-
1
-
-
40849088168
-
The yeast p24 complex is required for the formation of COPI retrograde transport vesicles from the Golgi apparatus
-
Aguilera-Romero, A., J. Kaminska, A. Spang, H. Riezman, and M. Muniz. 2008. The yeast p24 complex is required for the formation of COPI retrograde transport vesicles from the Golgi apparatus. J. Cell Biol. 180:713-720.
-
(2008)
J. Cell Biol.
, vol.180
, pp. 713-720
-
-
Aguilera-Romero, A.1
Kaminska, J.2
Spang, A.3
Riezman, H.4
Muniz, M.5
-
2
-
-
42049089309
-
The class v myosin motor protein, Myo2, plays a major role in mitochondrial motility in Saccharomyces cerevisiae
-
Altmann, K., M. Frank, D. Neumann, S. Jakobs, and B. Westermann. 2008. The class V myosin motor protein, Myo2, plays a major role in mitochondrial motility in Saccharomyces cerevisiae. J. Cell Biol. 181:119-130.
-
(2008)
J. Cell Biol.
, vol.181
, pp. 119-130
-
-
Altmann, K.1
Frank, M.2
Neumann, D.3
Jakobs, S.4
Westermann, B.5
-
3
-
-
27644467457
-
Role of essential genes in mitochondrial morphogenesis in Saccharomyces cerevisiae
-
Altmann, K., and B. Westermann. 2005. Role of essential genes in mitochondrial morphogenesis in Saccharomyces cerevisiae. Mol. Biol. Cell 16: 5410-5417.
-
(2005)
Mol. Biol. Cell
, vol.16
, pp. 5410-5417
-
-
Altmann, K.1
Westermann, B.2
-
4
-
-
0035914416
-
The coatomer-interacting protein Dsl1p is required for Golgi-to-endoplasmic reticulum retrieval in yeast
-
Andag, U., T. Neumann, and H. D. Schmitt. 2001. The coatomer-interacting protein Dsl1p is required for Golgi-to-endoplasmic reticulum retrieval in yeast. J. Biol. Chem. 276:39150-39160.
-
(2001)
J. Biol. Chem.
, vol.276
, pp. 39150-39160
-
-
Andag, U.1
Neumann, T.2
Schmitt, H.D.3
-
5
-
-
0347695021
-
Dsl1p, an essential component of the Golgi-endoplasmic reticulum retrieval system in yeast, uses the same sequence motif to interact with different subunits of the COPI vesicle coat
-
Andag, U., and H. D. Schmitt. 2003. Dsl1p, an essential component of the Golgi-endoplasmic reticulum retrieval system in yeast, uses the same sequence motif to interact with different subunits of the COPI vesicle coat. J. Biol. Chem. 278:51722-51734.
-
(2003)
J. Biol. Chem.
, vol.278
, pp. 51722-51734
-
-
Andag, U.1
Schmitt, H.D.2
-
6
-
-
33748377124
-
Quantification of protein half-lives in the budding yeast proteome
-
Belle, A., A. Tanay, L. Bitinca, R. Shamir, and E. K. O'Shea. 2006. Quantification of protein half-lives in the budding yeast proteome. Proc. Natl. Acad. Sci. USA 103:13004-13009.
-
(2006)
Proc. Natl. Acad. Sci. USA
, vol.103
, pp. 13004-13009
-
-
Belle, A.1
Tanay, A.2
Bitinca, L.3
Shamir, R.4
O'Shea, E.K.5
-
7
-
-
17444394885
-
Requirement for microtubules and dynein motors in the earliest stages of peroxisome biogenesis
-
Brocard, C. B., K. K. Boucher, C. Jedeszko, P. K. Kim, and P. A. Walton. 2005. Requirement for microtubules and dynein motors in the earliest stages of peroxisome biogenesis. Traffic 6:386-395 (Pubitemid 40542765)
-
(2005)
Traffic
, vol.6
, pp. 386-395
-
-
Brocard, C.B.1
Boucher, K.K.2
Jedeszko, C.3
Kim, P.K.4
Walton, P.A.5
-
8
-
-
33745618174
-
Rtn1p is involved in structuring the cortical endoplasmic reticulum
-
De Craene, J.-O., J. Coleman, P. Estrada de Martin, M. Pypaert, S. Anderson, J. R. Yates III, S. Ferro-Novick, and P. Novick. 2006. Rtn1p is involved in structuring the cortical endoplasmic reticulum. Mol. Biol. Cell 17:30093020.
-
(2006)
Mol. Biol. Cell
, vol.17
, pp. 30093020
-
-
De Craene, J.-O.1
Coleman, J.2
De Estrada Martin, P.3
Pypaert, M.4
Anderson, S.5
Yates III, J.R.6
Ferro-Novick, S.7
Novick, P.8
-
9
-
-
34247180015
-
The origin of eukaryotes: A reappraisal
-
de Duve, C. 2007. The origin of eukaryotes: a reappraisal. Nat. Rev. Genet. 8:395-403.
-
(2007)
Nat. Rev. Genet.
, vol.8
, pp. 395-403
-
-
De Duve, C.1
-
10
-
-
0033610793
-
The Saccharomyces cerevisiae TCM62 gene encodes a chaperone necessary for the assembly of the mitochondrial succinate dehydrogenase (complex II)
-
Dibrov, E., S. Fu, and B. D. Lemire. 1998. The Saccharomyces cerevisiae TCM62 gene encodes a chaperone necessary for the assembly of the mitochondrial succinate dehydrogenase (complex II). J. Biol. Chem. 273:3204232048.
-
(1998)
J. Biol. Chem.
, vol.273
, pp. 3204232048
-
-
Dibrov, E.1
Fu, S.2
Lemire, B.D.3
-
11
-
-
0035954435
-
Nup2p dynamically associates with the distal regions of the yeast nuclear pore complex
-
Dilworth, D. J., A. Suprapto, J. C. Padovan, B. T. Chait, R. W. Wozniak, M. P. Rout, and J. D. Aitchison. 2001. Nup2p dynamically associates with the distal regions of the yeast nuclear pore complex. J. Cell Biol. 153:1465-1478 (Pubitemid 34286130)
-
(2001)
J. Cell Biol.
, vol.153
, pp. 1465-1478
-
-
Dilworth, D.J.1
Suprapto, A.2
Padovan, J.C.3
Chait, B.T.4
Wozniak, R.W.5
Rout, M.P.6
Aitchison, J.D.7
-
12
-
-
0031007808
-
Enlarged peroxisomes are present in oleic acid-grown Yarrowia lipolytica overexpressing the PEX16 gene encoding an intraperoxisomal peripheral membrane peroxin
-
Eitzen, G. A., R. K. Szilard, and R. A. Rachubinski. 1997. Enlarged peroxisomes are present in oleic acid-grown Yarrowia lipolytica overexpressing the PEX16 gene encoding an intraperoxisomal peripheral membrane peroxin. J. Cell Biol. 137:1265-1278.
-
(1997)
J. Cell Biol.
, vol.137
, pp. 1265-1278
-
-
Eitzen, G.A.1
Szilard, R.K.2
Rachubinski, R.A.3
-
13
-
-
0029833897
-
The Yarrowia lipolytica gene PAY5 encodes a peroxisomal integral membrane protein homologous to the mammalian peroxisome assembly factor PAF-1
-
Eitzen, G. A., V. I. Titorenko, J. J. Smith, M. Veenhuis, R. K. Szilard, and R. A. Rachubinski. 1996. The Yarrowia lipolytica gene PAY5 encodes a peroxisomal integral membrane protein homologous to the mammalian peroxisome assembly factor PAF-1. J. Biol. Chem. 271:20300-20306.
-
(1996)
J. Biol. Chem.
, vol.271
, pp. 20300-20306
-
-
Eitzen, G.A.1
Titorenko, V.I.2
Smith, J.J.3
Veenhuis, M.4
Szilard, R.K.5
Rachubinski, R.A.6
-
14
-
-
33646093006
-
The peroxisomal membrane protein Inp2p is the peroxisome-specific receptor for the myosin v motor Myo2p of Saccharomyces cerevisiae
-
Fagarasanu, A., M. Fagarasanu, G. A. Eitzen, J. D. Aitchison, and R. A. Rachubinski. 2006. The peroxisomal membrane protein Inp2p is the peroxisome-specific receptor for the myosin V motor Myo2p of Saccharomyces cerevisiae. Dev. Cell 10:587-600.
-
(2006)
Dev. Cell
, vol.10
, pp. 587-600
-
-
Fagarasanu, A.1
Fagarasanu, M.2
Eitzen, G.A.3
Aitchison, J.D.4
Rachubinski, R.A.5
-
15
-
-
0022253765
-
Post-translational import of fatty acylCoA oxidase and catalase into peroxisomes of rat liver in vitro
-
Fujiki, Y., and P. B. Lazarow. 1985. Post-translational import of fatty acylCoA oxidase and catalase into peroxisomes of rat liver in vitro. J. Biol. Chem. 260:5603-5609 (Pubitemid 15008119)
-
(1985)
J. Biol. Chem.
, vol.260
, pp. 5603-5609
-
-
Fujiki, Y.1
Lazarow, P.B.2
-
16
-
-
0021722336
-
Synthesis of a major integral membrane polypeptide of rat liver peroxisomes on free polysomes
-
Fujiki, Y., R. A. Rachubinski, and P. B. Lazarow. 1984. Synthesis of a major integral membrane polypeptide of rat liver peroxisomes on free polysomes. Proc. Natl. Acad. Sci. USA 81:7127-7131.
-
(1984)
Proc. Natl. Acad. Sci. USA
, vol.81
, pp. 7127-7131
-
-
Fujiki, Y.1
Rachubinski, R.A.2
Lazarow, P.B.3
-
17
-
-
0021962086
-
Synthesis of 3-ketoacyl-CoA thiolase of rat liver peroxisomes on free polyribosomes as a larger precursor. Induction of thiolase mRNA activity by clofibrate
-
Fujiki, Y., R. A. Rachubinski, R. M. Mortensen, and P. B. Lazarow. 1985. Synthesis of 3-ketoacyl-CoA thiolase of rat liver peroxisomes on free polyribosomes as a larger precursor. Induction of thiolase mRNA activity by clofibrate. Biochem. J. 226:697-704.
-
(1985)
Biochem. J.
, vol.226
, pp. 697-704
-
-
Fujiki, Y.1
Rachubinski, R.A.2
Mortensen, R.M.3
Lazarow, P.B.4
-
18
-
-
0038107461
-
Involvement of the endoplasmic reticulum in peroxisome formation
-
Geuze, H. J., J. L. Murk, A. K. Stroobants, J. M. Griffith, M. J. Kleijmeer, A. J. Koster, A. J. Verkleij, B. Distel, and H. F. Tabak. 2003. Involvement of the endoplasmic reticulum in peroxisome formation. Mol. Biol. Cell 14: 2900-2907.
-
(2003)
Mol. Biol. Cell
, vol.14
, pp. 2900-2907
-
-
Geuze, H.J.1
Murk, J.L.2
Stroobants, A.K.3
Griffith, J.M.4
Kleijmeer, M.J.5
Koster, A.J.6
Verkleij, A.J.7
Distel, B.8
Tabak, H.F.9
-
19
-
-
0037173615
-
Functional profiling of the Saccharomyces cerevisiae genome
-
Giaever, G., A. M. Chu, L. Ni., C. Connelly, L. Riles, S. Véronneau, S. Dow, A. Lucau-Danila, K. Anderson, B. André, A. P. Arkin, A. Astromoff, M. El-Bakkoury, R. Bangham, R. Benito, S. Brachat, S. Campanaro, M. Curtiss, K. Davis, A. Deutschbauer, K. D. Entian, P. Flaherty, F. Foury', D. J. Garfinkel, M. Gerstein, D. Gotte, U. Güldener, J. H. Hegemann, S. Hempel, Z. Herman, D. F. Jaramillo, D. E. Kelly, S. L. Kelly, P. Kötter, D. LaBonte, D. C. Lamb, N. Lan, H. Liang, H. Liao, L. Liu, C. Luo, M. Lussier, R. Mao, P. Menard, S. L. Ooi, J. L. Revuelta, C. J. Roberts, M. Rose, P. RossMacdonald, B. Scherens, G. Schimmack, B. Shafer, D. D. Shoemaker, S. Sookhai-Mahadeo, R. K. Storms, J. N. Strathern, G. Valle, M. Voet, G. Volckaert, C. Y. Wang, T. R. Ward, J. Wilhelmy, E. A. Winzeler, Y. Yang, G. Yen, E. Youngman, K. Yu, H. Bussey, J. D. Boecke, M. Snyder, P. Philippsen, R. W. Davis, and M. Johnston. 2002. Functional profiling of the Saccharomyces cerevisiae genome. Nature 418:387-391.
-
(2002)
Nature
, vol.418
, pp. 387-391
-
-
Giaever, G.1
Chu, A.M.2
Ni, L.3
Connelly, C.4
Riles, L.5
Véronneau, S.6
Dow, S.7
Lucau-Danila, A.8
Anderson, K.9
André, B.10
Arkin, A.P.11
Astromoff, A.12
El-Bakkoury, M.13
Bangham, R.14
Benito, R.15
Brachat, S.16
Campanaro, S.17
Curtiss, M.18
Davis, K.19
Deutschbauer, A.20
Entian, K.D.21
Flaherty, P.22
Foury, F.23
Garfinkel, D.J.24
Gerstein, M.25
Gotte, D.26
Güldener, U.27
Hegemann, J.H.28
Hempel, S.29
Herman, Z.30
Jaramillo, D.F.31
Kelly, D.E.32
Kelly, S.L.33
Kötter, P.34
LaBonte, D.35
Lamb, D.C.36
Lan, N.37
Liang, H.38
Liao, H.39
Liu, L.40
Luo, C.41
Lussier, M.42
Mao, R.43
Menard, P.44
Ooi, S.L.45
Revuelta, J.L.46
Roberts, C.J.47
Rose, M.48
RossMacdonald, P.49
Scherens, B.50
Schimmack, G.51
Shafer, B.52
Shoemaker, D.D.53
Sookhai-Mahadeo, S.54
Storms, R.K.55
Strathern, J.N.56
Valle, G.57
Voet, M.58
Volckaert, G.59
Wang, C.Y.60
Ward, T.R.61
Wilhelmy, J.62
Winzeler, E.A.63
Yang, Y.64
Yen, G.65
Youngman, E.66
Yu, K.67
Bussey, H.68
Boecke, J.D.69
Snyder, M.70
Philippsen, P.71
Davis, R.W.72
Johnston, M.73
more..
-
20
-
-
33845295814
-
The biochemistry of oleate induction: Transcriptional upregulation and peroxisome proliferation
-
Gurvitz, A., and H. Rottensteiner. 2006. The biochemistry of oleate induction: transcriptional upregulation and peroxisome proliferation. Biochim. Biophys. Acta 1763:1392-1402.
-
(2006)
Biochim. Biophys. Acta
, vol.1763
, pp. 1392-1402
-
-
Gurvitz, A.1
Rottensteiner, H.2
-
21
-
-
22144465170
-
Contribution of the endoplasmic reticulum to peroxisome formation
-
Hoepfner, D., D. Schildknegt, I. Braakman, P. Philippsen, and H. F. Tabak. 2005. Contribution of the endoplasmic reticulum to peroxisome formation. Cell 122:85-95 (Pubitemid 40977942)
-
(2005)
Cell
, vol.122
, pp. 85-95
-
-
Hoepfner, D.1
Schildknegt, D.2
Braakman, I.3
Philippsen, P.4
Tabak, H.F.5
-
22
-
-
0026080044
-
PAS3, a Saccharomyces cerevisiae gene encoding a peroxisomal integral membrane protein essential for peroxisome biogenesis
-
Höhfeld, J., M. Veenhuis, and W.-H. Kunau. 1991. PAS3, a Saccharomyces cerevisiae gene encoding a peroxisomal integral membrane protein essential for peroxisome biogenesis. J. Cell Biol. 114:1167-1178.
-
(1991)
J. Cell Biol.
, vol.114
, pp. 1167-1178
-
-
Höhfeld, J.1
Veenhuis, M.2
Kunau, W.-H.3
-
23
-
-
0034616930
-
Functional discovery via a compendium of expression profiles
-
Hughes, T. R., M. J. Marton, A. R. Jones, C. J. Roberts, R. Stoughton, C. D. Armour, H. A. Bennett, E. Coffey, H. Dai, Y. D. He, M. J. Kidd, A. M. King, M. R. Meyer, D. Slade, P. Y. Lum, S. B. Stepaniants, D. D. Shoemaker, D. Gachotte, K. Chakraburtty, J. Simon, M. Bard, and S. H. Friend. 2000. Functional discovery via a compendium of expression profiles. Cell 102:109126.
-
(2000)
Cell
, vol.102
, pp. 109126
-
-
Hughes, T.R.1
Marton, M.J.2
Jones, A.R.3
Roberts, C.J.4
Stoughton, R.5
Armour, C.D.6
Bennett, H.A.7
Coffey, E.8
Dai, H.9
He, Y.D.10
Kidd, M.J.11
King, A.M.12
Meyer, M.R.13
Slade, D.14
Lum, P.Y.15
Stepaniants, S.B.16
Shoemaker, D.D.17
Gachotte, D.18
Chakraburtty, K.19
Simon, J.20
Bard, M.21
Friend, S.H.22
more..
-
24
-
-
0142184341
-
Global analysis of protein localization in budding yeast
-
Huh, W.-K., J. V. Falvo, L. C. Gerke, A. S. Carroll, R. W. Howson, J. S. Weissman, and E. K. O'Shea. 2003. Global analysis of protein localization in budding yeast. Nature 425:686-691 (Pubitemid 37314307)
-
(2003)
Nature
, vol.425
, pp. 686-691
-
-
Huh, W.-K.1
Falvo, J.V.2
Gerke, L.C.3
Carroll, A.S.4
Howson, R.W.5
Weissman, J.S.6
O'Shea, E.K.7
-
25
-
-
0031772260
-
Global regulatory functions of Oaf1p and Pip2p (Oaf2p), transcription factors that regulate genes encoding peroxisomal proteins in Saccharomyces cerevisiae
-
Karpichev, L, and G. M. Small. 1998. Global regulatory functions of Oaf1p and Pip2p (Oaf2p), transcription factors that regulate genes encoding peroxisomal proteins in Saccharomyces cerevisiae. Mol. Cell. Biol. 18:6560-6570 (Pubitemid 28500545)
-
(1998)
Mol. Cell. Biol.
, vol.18
, pp. 6560-6570
-
-
Karpichev, L.1
Small, G.M.2
-
26
-
-
33646791462
-
The origin and maintenance of mammalian peroxisomes involves a de novo PEX16-dependent pathway from the ER
-
Kim, P. K., R. T. Mullen, U. Schumann, and J. Lippincott-Schwartz. 2006. The origin and maintenance of mammalian peroxisomes involves a de novo PEX16-dependent pathway from the ER. J. Cell Biol. 173:521-532.
-
(2006)
J. Cell Biol.
, vol.173
, pp. 521-532
-
-
Kim, P.K.1
Mullen, R.T.2
Schumann, U.3
Lippincott-Schwartz, J.4
-
27
-
-
24344480456
-
Dsl1p, Tip20p, and the novel Dsl3(Sec39) protein are required for the stability of the Q/t-SNARE complex at the endoplasmic reticulum in yeast
-
Kraynack, B. A., A. Chan, E. Rosenthal, M. Essid, B. Umansky, M. G. Waters, and H. D. Schmitt. 2005. Dsl1p, Tip20p, and the novel Dsl3(Sec39) protein are required for the stability of the Q/t-SNARE complex at the endoplasmic reticulum in yeast. Mol. Biol. Cell 16:3963-3977.
-
(2005)
Mol. Biol. Cell
, vol.16
, pp. 3963-3977
-
-
Kraynack, B.A.1
Chan, A.2
Rosenthal, E.3
Essid, M.4
Umansky, B.5
Waters, M.G.6
Schmitt, H.D.7
-
28
-
-
20344382542
-
Kinesin and dynein move a peroxisome in vivo: A tug-of-war or coordinated movement?
-
Kural, C., H. Kim, S. Syed, G. Goshima, V. I. Gelfand, and P. R. Selvin. 2005. Kinesin and dynein move a peroxisome in vivo: a tug-of-war or coordinated movement? Science 308:1469-1472.
-
(2005)
Science
, vol.308
, pp. 1469-1472
-
-
Kural, C.1
Kim, H.2
Syed, S.3
Goshima, G.4
Gelfand, V.I.5
Selvin, P.R.6
-
29
-
-
0041765775
-
Peroxisome biogenesis: Advances and conundrums
-
Lazarow, P. B. 2003. Peroxisome biogenesis: advances and conundrums. Curr. Opin. Cell Biol. 15:489-497.
-
(2003)
Curr. Opin. Cell Biol.
, vol.15
, pp. 489-497
-
-
Lazarow, P.B.1
-
31
-
-
33947514836
-
MAIG02 is involved in exit of seed storage proteins from the endoplasmic reticulum in Arabidopsis thaliana
-
Li, L., T. Shimada, H. Takahashi, H. Ueda, Y. Fukao, M. Kondo, M. Nishimura, and I. Hara-Nishimura. 2006. MAIG02 is involved in exit of seed storage proteins from the endoplasmic reticulum in Arabidopsis thaliana. Plant Cell 18:3535-3547 (Pubitemid 46464910)
-
(2006)
Plant Cell
, vol.18
, pp. 3535-3547
-
-
Li, L.1
Shimada, T.2
Takahashi, H.3
Ueda, H.4
Fukao, Y.5
Kondo, M.6
Nishimura, M.7
Hara-Nishimura, I.8
-
32
-
-
0037128209
-
PEX11 promotes peroxisome division independently of peroxisome metabolism
-
Li, X., and S. J. Gould. 2002. PEX11 promotes peroxisome division independently of peroxisome metabolism. J. Cell Biol. 156:643-651 (Pubitemid 34839880)
-
(2002)
J. Cell Biol.
, vol.156
, pp. 643-651
-
-
Li, X.1
Gould, S.J.2
-
33
-
-
13044312086
-
Human PEX19: CDNA cloning by functional complementation, mutation analysis in a patient with Zellweger syndrome, and potential role in peroxisomal membrane assembly
-
Matsuzono, Y., N. Kinoshita, S. Tamura, N. Shimozawa, M. Hamasaki, K. Ghaedi, R. J. A. Wanders, Y. Suzuki, N. Kondo, and Y. Fujiki. 1999. Human PEX19: cDNA cloning by functional complementation, mutation analysis in a patient with Zellweger syndrome, and potential role in peroxisomal membrane assembly. Proc. Natl. Acad. Sci. USA 96:2116-2121.
-
(1999)
Proc. Natl. Acad. Sci. USA
, vol.96
, pp. 2116-2121
-
-
Matsuzono, Y.1
Kinoshita, N.2
Tamura, S.3
Shimozawa, N.4
Hamasaki, M.5
Ghaedi, K.6
Wanders, R.J.A.7
Suzuki, Y.8
Kondo, N.9
Fujiki, Y.10
-
34
-
-
3142536716
-
Exploration of essential gene functions via titratable promoter alleles
-
Mnaimneh, S., A. P. Davierwala, J. Haynes, J. Moffat, W.-T. Peng, W. Zhang, X. Yang, J. Pootoolal, G. Chua, A. Lopez, M. Trochesset, D. Morse, N. J. Krogan, S. L. Hiley, Z. Li, Q. Morris, J. Grigull, N. Mitsakakis, C. J. Roberts, J. F. Greenblatt, C. Boone, C. A. Kaiser, B. J. Andrews, and T. R. Hughes. 2004. Exploration of essential gene functions via titratable promoter alleles. Cell 118:31-44 (Pubitemid 38902812)
-
(2004)
Cell
, vol.118
, pp. 31-44
-
-
Mnaimneh, S.1
Davierwala, A.P.2
Haynes, J.3
Moffat, J.4
Peng, W.-T.5
Zhang, W.6
Yang, X.7
Pootoolal, J.8
Chua, G.9
Lopez, A.10
Trochesset, M.11
Morse, D.12
Krogan, N.J.13
Hiley, S.L.14
Li, Z.15
Morris, Q.16
Grigull, J.17
Mitsakakis, N.18
Roberts, C.J.19
Greenblatt, J.F.20
Boone, C.21
Kaiser, C.A.22
Andrews, B.J.23
Hughes, T.R.24
more..
-
35
-
-
34547595860
-
Yeast peroxisomes multiply by growth and division
-
Motley, A. M., and E. H. Hettema. 2007. Yeast peroxisomes multiply by growth and division. J. Cell Biol. 178:399-410.
-
(2007)
J. Cell Biol.
, vol.178
, pp. 399-410
-
-
Motley, A.M.1
Hettema, E.H.2
-
36
-
-
0015334792
-
Peroxisomes in absorptive cells of mammalian small intestine
-
Novikoff, P. M., and A. B. Novikoff. 1972. Peroxisomes in absorptive cells of mammalian small intestine. J. Cell Biol. 53:532-560.
-
(1972)
J. Cell Biol.
, vol.53
, pp. 532-560
-
-
Novikoff, P.M.1
Novikoff, A.B.2
-
37
-
-
0032550208
-
Peroxisome biogenesis: Involvement of ARF and coatomer
-
Passreiter, M., M. Anton, D. Lay, R. Frank, C. Harter, F. T. Wieland, K. Gorgas, and W. W. Just. 1998. Peroxisome biogenesis: involvement of ARF and coatomer. J. Cell Biol. 141:373-383 (Pubitemid 28237086)
-
(1998)
J. Cell Biol.
, vol.141
, pp. 373-383
-
-
Passreiter, M.1
Anton, M.2
Lay, D.3
Frank, R.4
Harter, C.5
Wieland, F.T.6
Gorgas, K.7
Just, W.W.8
-
38
-
-
0023988955
-
Evidence that luminal ER proteins are sorted from secreted proteins in a post-ER compartment
-
Pelham, H. R. B. 1988. Evidence that luminal ER proteins are sorted from secreted proteins in a post-ER compartment. EMBO J. 7:913-918.
-
(1988)
EMBO J.
, vol.7
, pp. 913-918
-
-
Pelham, H.R.B.1
-
39
-
-
0037708880
-
A panoramic view of yeast noncoding RNA processing
-
Peng, W. T., M. D. Robinson, S. Mnaimneh, N. J. Krogan, G. Cagney, Q. Morris, A. P. Davierwala, J. Grigull, X. Yang, W. Zhang, N. Mitsakakis, O. W. Ryan, N. Datta, V. Jojic, C. Pal, V. Canadien, D. Richards, B. Beattie, L. F. Wu, S. J. Altschuler, S. Roweis, B. J. Frey, A. Emili, J. F. Greenblatt, and T. R. Hughes. 2003. A panoramic view of yeast noncoding RNA processing. Cell 113:919-933 (Pubitemid 36792034)
-
(2003)
Cell
, vol.113
, pp. 919-933
-
-
Peng, W.T.1
Robinson, M.D.2
Mnaimneh, S.3
Krogan, N.J.4
Cagney, G.5
Morris, Q.6
Davierwala, A.P.7
Grigull, J.8
Yang, X.9
Zhang, W.10
Mitsakakis, N.11
Ryan, O.W.12
Datta, N.13
Jojic, V.14
Pal, C.15
Canadien, V.16
Richards, D.17
Beattie, B.18
Wu, L.F.19
Altschuler, S.J.20
Roweis, S.21
Frey, B.J.22
Emili, A.23
Greenblatt, J.F.24
Hughes, T.R.25
more..
-
40
-
-
0031770876
-
Sec61p serves multiple roles in secretory precursor binding and translocation into the endoplasmic reticulum membrane
-
Pilon, M., K. Romisch, D. Quach, and R. Schekman. 1998. Sec61p serves multiple roles in secretory precursor binding and translocation into the endoplasmic reticulum membrane. Mol. Biol. Cell 9:3455-3473.
-
(1998)
Mol. Biol. Cell
, vol.9
, pp. 3455-3473
-
-
Pilon, M.1
Romisch, K.2
Quach, D.3
Schekman, R.4
-
41
-
-
33845326985
-
Peroxisomal β-oxidation-a metabolic pathway with multiple functions
-
Poirier, Y., V. D. Antonenkov, T. Glumoff, and J. K. Hiltunen. 2006. Peroxisomal β-oxidation-a metabolic pathway with multiple functions. Biochim. Biophys. Acta 1763:1413-1426.
-
(2006)
Biochim. Biophys. Acta
, vol.1763
, pp. 1413-1426
-
-
Poirier, Y.1
Antonenkov, V.D.2
Glumoff, T.3
Hiltunen, J.K.4
-
42
-
-
0021683013
-
Acyl-CoA oxidase and hydratase-dehydrogenase, two enzymes of the peroxisomal β-oxidation system, are synthesized on free polysomes of clofibratetreated rat liver
-
Rachubinski, R. A., Y. Fujiki, R. M. Mortensen, and P. B. Lazarow. 1984. Acyl-CoA oxidase and hydratase-dehydrogenase, two enzymes of the peroxisomal β-oxidation system, are synthesized on free polysomes of clofibratetreated rat liver. J. Cell Biol. 99:2241-2246 (Pubitemid 15181889)
-
(1984)
J. Cell Biol.
, vol.99
, pp. 2241-2246
-
-
Rachubinski, R.A.1
Fujiki, Y.2
Mortensen, R.M.3
Lazarow, P.B.4
-
43
-
-
0035661564
-
Golgi-to-endoplasmic reticulum (ER) retrograde traffic in yeast requires Dsl1p, a component of the ER target site that interacts with a COPI coat subunit
-
Reilly, B. A., B. A. Kraynack, S. M. VanRheenen, and M. G. Waters. 2001. Golgi-to-endoplasmic reticulum (ER) retrograde traffic in yeast requires Dsl1p, a component of the ER target site that interacts with a COPI coat subunit. Mol. Biol. Cell 12:3783-3796.
-
(2001)
Mol. Biol. Cell
, vol.12
, pp. 3783-3796
-
-
Reilly, B.A.1
Kraynack, B.A.2
Vanrheenen, S.M.3
Waters, M.G.4
-
44
-
-
0141541655
-
Conserved function of Pex11p and the novel Pex25p and Pex27p in peroxisome biogenesis
-
Rottensteiner, H., K. Stein, E. Sonnenhol, and R. Erdmann. 2003. Conserved function of Pex11p and the novel Pex25p and Pex27p in peroxisome biogenesis. Mol. Biol. Cell 14:4316-4328.
-
(2003)
Mol. Biol. Cell
, vol.14
, pp. 4316-4328
-
-
Rottensteiner, H.1
Stein, K.2
Sonnenhol, E.3
Erdmann, R.4
-
45
-
-
2942578315
-
Isolation and characterization of new Saccharomyces cerevisiae mutants perturbed in nuclear pore complex assembly
-
Ryan, K. J., and S. R. Wente. 2002. Isolation and characterization of new Saccharomyces cerevisiae mutants perturbed in nuclear pore complex assembly. BMC Genet. 3:17.
-
(2002)
BMC Genet.
, vol.3
, pp. 17
-
-
Ryan, K.J.1
Wente, S.R.2
-
46
-
-
0034611003
-
PEX19 binds multiple peroxisomal membrane proteins, is predominantly cytoplasmic, and is required for peroxisome membrane synthesis
-
Sacksteder, K. A., J. M. Jones, S. T. South, X. Li, Y. Liu, and S. J. Gould. 2000. PEX19 binds multiple peroxisomal membrane proteins, is predominantly cytoplasmic, and is required for peroxisome membrane synthesis. J. Cell Biol. 148:931-944.
-
(2000)
J. Cell Biol.
, vol.148
, pp. 931-944
-
-
Sacksteder, K.A.1
Jones, J.M.2
South, S.T.3
Li, X.4
Liu, Y.5
Gould, S.J.6
-
47
-
-
0030810961
-
Brefeldin A interferes with peroxisomal protein sorting in the yeast Hansenula polymorpha
-
Salomons, F. A., I. J. van der Klei, A. M. Kram, W. Harder, and M. Veenhuis. 1997. Brefeldin A interferes with peroxisomal protein sorting in the yeast Hansenula polymorpha. FEBS Lett. 411:133-139.
-
(1997)
FEBS Lett.
, vol.411
, pp. 133-139
-
-
Salomons, F.A.1
Van Der Klei, I.J.2
Kram, A.M.3
Harder, W.4
Veenhuis, M.5
-
48
-
-
0023907348
-
Study of the coinduction by fatty acids of catalase A and acyl-CoA oxidase in standard and mutant Saccharomyces cerevisiae
-
Skoneczny, M., A. Chelstowska, and J. Rytka. 1988. Study of the coinduction by fatty acids of catalase A and acyl-CoA oxidase in standard and mutant Saccharomyces cerevisiae. Eur. J. Biochem. 174:297-302.
-
(1988)
Eur. J. Biochem.
, vol.174
, pp. 297-302
-
-
Skoneczny, M.1
Chelstowska, A.2
Rytka, J.3
-
49
-
-
19044367930
-
Transcriptome profiling to identify genes involved in peroxisome assembly and function
-
Smith, J. J., M. Marelli, R. H. Christmas, F. J. Vizeacoumar, D. J. Dilworth, T. Ideker, T. Galitski, K. Dimitrov, R. A. Rachubinski, and J. D. Aitchison. 2002. Transcriptome profiling to identify genes involved in peroxisome assembly and function. J. Cell Biol. 158:259-271.
-
(2002)
J. Cell Biol.
, vol.158
, pp. 259-271
-
-
Smith, J.J.1
Marelli, M.2
Christmas, R.H.3
Vizeacoumar, F.J.4
Dilworth, D.J.5
Ideker, T.6
Galitski, T.7
Dimitrov, K.8
Rachubinski, R.A.9
Aitchison, J.D.10
-
50
-
-
33745437465
-
Expression and functional profiling reveal distinct gene classes involved in fatty acid metabolism
-
Smith, J. J., Y. Sydorskyy, M. Marelli, D. Hwang, H. Bolouri, R. A. Rachubinski, and J. D. Aitchison. 2006. Expression and functional profiling reveal distinct gene classes involved in fatty acid metabolism. Mol. Syst. Biol. 2:9.
-
(2006)
Mol. Syst. Biol.
, vol.2
, pp. 9
-
-
Smith, J.J.1
Sydorskyy, Y.2
Marelli, M.3
Hwang, D.4
Bolouri, H.5
Rachubinski, R.A.6
Aitchison, J.D.7
-
51
-
-
0035834125
-
Inactivation of the endoplasmic reticulum protein translocation factor, Sec61p, or its homolog, Ssh1p, does not affect peroxisome biogenesis
-
South, S. T., E. Baumgart, and S. J. Gould. 2001. Inactivation of the endoplasmic reticulum protein translocation factor, Sec61p, or its homolog, Ssh1p, does not affect peroxisome biogenesis. Proc. Natl. Acad. Sci. USA 98:12027-12031.
-
(2001)
Proc. Natl. Acad. Sci. USA
, vol.98
, pp. 12027-12031
-
-
South, S.T.1
Baumgart, E.2
Gould, S.J.3
-
52
-
-
0033601767
-
Peroxisome synthesis in the absence of preexisting peroxisomes
-
South, S. T., and S. J. Gould. 1999. Peroxisome synthesis in the absence of preexisting peroxisomes. J. Cell Biol. 144:255-266 (Pubitemid 29066029)
-
(1999)
J. Cell Biol.
, vol.144
, pp. 255-266
-
-
South, S.T.1
Gould, S.J.2
-
53
-
-
0034717704
-
Inhibitors of COPI and COPII do not block PEX3-mediated peroxisome synthesis
-
South, S. T., K. A. Sacksteder, X. Li, Y. Liu, and S. J. Gould. 2000. Inhibitors of COPI and COPII do not block PEX3-mediated peroxisome synthesis. J. Cell Biol. 149:1345-1360.
-
(2000)
J. Cell Biol.
, vol.149
, pp. 1345-1360
-
-
South, S.T.1
Sacksteder, K.A.2
Li, X.3
Liu, Y.4
Gould, S.J.5
-
54
-
-
0031852650
-
ZW10 helps recruit dynactin and dynein to the kinetochore
-
Starr, D. A., B. C. Williams, T. S. Hays, and M. L. Goldberg. 1998. ZW10 helps recruit dynactin and dynein to the kinetochore. J. Cell Biol. 142:763774.
-
(1998)
J. Cell Biol.
, vol.142
, pp. 763774
-
-
Starr, D.A.1
Williams, B.C.2
Hays, T.S.3
Goldberg, M.L.4
-
55
-
-
33845336846
-
Peroxisome biogenesis disorders
-
Steinberg, S. J., G. Dodt, G. V. Raymond, N. E. Braverman, A. B. Moser, and H. W. Moser. 2006. Peroxisome biogenesis disorders. Biochim. Biophys. Acta 1763:1733-1748.
-
(2006)
Biochim. Biophys. Acta
, vol.1763
, pp. 1733-1748
-
-
Steinberg, S.J.1
Dodt, G.2
Raymond, G.V.3
Braverman, N.E.4
Moser, A.B.5
Moser, H.W.6
-
56
-
-
34347383511
-
Molecular basis for the functional interaction of dynein light chain with the nuclear-pore complex
-
Stelter, P., R. Kunze, D. Flemming, D. Hoepfner, M. Diepholz, P. Philippsen, B. Bottcher, and E. Hurt. 2007. Molecular basis for the functional interaction of dynein light chain with the nuclear-pore complex. Nat. Cell Biol. 9:788796.
-
(2007)
Nat. Cell Biol.
, vol.9
, pp. 788796
-
-
Stelter, P.1
Kunze, R.2
Flemming, D.3
Hoepfner, D.4
Diepholz, M.5
Philippsen, P.6
Bottcher, B.7
Hurt, E.8
-
57
-
-
0041810193
-
Peroxisomes start their life in the endoplasmic reticulum
-
Tabak, H. F., J. L. Murk, I. Braakman, and H. J. Geuze. 2003. Peroxisomes start their life in the endoplasmic reticulum. Traffic 4:512-518 (Pubitemid 36896543)
-
(2003)
Traffic
, vol.4
, pp. 512-518
-
-
Tabak, H.F.1
Murk, J.L.2
Braakman, I.3
Geuze, H.J.4
-
58
-
-
27144457472
-
Pex3p initiates the formation of a preperoxisomal compartment from a subdomain of the endoplasmic reticulum in Saccharomyces cerevisiae
-
Tam, Y. Y. C., A. Fagarasanu, M. Fagarasanu, and R. A. Rachubinski. 2005. Pex3p initiates the formation of a preperoxisomal compartment from a subdomain of the endoplasmic reticulum in Saccharomyces cerevisiae. J. Biol. Chem. 280:34933-34939 (Pubitemid 41504628)
-
(2005)
J. Biol. Chem.
, vol.280
, pp. 34933-34939
-
-
Tam, Y.Y.C.1
Fagarasanu, A.2
Fagarasanu, M.3
Rachubinski, R.A.4
-
59
-
-
0141764783
-
Pex11-related proteins in peroxisome dynamics: A role for the novel peroxin Pex27p in controlling peroxisome size and number in Saccharomyces cerevisiae
-
Tam, Y. Y. C., J.-C. Torres-Guzman, F. J. Vizeacoumar, J. J. Smith, M. Marelli, J. D. Aitchison, and R. A. Rachubinski. 2003. Pex11-related proteins in peroxisome dynamics: a role for the novel peroxin Pex27p in controlling peroxisome size and number in Saccharomyces cerevisiae. Mol. Biol. Cell 14:4089-4102 (Pubitemid 37186311)
-
(2003)
Mol. Biol. Cell
, vol.14
, pp. 4089-4102
-
-
Tam, Y.Y.C.1
Torres-Guzman, J.-C.2
Vizeacoumar, F.J.3
Smith, J.J.4
Marelli, M.5
Aitchison, J.D.6
Rachubinski, R.A.7
-
60
-
-
0034627808
-
Fusion of small peroxisomal vesicles in vitro reconstructs an early step in the in vivo multistep peroxisome assembly pathway of Yarrowia lipolytica
-
Titorenko, V. I., H. Chan, and R. A. Rachubinski. 2000. Fusion of small peroxisomal vesicles in vitro reconstructs an early step in the in vivo multistep peroxisome assembly pathway of Yarrowia lipolytica. J. Cell Biol. 148: 29-44.
-
(2000)
J. Cell Biol.
, vol.148
, pp. 29-44
-
-
Titorenko, V.I.1
Chan, H.2
Rachubinski, R.A.3
-
61
-
-
0030797545
-
Four distinct secretory pathways serve protein secretion, cell surface growth, and peroxisome biogenesis in the yeast Yarrowia lipolytica
-
Titorenko, V. I., D. M. Ogrydziak, and R. A. Rachubinski. 1997. Four distinct secretory pathways serve protein secretion, cell surface growth, and peroxisome biogenesis in the yeast Yarrowia lipolytica. Mol. Cell. Biol. 17:52105226.
-
(1997)
Mol. Cell. Biol.
, vol.17
, pp. 52105226
-
-
Titorenko, V.I.1
Ogrydziak, D.M.2
Rachubinski, R.A.3
-
62
-
-
0031895522
-
Mutants of the yeast Yarrowia lipolytica defective in protein exit from the endoplasmic reticulum are also defective in peroxisome biogenesis
-
Titorenko, V. I., and R. A. Rachubinski. 1998. Mutants of the yeast Yarrowia lipolytica defective in protein exit from the endoplasmic reticulum are also defective in peroxisome biogenesis. Mol. Cell. Biol. 18:2789-2803.
-
(1998)
Mol. Cell. Biol.
, vol.18
, pp. 2789-2803
-
-
Titorenko, V.I.1
Rachubinski, R.A.2
-
63
-
-
59649120867
-
Structural characterization of Tip20p and Dsl1p, subunits of the Dsl1p vesicle tethering complex
-
Tripathi, A., Y. Ren, P. D. Jeffrey, and F. M. Hughson. 2009. Structural characterization of Tip20p and Dsl1p, subunits of the Dsl1p vesicle tethering complex. Nat. Struct. Mol. Biol. 16:114-123.
-
(2009)
Nat. Struct. Mol. Biol.
, vol.16
, pp. 114-123
-
-
Tripathi, A.1
Ren, Y.2
Jeffrey, P.D.3
Hughson, F.M.4
-
64
-
-
33751237060
-
ZW10 function in mitotic checkpoint control, dynein targeting and membrane trafficking: Is dynein the unifying theme?
-
Vallee, R. B., D. Varma, and D. L. Dujardin. 2006. ZW10 function in mitotic checkpoint control, dynein targeting and membrane trafficking: is dynein the unifying theme? Cell Cycle 5:2447-2451.
-
(2006)
Cell Cycle
, vol.5
, pp. 2447-2451
-
-
Vallee, R.B.1
Varma, D.2
Dujardin, D.L.3
-
65
-
-
33845321048
-
Yeast and filamentous fungi as model organisms in microbody research
-
van der Klei, I., and M. Veenhuis. 2006. Yeast and filamentous fungi as model organisms in microbody research. Biochim. Biophys. Acta 1763:13641373.
-
(2006)
Biochim. Biophys. Acta
, vol.1763
, pp. 13641373
-
-
Van Klei, D.I.1
Veenhuis, M.2
-
66
-
-
0035016821
-
Dsl1p, an essential protein required for membrane traffic at the endoplasmic reticulum/Golgi interface in yeast
-
Vanrheenen, S. M., B. A. Reilly, S. J. Chamberlain, and M. G. Waters. 2001. Dsl1p, an essential protein required for membrane traffic at the endoplasmic reticulum/Golgi interface in yeast. Traffic 2:212-231 (Pubitemid 32487552)
-
(2001)
Traffic
, vol.2
, pp. 212-231
-
-
Vanrheenen, S.M.1
Reilly, B.A.2
Chamberlain, S.J.3
Waters, M.G.4
-
67
-
-
33644517564
-
Role of the kinetochore/cell cycle checkpoint protein ZW10 in interphase cytoplasmic dynein function
-
Varma, D., D. L. Dujardin, S. A. Stehman, and R. B. Vallee. 2006. Role of the kinetochore/cell cycle checkpoint protein ZW10 in interphase cytoplasmic dynein function. J. Cell Biol. 172:655-662 (Pubitemid 43306222)
-
(2006)
J. Cell Biol.
, vol.172
, pp. 655-662
-
-
Varma, D.1
Dujardin, D.L.2
Stehman, S.A.3
Vallee, R.B.4
-
68
-
-
0023361695
-
Proliferation of microbodies in Saccharomyces cerevisiae
-
Veenhuis, M., M. Mateblowski, W.-H. Kunau, and W. Harder. 1987. Proliferation of microbodies in Saccharomyces cerevisiae. Yeast 3:77-84.
-
(1987)
Yeast
, vol.3
, pp. 77-84
-
-
Veenhuis, M.1
Mateblowski, M.2
Kunau, W.-H.3
Harder, W.4
-
69
-
-
0742288046
-
Pex30p, Pex31p, and Pex32p form a family of peroxisomal integral membrane proteins regulating peroxisome size and number in Saccharomyces cerevisiae
-
Vizeacoumar, F. J., J.-C. Torres-Guzman, D. Bouard, J. D. Aitchison, and R. A. Rachubinski. 2004. Pex30p, Pex31p, and Pex32p form a family of peroxisomal integral membrane proteins regulating peroxisome size and number in Saccharomyces cerevisiae. Mol. Biol. Cell 15:665-677 (Pubitemid 38146483)
-
(2004)
Mol. Biol. Cell
, vol.15
, pp. 665-677
-
-
Vizeacoumar, F.J.1
Torres-Guzman, J.-C.2
Bouard, D.3
Aitchison, J.D.4
Rachubinski, R.A.5
-
70
-
-
0038746700
-
YHR150w and YDR479c encode peroxisomal integral membrane proteins involved in the regulation of peroxisome number, size, and distribution in Saccharomyces cerevisiae
-
Vizeacoumar, F. J., J.-C. Torres-Guzman, Y. Y. C. Tam, J. D. Aitchison, and R. A. Rachubinski. 2003. YHR150w and YDR479c encode peroxisomal integral membrane proteins involved in the regulation of peroxisome number, size, and distribution in Saccharomyces cerevisiae. J. Cell Biol. 161:321-332 (Pubitemid 36529850)
-
(2003)
J. Cell Biol.
, vol.161
, pp. 321-332
-
-
Vizeacoumar, F.J.1
Torres-Guzman, J.-C.2
Tam, Y.Y.C.3
Aitchison, J.D.4
Rachubinski, R.A.5
-
71
-
-
33744960494
-
The dynamin-like protein Vps1p of the yeast Saccharomyces cerevisiae associates with peroxisomes in a Pexl9pdependent manner
-
Vizeacoumar, F. J., W. N. Vreden, M. Fagarasanu, G. A. Eitzen, J. D. Aitchison, and R. A. Rachubinski. 2006. The dynamin-like protein Vps1p of the yeast Saccharomyces cerevisiae associates with peroxisomes in a Pexl9pdependent manner. J. Biol. Chem. 281:12817-12823.
-
(2006)
J. Biol. Chem.
, vol.281
, pp. 12817-12823
-
-
Vizeacoumar, F.J.1
Vreden, W.N.2
Fagarasanu, M.3
Eitzen, G.A.4
Aitchison, J.D.5
Rachubinski, R.A.6
-
72
-
-
32044445021
-
A class of membrane proteins shaping the tubular endoplasmic reticulum
-
Voeltz, G. K., W. A. Prinz, Y. Shibata, J. M. Rist, and T. A. Rapoport. 2006. A class of membrane proteins shaping the tubular endoplasmic reticulum. Cell 124:573-586 (Pubitemid 43199442)
-
(2006)
Cell
, vol.124
, pp. 573-586
-
-
Voeltz, G.K.1
Prinz, W.A.2
Shibata, Y.3
Rist, J.M.4
Rapoport, T.A.5
-
73
-
-
0034962022
-
Peroxisomal membrane proteins are properly targeted to peroxisomes in the absence of COPI- And COPII-mediated vesicular transport
-
Voorn-Brouwer, T., A. Kragt, H. F. Tabak, and B. Distel. 2001. Peroxisomal membrane proteins are properly targeted to peroxisomes in the absence of COPI- and COPII-mediated vesicular transport. J. Cell Sci. 114:2199-2204 (Pubitemid 32586644)
-
(2001)
J. Cell Sci.
, vol.114
, pp. 2199-2204
-
-
Voorn-Brouwer, T.1
Kragt, A.2
Tabak, H.F.3
Distel, B.4
-
74
-
-
38349082663
-
Proteomics characterization of mouse kidney peroxisomes by tandem mass spectrometry and protein correlation profiling
-
Wiese, S., T. Gronemeyer, R. Ofman, M. Kunze, C. P. Grou, J. A. Almeida, M. Eisenacher, C. Stephan, H. Hayen, L. Schollenberger, T. Korosec, H. R. Waterham, W. Schliebs, R. Erdmann, J. Berger, H. E. Meyer, W. Just, J. E. Azevedo, R. J. A. Wanders, and B. Warscheid. 2007. Proteomics characterization of mouse kidney peroxisomes by tandem mass spectrometry and protein correlation profiling. Mol. Cell. Proteomics 6:2045-2057.
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(2007)
Mol. Cell. Proteomics
, vol.6
, pp. 2045-2057
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Wiese, S.1
Gronemeyer, T.2
Ofman, R.3
Kunze, M.4
Grou, C.P.5
Almeida, J.A.6
Eisenacher, M.7
Stephan, C.8
Hayen, H.9
Schollenberger, L.10
Korosec, T.11
Waterham, H.R.12
Schliebs, W.13
Erdmann, R.14
Berger, J.15
Meyer, H.E.16
Just, W.17
Azevedo, J.E.18
Wanders, R.J.A.19
Warscheid, B.20
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