-
1
-
-
0742288598
-
The dynamin superfamily: Universal membrane tubulation and fission molecules?
-
Praefcke, G. J., and H. T. McMahon. 2004. The dynamin superfamily: universal membrane tubulation and fission molecules? Nat. Rev. Mol. Cell Biol. 5:133-147.
-
(2004)
Nat. Rev. Mol. Cell Biol.
, vol.5
, pp. 133-147
-
-
Praefcke, G.J.1
McMahon, H.T.2
-
2
-
-
33744463639
-
In silico genomic analysis of the human and murine guanylate-binding protein (GBP) gene clusters
-
Olszewski, M. A., J. Gray, and D. J. Vestal. 2006. In silico genomic analysis of the human and murine guanylate-binding protein (GBP) gene clusters. J. Interferon Cytokine Res. 26:328-352.
-
(2006)
J. Interferon Cytokine Res.
, vol.26
, pp. 328-352
-
-
Olszewski, M.A.1
Gray, J.2
Vestal, D.J.3
-
3
-
-
0020955866
-
Interferon induction of fibroblast proteins with guanylate binding activity
-
Cheng, Y. S., R. J. Colonno, and F. H. Yin. 1983. Interferon induction of fibroblast proteins with guanylate binding activity. J. Biol. Chem. 258:7746-7750.
-
(1983)
J. Biol. Chem.
, vol.258
, pp. 7746-7750
-
-
Cheng, Y.S.1
Colonno, R.J.2
Yin, F.H.3
-
4
-
-
0032534733
-
Two families of GTPases dominate the complex cellular response to IFN-γ
-
Boehm, U., L. Guethlein, J. C. Howard. 1998. Two families of GTPases dominate the complex cellular response to IFN-γ. J. Immunol. 161:6715-6723.
-
(1998)
J. Immunol.
, vol.161
, pp. 6715-6723
-
-
Boehm, U.1
Guethlein, L.2
Howard, J.C.3
-
5
-
-
0033616531
-
Interferoninduced guanylate binding protein-1 (GBP-1) mediates an antiviral effect against vesicular stomatitis virus and encephalomyocarditis virus
-
Anderson, S. L., J. M. Carton, B. Y. Rubin. 1999. Interferoninduced guanylate binding protein-1 (GBP-1) mediates an antiviral effect against vesicular stomatitis virus and encephalomyocarditis virus. Virology. 256:8-14.
-
(1999)
Virology
, vol.256
, pp. 8-14
-
-
Anderson, S.L.1
Carton, J.M.2
Rubin, B.Y.3
-
6
-
-
0042525961
-
The guanylate binding protein-1 GTPase controls the invasive and angiogenic capability of endothelial cells through inhibition of MMP-1 expression
-
Guenzi, E., K. Töpolt, M. Stürzl. 2003. The guanylate binding protein-1 GTPase controls the invasive and angiogenic capability of endothelial cells through inhibition of MMP-1 expression. EMBO J. 22:3772-3782.
-
(2003)
EMBO J.
, vol.22
, pp. 3772-3782
-
-
Guenzi, E.1
Töpolt, K.2
Stürzl, M.3
-
7
-
-
33644683611
-
GBP1 over-expression is associated with a paclitaxel resistance phenotype
-
Duan, Z., R. Foster, M. V. Seiden. 2006. GBP1 over-expression is associated with a paclitaxel resistance phenotype. Cancer Chemother. Pharmacol. 571:25-33.
-
(2006)
Cancer Chemother. Pharmacol.
, vol.571
, pp. 25-33
-
-
Duan, Z.1
Foster, R.2
Seiden, M.V.3
-
8
-
-
20844442306
-
Golgi targeting of human guanylate-binding protein-1 requires nucleotide binding, isoprenylation, and an IFN-γ-inducible cofactor
-
Modiano, N., Y. E. Lu, and P. Cresswell. 2005. Golgi targeting of human guanylate-binding protein-1 requires nucleotide binding, isoprenylation, and an IFN-γ-inducible cofactor. Proc. Natl. Acad. Sci. USA. 102:8680-8685.
-
(2005)
Proc. Natl. Acad. Sci. USA
, vol.102
, pp. 8680-8685
-
-
Modiano, N.1
Lu, Y.E.2
Cresswell, P.3
-
9
-
-
20144368807
-
Inhibition of VSV and EMCV replication by the interferon-induced GTPase, mGBP-2: Differential requirement for wild-type GTP binding domain
-
Carter, C. C., V. Y. Gorbacheva, and D. J. Vestal. 2005. Inhibition of VSV and EMCV replication by the interferon-induced GTPase, mGBP-2: differential requirement for wild-type GTP binding domain. Arch. Virol. 150:1213-1220.
-
(2005)
Arch. Virol.
, vol.150
, pp. 1213-1220
-
-
Carter, C.C.1
Gorbacheva, V.Y.2
Vestal, D.J.3
-
10
-
-
58249089607
-
Interferon-inducible guanylate binding protein (GBP)-2: A novel p53-regulated tumor marker in esophageal squamous cell carcinomas
-
Guimarães, D. P., I. M. Oliveira, P. Hainaut. 2009. Interferon-inducible guanylate binding protein (GBP)-2: a novel p53-regulated tumor marker in esophageal squamous cell carcinomas. Int. J. Cancer. 124:272-279.
-
(2009)
Int. J. Cancer.
, vol.124
, pp. 272-279
-
-
Guimarães, D.P.1
Oliveira, I.M.2
Hainaut, P.3
-
11
-
-
0028243476
-
The interferon-induced 67-kDa guanylate-binding protein (hGBP1) is a GTPase that converts GTP to GMP
-
Schwemmle, M., and P. Staeheli. 1994. The interferon-induced 67-kDa guanylate-binding protein (hGBP1) is a GTPase that converts GTP to GMP. J. Biol. Chem. 269:11299-11305.
-
(1994)
J. Biol. Chem.
, vol.269
, pp. 11299-11305
-
-
Schwemmle, M.1
Staeheli, P.2
-
12
-
-
0030586293
-
GTPase properties of the interferon-induced human guanylate-binding protein 2
-
Neun, R., M. F. Richter, M. Schwemmle. 1996. GTPase properties of the interferon-induced human guanylate-binding protein 2. FEBS Lett. 390:69-72.
-
(1996)
FEBS Lett.
, vol.390
, pp. 69-72
-
-
Neun, R.1
Richter, M.F.2
Schwemmle, M.3
-
13
-
-
0034598734
-
Structure of human guanylate-binding protein 1 representing a unique class of GTP- binding proteins
-
Prakash, B., G. J. Praefcke, C. Herrmann. 2000. Structure of human guanylate-binding protein 1 representing a unique class of GTP- binding proteins. Nature. 403:567-571.
-
(2000)
Nature
, vol.403
, pp. 567-571
-
-
Prakash, B.1
Praefcke, G.J.2
Herrmann, C.3
-
14
-
-
0034282494
-
Triphosphate structure of guanylate-binding protein 1 and implications for nucleotide binding and GTPase mechanism
-
Prakash, B., L. Renault, A. Wittinghofer. 2000. Triphosphate structure of guanylate-binding protein 1 and implications for nucleotide binding and GTPase mechanism. EMBO J. 19:4555-4564.
-
(2000)
EMBO J.
, vol.19
, pp. 4555-4564
-
-
Prakash, B.1
Renault, L.2
Wittinghofer, A.3
-
15
-
-
30544454966
-
Nucleotide binding and self-stimulated GTPase activity of human guanylatebinding protein 1 (hGBP1)
-
Kunzelmann, S., G. J. Praefcke, and C. Herrmann. 2005. Nucleotide binding and self-stimulated GTPase activity of human guanylatebinding protein 1 (hGBP1). Methods Enzymol. 404:512-527.
-
(2005)
Methods Enzymol.
, vol.404
, pp. 512-527
-
-
Kunzelmann, S.1
Praefcke, G.J.2
Herrmann, C.3
-
16
-
-
7044239234
-
Identification of residues in the human guanylate-binding protein 1 critical for nucleotide binding and cooperative GTP hydrolysis
-
Praefcke, G. J., S. Kloep, C. Herrmann. 2004. Identification of residues in the human guanylate-binding protein 1 critical for nucleotide binding and cooperative GTP hydrolysis. J. Mol. Biol. 344:257-269.
-
(2004)
J. Mol. Biol.
, vol.344
, pp. 257-269
-
-
Praefcke, G.J.1
Kloep, S.2
Herrmann, C.3
-
17
-
-
59649087104
-
Role of individual domains and identification of internal gap in human guanylate binding protein-1
-
Abdullah, N., B. Srinivasan, A. K. Sau. 2009. Role of individual domains and identification of internal gap in human guanylate binding protein-1. J. Mol. Biol. 386:690-703.
-
(2009)
J. Mol. Biol.
, vol.386
, pp. 690-703
-
-
Abdullah, N.1
Srinivasan, B.2
Sau, A.K.3
-
18
-
-
0026514355
-
Spectrofluorimetric assessment of the surface hydrophobicity of proteins
-
Cardamone, M., and N. K. Puri. 1992. Spectrofluorimetric assessment of the surface hydrophobicity of proteins. Biochem. J. 282:589-593.
-
(1992)
Biochem. J.
, vol.282
, pp. 589-593
-
-
Cardamone, M.1
Puri, N.K.2
-
19
-
-
0031972919
-
1-Anilino-8-naphthalene sulfonate anion-protein binding depends primarily on ion pair formation
-
Matulis, D., and R. Lovrien. 1998. 1-Anilino-8-naphthalene sulfonate anion-protein binding depends primarily on ion pair formation. Biophys. J. 74:422-429.
-
(1998)
Biophys. J.
, vol.74
, pp. 422-429
-
-
Matulis, D.1
Lovrien, R.2
-
20
-
-
14644443757
-
Detection of tryptophan to tryptophan energy transfer in proteins
-
Moens, P. D. J., M. K. Helms, and D. M. Jameson. 2004. Detection of tryptophan to tryptophan energy transfer in proteins. Protein J. 23:79-83.
-
(2004)
Protein J.
, vol.23
, pp. 79-83
-
-
Moens, P.D.J.1
Helms, M.K.2
Jameson, D.M.3
-
21
-
-
0034816787
-
The effect of resonance energy homotransfer on the intrinsic tryptophan fluorescence emission of the bothropstoxin-I dimer
-
de Oliveira, A. H. C., J. R. Giglio, R. J. Ward. 2001. The effect of resonance energy homotransfer on the intrinsic tryptophan fluorescence emission of the bothropstoxin-I dimer. Biochem. Biophys. Res. Commun. 284:1011-1015.
-
(2001)
Biochem. Biophys. Res. Commun.
, vol.284
, pp. 1011-1015
-
-
De Oliveira, A.H.C.1
Giglio, J.R.2
Ward, R.J.3
-
22
-
-
0016144021
-
Topics in the methodology of substitution reactions with agarose
-
Parikh, I., S. March, and P. Cuatercasas. 1974. Topics in the methodology of substitution reactions with agarose. Methods Enzymol. 34:77-102.
-
(1974)
Methods Enzymol.
, vol.34
, pp. 77-102
-
-
Parikh, I.1
March, S.2
Cuatercasas, P.3
-
23
-
-
0003705919
-
-
Academic Press, London, UK
-
Hermanson, G. T., A. K. Mallia, and P. K. Smith. 1992. Immobilized Affinity Ligand Techniques. Academic Press, London, UK.
-
(1992)
Immobilized Affinity Ligand Techniques
-
-
Hermanson, G.T.1
Mallia, A.K.2
Smith, P.K.3
-
24
-
-
77958494991
-
Preparing antibody resins
-
P. G. Dean, W. S. Johnson, and F. A. Middle, editors. IRL/Oxford University Press, Oxford, UK
-
Hermanson, I. 1985. Preparing antibody resins. In Affinity Chromatography: A Practical Approach. P. G. Dean, W. S. Johnson, and F. A. Middle, editors. IRL/Oxford University Press, Oxford, UK. 31-34.
-
(1985)
Affinity Chromatography: A Practical Approach
, pp. 31-34
-
-
Hermanson, I.1
-
25
-
-
0018848094
-
Enzyme immunoassay ELISA and EMIT
-
Engvall, E. 1980. Enzyme immunoassay ELISA and EMIT. Methods Enzymol. 70:419-439.
-
(1980)
Methods Enzymol.
, vol.70
, pp. 419-439
-
-
Engvall, E.1
-
26
-
-
0030809132
-
Domain structure and intramolecular regulation of dynamin GTPase
-
Muhlberg, A. B., D. E. Warnock, and S. L. Schmid. 1997. Domain structure and intramolecular regulation of dynamin GTPase. EMBO J. 16:6676-6683.
-
(1997)
EMBO J.
, vol.16
, pp. 6676-6683
-
-
Muhlberg, A.B.1
Warnock, D.E.2
Schmid, S.L.3
-
27
-
-
33846513580
-
The dynamin middle domain is critical for tetramerization and higher-order self-assembly
-
Ramachandran, R., M. Surka, S. L. Schmid. 2007. The dynamin middle domain is critical for tetramerization and higher-order self-assembly. EMBO J. 26:559-566.
-
(2007)
EMBO J.
, vol.26
, pp. 559-566
-
-
Ramachandran, R.1
Surka, M.2
Schmid, S.L.3
-
28
-
-
0033527650
-
Intramolecular back-folding of the carboxyl-terminal end of MxA protein is a prerequisite for its oligomerization
-
Di Paolo, C., H. P. Hefti, J. Pavlovic. 1999. Intramolecular back-folding of the carboxyl-terminal end of MxA protein is a prerequisite for its oligomerization. J. Biol. Chem. 274:32071-32078.
-
(1999)
J. Biol. Chem.
, vol.274
, pp. 32071-32078
-
-
Di Paolo, C.1
Hefti, H.P.2
Pavlovic, J.3
-
29
-
-
33644772427
-
How guanylate-binding proteins achieve assembly-stimulated processive cleavage of GTP to GMP
-
Ghosh, A., G. J. Praefcke, C. Herrmann. 2006. How guanylate-binding proteins achieve assembly-stimulated processive cleavage of GTP to GMP. Nature. 440:101-104.
-
(2006)
Nature
, vol.440
, pp. 101-104
-
-
Ghosh, A.1
Praefcke, G.J.2
Herrmann, C.3
-
30
-
-
0030772378
-
The Ras-RasGAP complex: Structural basis for GTPase activation and its loss in oncogenic Ras mutants
-
Scheffzek, K., M. R. Ahmadian, A. Wittinghofer. 1997. The Ras-RasGAP complex: structural basis for GTPase activation and its loss in oncogenic Ras mutants. Science. 277:333-338.
-
(1997)
Science
, vol.277
, pp. 333-338
-
-
Scheffzek, K.1
Ahmadian, M.R.2
Wittinghofer, A.3
-
31
-
-
0030716497
-
Structure at 1.65 A of RhoA and its GTPase-activating protein in complex with a transition-state analogue
-
Rittinger, K., P. A. Walker, S. J. Gamblin. 1997. Structure at 1.65 A of RhoA and its GTPase-activating protein in complex with a transition-state analogue. Nature. 389:758-762.
-
(1997)
Nature
, vol.389
, pp. 758-762
-
-
Rittinger, K.1
Walker, P.A.2
Gamblin, S.J.3
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