Analysis and prediction of leucine-rich nuclear export signals.
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Søren Brunak | Karen Skriver | Tanja la Cour | Lars Kiemer | Anne Mølgaard | Ramneek Gupta | S. Brunak | Ramneek Gupta | K. Skriver | A. Mølgaard | Lars Kiemer | T. la Cour
[1] B. Cullen,et al. Protein sequence requirements for function of the human T-cell leukemia virus type 1 Rex nuclear export signal delineated by a novel in vivo randomization-selection assay , 1996, Molecular and cellular biology.
[2] U Aebi,et al. The nuclear pore complex: from molecular architecture to functional dynamics. , 1999, Current opinion in cell biology.
[3] M. Gaestel,et al. Leptomycin B‐sensitive nuclear export of MAPKAP kinase 2 is regulated by phosphorylation , 1998, The EMBO journal.
[4] C. Dargemont,et al. Domains of Crm1 involved in the formation of the Crm1, RanGTP, and leucine-rich nuclear export sequences trimeric complex. , 1999, Experimental cell research.
[5] A J Olson,et al. Analysis of a data set of paired uncomplexed protein structures: New metrics for side‐chain flexibility and model evaluation , 2001, Proteins.
[6] A. Prochiantz,et al. A short region of its homeodomain is necessary for engrailed nuclear export and secretion. , 1999, Development.
[7] L H Lee,et al. Crm1p mediates regulated nuclear export of a yeast AP‐1‐like transcription factor , 1998, The EMBO journal.
[8] Karsten Weis,et al. Importin-beta-like nuclear transport receptors , 2001, Genome Biology.
[9] Maria Carmo-Fonseca,et al. The rules and roles of nucleocytoplasmic shuttling proteins , 2001, FEBS letters.
[10] Makiko Watanabe,et al. Borna Disease Virus Nucleoprotein Requires both Nuclear Localization and Export Activities for Viral Nucleocytoplasmic Shuttling , 2001, Journal of Virology.
[11] G. Kalpana,et al. A masked NES in INI1/hSNF5 mediates hCRM1‐dependent nuclear export: implications for tumorigenesis , 2002, The EMBO journal.
[12] F. Bischoff,et al. Co‐activation of RanGTPase and inhibition of GTP dissociation by Ran‐GTP binding protein RanBP1. , 1995, The EMBO journal.
[13] C. Horvath,et al. Identification of the Nuclear Export Signal and STAT-Binding Domains of the Nipah Virus V Protein Reveals Mechanisms Underlying Interferon Evasion , 2004, Journal of Virology.
[14] Gregory R. Grant,et al. Bioinformatics - The Machine Learning Approach , 2000, Comput. Chem..
[15] S. Brunak,et al. SHORT COMMUNICATION Identification of prokaryotic and eukaryotic signal peptides and prediction of their cleavage sites , 1997 .
[16] Reiko Shinkura,et al. Activation-induced cytidine deaminase shuttles between nucleus and cytoplasm like apolipoprotein B mRNA editing catalytic polypeptide 1 , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[17] Rachel E. Klevit,et al. Structure of a BRCA1–BARD1 heterodimeric RING–RING complex , 2001, Nature Structural Biology.
[18] 宁北芳,et al. 疟原虫var基因转换速率变化导致抗原变异[英]/Paul H, Robert P, Christodoulou Z, et al//Proc Natl Acad Sci U S A , 2005 .
[19] Utz Fischer,et al. The HIV-1 Rev Activation Domain is a nuclear export signal that accesses an export pathway used by specific cellular RNAs , 1995, Cell.
[20] U. Hobohm,et al. Selection of representative protein data sets , 1992, Protein science : a publication of the Protein Society.
[21] Roger Y Tsien,et al. Identification of a signal for rapid export of proteins from the nucleus , 1995, Cell.
[22] P Hiselius,et al. The New Generation , 2019, The Women's Liberation Movement in Russia.
[23] R. Williams,et al. Structural Mapping of the Catalytic Mechanism for a Mammalian Phosphoinositide-specific Phospholipase C †, ‡ , 1996 .
[24] P. Kraulis. A program to produce both detailed and schematic plots of protein structures , 1991 .
[25] N. Kudo,et al. Leptomycin B inactivates CRM1/exportin 1 by covalent modification at a cysteine residue in the central conserved region. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[26] Michael B. Yaffe,et al. 14-3-3 transits to the nucleus and participates in dynamic nucleocytoplasmic transport , 2002, The Journal of cell biology.
[27] M. Rosbash,et al. The NES–Crm1p export pathway is not a major mRNA export route in Saccharomyces cerevisiae , 1999, The EMBO journal.
[28] Karsten Weis,et al. Exportin 1 (Crm1p) Is an Essential Nuclear Export Factor , 1997, Cell.
[29] B. Rost,et al. Finding nuclear localization signals , 2000, EMBO reports.
[30] C. Dargemont,et al. Protein Export from the Nucleus , 2001, Traffic.
[31] D T Jones,et al. Protein secondary structure prediction based on position-specific scoring matrices. , 1999, Journal of molecular biology.
[32] T. Hope,et al. The ins and outs of HIV Rev. , 1999, Archives of biochemistry and biophysics.
[33] Yoshiharu Inoue,et al. Regulation of the Yeast Yap1p Nuclear Export Signal Is Mediated by Redox Signal-Induced Reversible Disulfide Bond Formation , 2001, Molecular and Cellular Biology.
[34] Dirk Görlich,et al. RanBP1 is crucial for the release of RanGTP from importin β‐related nuclear transport factors , 1997, FEBS letters.
[35] Traffic , 2004 .
[36] S. R. Wente,et al. The nuclear pore complex: a protein machine bridging the nucleus and cytoplasm. , 2000, Current opinion in cell biology.
[37] J J Correia,et al. Structural basis of Smad1 activation by receptor kinase phosphorylation. , 2001, Molecular cell.
[38] E A Merritt,et al. Raster3D: photorealistic molecular graphics. , 1997, Methods in enzymology.
[39] N. Blom,et al. Cleavage site analysis in picornaviral polyproteins: Discovering cellular targets by neural networks , 1996, Protein science : a publication of the Protein Society.
[40] F. Young. Biochemistry , 1955, The Indian Medical Gazette.
[41] B. Henderson,et al. Regulation of tumor suppressors by nuclear-cytoplasmic shuttling. , 2003, Experimental cell research.
[42] Pamela A Silver,et al. Nuclear transport as a target for cell growth. , 2003, Drug discovery today.
[43] A. Mccarthy. Development , 1996, Current Opinion in Neurobiology.
[44] G. Wahl,et al. A leucine‐rich nuclear export signal in the p53 tetramerization domain: regulation of subcellular localization and p53 activity by NES masking , 1999, The EMBO journal.
[45] F. Bischoff,et al. RanBP3 influences interactions between CRM1 and its nuclear protein export substrates , 2001, EMBO reports.
[46] T. D. Schneider,et al. Sequence logos: a new way to display consensus sequences. , 1990, Nucleic acids research.
[47] C. Dargemont,et al. Evidence for a role of CRM1 in signal-mediated nuclear protein export. , 1997, Science.
[48] E. Nishida,et al. Regulation of intracellular dynamics of Smad4 by its leucine‐rich nuclear export signal , 2000, EMBO reports.
[49] M. Fitzgibbon,et al. Structure of Mitogen-activated Protein Kinase-activated Protein (MAPKAP) Kinase 2 Suggests a Bifunctional Switch That Couples Kinase Activation with Nuclear Export* , 2002, The Journal of Biological Chemistry.
[50] Angela Bachi,et al. PHAX, a Mediator of U snRNA Nuclear Export Whose Activity Is Regulated by Phosphorylation , 2000, Cell.
[51] Minoru Yoshida,et al. CRM1 is responsible for intracellular transport mediated by the nuclear export signal , 1997, Nature.
[52] T. Toda,et al. A Novel Nuclear Export Signal Sensitive to Oxidative Stress in the Fission Yeast Transcription Factor Pap1* , 1999, The Journal of Biological Chemistry.
[53] M. Lindsay,et al. Ran-Binding Protein 3 Is a Cofactor for Crm1-Mediated Nuclear Protein Export , 2001, The Journal of cell biology.
[54] J. Zou,et al. Improved methods for building protein models in electron density maps and the location of errors in these models. , 1991, Acta crystallographica. Section A, Foundations of crystallography.
[55] Alain Prochiantz,et al. Can transcription factors function as cell–cell signalling molecules? , 2003, Nature Reviews Molecular Cell Biology.
[56] Pamela A. Silver,et al. Nuclear transport and cancer: from mechanism to intervention , 2004, Nature Reviews Cancer.
[57] T. Speed,et al. Biological Sequence Analysis , 1998 .
[58] P. Silver,et al. A member of the Ran-binding protein family, Yrb2p, is involved in nuclear protein export. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[59] E. Nishida,et al. Nuclear export of actin: a novel mechanism regulating the subcellular localization of a major cytoskeletal protein , 1998, The EMBO journal.
[60] S. Almo,et al. The structure of nonvertebrate actin: Implications for the ATP hydrolytic mechanism , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[61] Michael Taliansky,et al. Identification of a nuclear localization signal and nuclear export signal of the umbraviral long-distance RNA movement protein. , 2004, The Journal of general virology.
[62] R D Appel,et al. A new generation of information retrieval tools for biologists: the example of the ExPASy WWW server. , 1994, Trends in biochemical sciences.
[63] E. Olson,et al. Identification of a Signal-Responsive Nuclear Export Sequence in Class II Histone Deacetylases , 2001, Molecular and Cellular Biology.
[64] Jin Ho Yoon,et al. Conserved Nuclear Export Sequences in Schizosaccharomyces pombe Mex67 and Human TAP Function in mRNA Export by Direct Nuclear Pore Interactions* , 2004, Journal of Biological Chemistry.
[65] E. Nishida,et al. Regulation of subcellular localization of the antiproliferative protein Tob by its nuclear export signal and bipartite nuclear localization signal sequences. , 2004, Experimental cell research.
[66] M. Rosbash,et al. The importin-beta family member Crm1p bridges the interaction between Rev and the nuclear pore complex during nuclear export , 1997, Current Biology.
[67] F. Bonzelius,et al. The Balance of Nuclear Import and Export Determines the Intracellular Distribution and Function of Tomato Heat Stress Transcription Factor HsfA2 , 2001, Molecular and Cellular Biology.
[68] R. Krug,et al. Regulation of a nuclear export signal by an adjacent inhibitory sequence: the effector domain of the influenza virus NS1 protein. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[69] Helen Pickersgill,et al. Nup358/RanBP2 Attaches to the Nuclear Pore Complex via Association with Nup88 and Nup214/CAN and Plays a Supporting Role in CRM1-Mediated Nuclear Protein Export , 2004, Molecular and Cellular Biology.
[70] J. Darnell,et al. Crystal Structure of a Tyrosine Phosphorylated STAT-1 Dimer Bound to DNA , 1998, Cell.
[71] Minoru Yoshida,et al. CRM1 Is an Export Receptor for Leucine-Rich Nuclear Export Signals , 1997, Cell.
[72] Jørgen Kjems,et al. The Specificity of the CRM1-Rev Nuclear Export Signal Interaction Is Mediated by RanGTP* , 1998, The Journal of Biological Chemistry.
[73] Burkhard Rost,et al. NLSdb: database of nuclear localization signals , 2003, Nucleic Acids Res..
[74] Søren Brunak,et al. NESbase version 1.0: a database of nuclear export signals , 2003, Nucleic Acids Res..
[75] A. Gronenborn,et al. High-resolution structure of the oligomerization domain of p53 by multidimensional NMR. , 1994, Science.
[76] M. Saraste,et al. FEBS Lett , 2000 .
[77] Y. Xiong,et al. A p53 Amino-Terminal Nuclear Export Signal Inhibited by DNA Damage-Induced Phosphorylation , 2001, Science.
[78] I. Vetter,et al. The Coiled Coil Region (Amino Acids 129–250) of the Tumor Suppressor Protein Adenomatous Polyposis Coli (APC) , 2002, The Journal of Biological Chemistry.
[79] Takashi Tsuruo,et al. Involvement of 14‐3‐3 proteins in nuclear localization of telomerase , 2000, The EMBO journal.
[80] B. Matthews. Comparison of the predicted and observed secondary structure of T4 phage lysozyme. , 1975, Biochimica et biophysica acta.
[81] G. Neuhaus,et al. Nuclear export of proteins in plants: AtXPO1 is the export receptor for leucine-rich nuclear export signals in Arabidopsis thaliana. , 1999, The Plant journal : for cell and molecular biology.
[82] C. E. SHANNON,et al. A mathematical theory of communication , 1948, MOCO.