. 9288-9292
-
-
Kordyukova, L.V.1
Serebryakova, M.V.2
Baratova, L.A.3
Veit, M.4
-
48
-
-
85013276170
-
Molecular basis of fatty acid selectivity in the zDHHC family of S-acyltransferases revealed by click chemistry
-
Greaves, J., Munro, K.R., Davidson, S.C., Riviere, M., Wojno, J., Smith, T.K. et al. (2017) Molecular basis of fatty acid selectivity in the zDHHC family of S-acyltransferases revealed by click chemistry. Proc. Natl Acad. Sci. U.S.A. 114, E1365–E1374 doi:10.1073/pnas.1612254114
-
(2017)
Proc. Natl Acad. Sci. U.S.A.
, vol.114
, pp. E1365-E1374
-
-
Greaves, J.1
Munro, K.R.2
Davidson, S.C.3
Riviere, M.4
Wojno, J.5
Smith, T.K.6
-
49
-
-
0031788774
-
Structure of N-myristoyltransferase with bound myristoylCoA and peptide substrate analogs
-
Bhatnagar, R.S., Fütterer, K., Farazi, T.A., Korolev, S., Murray, C.L., Jackson-Machelski, E. et al. (1998) Structure of N-myristoyltransferase with bound myristoylCoA and peptide substrate analogs. Nat. Struct. Biol. 5, 1091–1097 doi:10.1038/4202
-
(1998)
Nat. Struct. Biol.
, vol.5
, pp. 1091-1097
-
-
Bhatnagar, R.S.1
Fütterer, K.2
Farazi, T.A.3
Korolev, S.4
Murray, C.L.5
Jackson-Machelski, E.6
-
50
-
-
0034624015
-
Affinity labeling fatty acyl-CoA synthetase with 9-p-azidophenoxy nonanoic acid and the identification of the fatty acid-binding site
-
Black, P.N., DiRusso, C.C., Sherin, D., MacColl, R., Knudsen, J. and Weimar, J.D. (2000) Affinity labeling fatty acyl-CoA synthetase with 9-p-azidophenoxy nonanoic acid and the identification of the fatty acid-binding site. J. Biol. Chem. 275, 38547–38553 doi:10.1074/jbc.M006413200
-
(2000)
J. Biol. Chem.
, vol.275
, pp. 38547-38553
-
-
Black, P.N.1
DiRusso, C.C.2
Sherin, D.3
MacColl, R.4
Knudsen, J.5
Weimar, J.D.6
-
51
-
-
34547947625
-
A molecular caliper mechanism for determining very long-chain fatty acid length
-
Denic, V. and Weissman, J.S. (2007) A molecular caliper mechanism for determining very long-chain fatty acid length. Cell 130, 663–677 doi:10.1016/j.cell.2007.06.031
-
(2007)
Cell
, vol.130
, pp. 663-677
-
-
Denic, V.1
Weissman, J.S.2
-
52
-
-
84940446233
-
Regulation of mitochondrial morphology and function by stearoylation of TFR1
-
Senyilmaz, D., Virtue, S., Xu, X., Tan, C.Y., Griffin, J.L., Miller, A.K. et al. (2015) Regulation of mitochondrial morphology and function by stearoylation of TFR1. Nature 525, 124–128 doi:10.1038/nature14601
-
(2015)
Nature
, vol.525
, pp. 124-128
-
-
Senyilmaz, D.1
Virtue, S.2
Xu, X.3
Tan, C.Y.4
Griffin, J.L.5
Miller, A.K.6
|