Chapter 5 Translational Control of Gene Expression
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[1] B. S. Baker,et al. The Regulation of the Drosophila msl-2 Gene Reveals a Function for Sex-lethal in Translational Control , 1997, Cell.
[2] R. Guigó,et al. A Combinatorial Code for CPE-Mediated Translational Control , 2008, Cell.
[3] Matt Kaeberlein,et al. Yeast Life Span Extension by Depletion of 60S Ribosomal Subunits Is Mediated by Gcn4 , 2008, Cell.
[4] G. Hannon,et al. Control of translation and mRNA degradation by miRNAs and siRNAs. , 2006, Genes & development.
[5] David I. K. Martin,et al. MicroRNAs control translation initiation by inhibiting eukaryotic initiation factor 4E/cap and poly(A) tail function. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[6] R. Vale,et al. Circularization of mRNA by eukaryotic translation initiation factors. , 1998, Molecular cell.
[7] N. Sonenberg,et al. A New Paradigm for Translational Control: Inhibition via 5′-3′ mRNA Tethering by Bicoid and the eIF4E Cognate 4EHP , 2005, Cell.
[8] N. Sonenberg,et al. 1 Origins and Principles of Translational Control , 2007 .
[9] S. Hanash,et al. Global and Specific Translational Control by Rapamycin in T Cells Uncovered by Microarrays and Proteomics* , 2002, The Journal of Biological Chemistry.
[10] J. Steitz,et al. AU-Rich-Element-Mediated Upregulation of Translation by FXR1 and Argonaute 2 , 2007, Cell.
[11] C. Hellen,et al. The joining of ribosomal subunits in eukaryotes requires eIF5B , 2000, Nature.
[12] V. Kim. MicroRNA biogenesis: coordinated cropping and dicing , 2005, Nature Reviews Molecular Cell Biology.
[13] N. Sonenberg,et al. Identification and characterization of cap-binding proteins from yeast. , 1989, The Journal of biological chemistry.
[14] V. Ambros,et al. The lin-4 regulatory RNA controls developmental timing in Caenorhabditis elegans by blocking LIN-14 protein synthesis after the initiation of translation. , 1999, Developmental biology.
[15] D. Xirodimas,et al. Ribosomal proteins are targets for the NEDD8 pathway , 2008, EMBO reports.
[16] D. Morris,et al. The undertranslated transcriptome reveals widespread translational silencing by alternative 5' transcript leaders , 2006, Genome Biology.
[17] Roy Parker,et al. General Translational Repression by Activators of mRNA Decapping , 2005, Cell.
[18] J. Keene. RNA regulons: coordination of post-transcriptional events , 2007, Nature Reviews Genetics.
[19] D. Weil,et al. The translational regulator CPEB1 provides a link between dcp1 bodies and stress granules , 2005, Journal of Cell Science.
[20] M. Bushell,et al. Internal ribosome entry segment-mediated translation during apoptosis: the role of IRES-trans-acting factors , 2005, Cell Death and Differentiation.
[21] Shuyun Dong,et al. Genome-wide analysis of mRNAs regulated by the nonsense-mediated and 5' to 3' mRNA decay pathways in yeast. , 2003, Molecular cell.
[22] J. Dubnau,et al. RNA recognition and translational regulation by a homeodomain protein , 1996, Nature.
[23] T. E. Dever,et al. Gene-Specific Regulation by General Translation Factors , 2002, Cell.
[24] Krishnamurthy Natarajan,et al. Gcn4p, a Master Regulator of Gene Expression, Is Controlled at Multiple Levels by Diverse Signals of Starvation and Stress , 2002, Eukaryotic Cell.
[25] Jennifer A. Doudna,et al. 5 Translation Initiation by Viral Internal Ribosome Entry Sites , 2007 .
[26] Bing Li,et al. The Role of Chromatin during Transcription , 2007, Cell.
[27] Aaron J. Shatkin,et al. The ends of the affair: Capping and polyadenylation , 2000, Nature Structural Biology.
[28] C. Smibert,et al. Drosophila Cup is an eIF4E‐binding protein that functions in Smaug‐mediated translational repression , 2004, The EMBO journal.
[29] H. Hieronymus,et al. Genome-wide analysis of RNA–protein interactions illustrates specificity of the mRNA export machinery , 2003, Nature Genetics.
[30] R. Méndez,et al. A deadenylation negative feedback mechanism governs meiotic metaphase arrest , 2008, Nature.
[31] W. Henzel,et al. Cup is an eIF4E binding protein required for both the translational repression of oskar and the recruitment of Barentsz , 2003, The Journal of cell biology.
[32] O. Steward,et al. Synaptic Regulation of Translation of Dendritic mRNAs , 2006, The Journal of Neuroscience.
[33] J. Lieb,et al. Progress and challenges in profiling the dynamics of chromatin and transcription factor binding with DNA microarrays. , 2004, Current opinion in genetics & development.
[34] M. Kiriakidou,et al. An mRNA m7G Cap Binding-like Motif within Human Ago2 Represses Translation , 2007, Cell.
[35] John R Yates,et al. One-step affinity purification of the yeast ribosome and its associated proteins and mRNAs. , 2002, RNA.
[36] Boris Lenhard,et al. Mammalian RNA polymerase II core promoters: insights from genome-wide studies , 2007, Nature Reviews Genetics.
[37] D. Bartel,et al. MicroRNA-Directed Cleavage of HOXB8 mRNA , 2004, Science.
[38] G. Ruvkun,et al. Temporal regulation of lin-14 by the antagonistic action of two other heterochronic genes, lin-4 and lin-28. , 1991, Genes & development.
[39] A. Willis,et al. Cellular internal ribosome entry segments: structures, trans-acting factors and regulation of gene expression , 2004, Oncogene.
[40] Michael McClelland,et al. Messenger RNAs under Differential Translational Control in Ki-ras–Transformed Cells , 2006, Molecular Cancer Research.
[41] O. Troyanskaya,et al. Modeling complex genetic interactions in a simple eukaryotic genome: actin displays a rich spectrum of complex haploinsufficiencies. , 2007, Genes & development.
[42] J. Warner,et al. The economics of ribosome biosynthesis in yeast. , 1999, Trends in biochemical sciences.
[43] O. Meyuhas,et al. Ribosomal protein S6 phosphorylation: from protein synthesis to cell size. , 2006, Trends in biochemical sciences.
[44] S. Kuersten,et al. The power of the 3′ UTR: translational control and development , 2003, Nature Reviews Genetics.
[45] F. Clark,et al. Understanding alternative splicing: towards a cellular code , 2005, Nature Reviews Molecular Cell Biology.
[46] Joseph L DeRisi,et al. Whole-genome analysis of mRNA decay in Plasmodium falciparum reveals a global lengthening of mRNA half-life during the intra-erythrocytic development cycle , 2007, Genome Biology.
[47] T. Maniatis,et al. An extensive network of coupling among gene expression machines , 2002, Nature.
[48] G. Thomas,et al. Rapamycin selectively represses translation of the "polypyrimidine tract" mRNA family. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[49] C. Guthrie,et al. Functional specificity of shuttling hnRNPs revealed by genome-wide analysis of their RNA binding profiles. , 2005, RNA.
[50] E. Conti,et al. Nonsense-mediated mRNA decay: molecular insights and mechanistic variations across species. , 2005, Current opinion in cell biology.
[51] James T Kadonaga,et al. Regulation of RNA Polymerase II Transcription by Sequence-Specific DNA Binding Factors , 2004, Cell.
[52] Leah Barrera,et al. The transcriptional regulatory code of eukaryotic cells--insights from genome-wide analysis of chromatin organization and transcription factor binding. , 2006, Current opinion in cell biology.
[53] M. Magnasco,et al. Decay rates of human mRNAs: correlation with functional characteristics and sequence attributes. , 2003, Genome research.
[54] C. Hellen,et al. Eukaryotic ribosomes require initiation factors 1 and 1A to locate initiation codons , 1998, Nature.
[55] William F Marzluff,et al. Metazoan replication-dependent histone mRNAs: a distinct set of RNA polymerase II transcripts. , 2005, Current opinion in cell biology.
[56] M. Gorospe,et al. Concurrent versus individual binding of HuR and AUF1 to common labile target mRNAs , 2004, The EMBO journal.
[57] M. Gerstein,et al. Structure and evolution of transcriptional regulatory networks. , 2004, Current opinion in structural biology.
[58] R. Kelley,et al. Sex lethal controls dosage compensation in Drosophila by a non-splicing mechanism , 1997, Nature.
[59] A. Hinnebusch,et al. Phosphorylation of initiation factor 2α by protein kinase GCN2 mediates gene-specific translational control of GCN4 in yeast , 1992, Cell.
[60] A. Furger,et al. Integrating mRNA Processing with Transcription , 2002, Cell.
[61] Thomas Preiss,et al. Homodirectional changes in transcriptome composition and mRNA translation induced by rapamycin and heat shock , 2003, Nature Structural Biology.
[62] A. Krämer,et al. The structure and function of proteins involved in mammalian pre-mRNA splicing. , 1996, Annual review of biochemistry.
[63] Georges Huez,et al. Identification of TIAR as a Protein Binding to the Translational Regulatory AU-rich Element of Tumor Necrosis Factor α mRNA* , 1999, The Journal of Biological Chemistry.
[64] C. Guthrie,et al. The question remains: Is the spliceosome a ribozyme? , 2000, Nature Structural Biology.
[65] R. Méndez,et al. Translational control by CPEB: a means to the end , 2001, Nature Reviews Molecular Cell Biology.
[66] David W. Galbraith,et al. Immunopurification of Polyribosomal Complexes of Arabidopsis for Global Analysis of Gene Expression1[w] , 2005, Plant Physiology.
[67] W. Heyer,et al. Regulation and intracellular localization of Saccharomyces cerevisiae strand exchange protein 1 (Sep1/Xrn1/Kem1), a multifunctional exonuclease , 1995, Molecular and cellular biology.
[68] W. Filipowicz,et al. Relief of microRNA-Mediated Translational Repression in Human Cells Subjected to Stress , 2006, Cell.
[69] J. McLauchlan,et al. The consensus sequence YGTGTTYY located downstream from the AATAAA signal is required for efficient formation of mRNA 3' termini. , 1985, Nucleic acids research.
[70] T. Kouzarides. Chromatin Modifications and Their Function , 2007, Cell.
[71] C. Norbury,et al. The Cid1 family of non‐canonical poly(A) polymerases , 2006, Yeast.
[72] Thomas Preiss,et al. Starting the protein synthesis machine: eukaryotic translation initiation. , 2003, BioEssays : news and reviews in molecular, cellular and developmental biology.
[73] N. Sonenberg,et al. Translational control in stress and apoptosis , 2005, Nature Reviews Molecular Cell Biology.
[74] J. Tobias,et al. Expression profiling reveals meiotic male germ cell mRNAs that are translationally up- and down-regulated , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[75] J. Steitz,et al. Switching from Repression to Activation: MicroRNAs Can Up-Regulate Translation , 2007, Science.
[76] John G Doench,et al. Recapitulation of short RNA-directed translational gene silencing in vitro. , 2006, Molecular cell.
[77] E. Klann,et al. Translational control of synaptic plasticity and learning and memory , 2007 .
[78] C. Cole,et al. Transport of messenger RNA from the nucleus to the cytoplasm. , 2006, Current opinion in cell biology.
[79] M. Stewart,et al. Ratcheting mRNA out of the nucleus. , 2007, Molecular cell.
[80] J. Derisi,et al. Single-cell proteomic analysis of S. cerevisiae reveals the architecture of biological noise , 2006, Nature.
[81] C. Dominguez,et al. The RNA recognition motif, a plastic RNA‐binding platform to regulate post‐transcriptional gene expression , 2005, The FEBS journal.
[82] M. Karin,et al. A KH domain RNA binding protein, KSRP, promotes ARE-directed mRNA turnover by recruiting the degradation machinery. , 2004, Molecular cell.
[83] R. Parker,et al. Processing bodies require RNA for assembly and contain nontranslating mRNAs. , 2005, RNA.
[84] C. Burge,et al. Conserved Seed Pairing, Often Flanked by Adenosines, Indicates that Thousands of Human Genes are MicroRNA Targets , 2005, Cell.
[85] H. Lodish,et al. Regulation of hemoglobin synthesis. Equal rates of translation and termination of - and -globin chains. , 1972, The Journal of biological chemistry.
[86] R. Buckingham,et al. Translational termination comes of age. , 2000, TIBS -Trends in Biochemical Sciences. Regular ed.
[87] Ruedi Aebersold,et al. Gene expression in yeast responding to mating pheromone: Analysis by high-resolution translation state analysis and quantitative proteomics , 2004 .
[88] Michael B. Mathews,et al. Translational control in biology and medicine , 2007 .
[89] E McEwen,et al. Translational control is required for the unfolded protein response and in vivo glucose homeostasis. , 2001, Molecular cell.
[90] U. Certa,et al. Roles of AUF1 isoforms, HuR and BRF1 in ARE-dependent mRNA turnover studied by RNA interference. , 2004, Nucleic acids research.
[91] M. Gorospe,et al. Increased stability of the p16 mRNA with replicative senescence , 2005, EMBO reports.
[92] J. Cherry,et al. Identification of unstable transcripts in Arabidopsis by cDNA microarray analysis: Rapid decay is associated with a group of touch- and specific clock-controlled genes , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[93] Marija Cvijovic,et al. Identification of putative regulatory upstream ORFs in the yeast genome using heuristics and evolutionary conservation , 2007, BMC Bioinform..
[94] Abhijit A. Patel,et al. Splicing double: insights from the second spliceosome , 2003, Nature Reviews Molecular Cell Biology.
[95] J. Steitz,et al. Identification of HuR as a protein implicated in AUUUA‐mediated mRNA decay , 1997, The EMBO journal.
[96] J. Valcárcel,et al. The Drosophila splicing regulator sex-lethal directly inhibits translation of male-specific-lethal 2 mRNA. , 1998, RNA.
[97] Orna Elroy-Stein,et al. 6 Translation Initiation Via Cellular Internal Ribosome Entry Sites , 2007 .
[98] H. Hieronymus,et al. A systems view of mRNP biology. , 2004, Genes & development.
[99] R. Rhoads,et al. Translation of a Small Subset of Caenorhabditis elegans mRNAs Is Dependent on a Specific Eukaryotic Translation Initiation Factor 4E Isoform , 2005, Molecular and Cellular Biology.
[100] C. Reilly,et al. Genome-wide analysis of mRNA decay in resting and activated primary human T lymphocytes. , 2002, Nucleic acids research.
[101] C. Lima,et al. Processing the message: structural insights into capping and decapping mRNA. , 2005, Current opinion in structural biology.
[102] J. Manley,et al. Four factors are required for 3'-end cleavage of pre-mRNAs. , 1989, Genes & development.
[103] John D. Storey,et al. Precision and functional specificity in mRNA decay , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[104] G. Rubin,et al. Global analyses of mRNA translational control during early Drosophila embryogenesis , 2007, Genome Biology.
[105] Pamela A. Silver,et al. Functional Specificity among Ribosomal Proteins Regulates Gene Expression , 2007, Cell.
[106] V. Agol,et al. Molecular mechanisms of translation initiation in eukaryotes , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[107] T. Hughes,et al. Genome-Wide Analysis of mRNA Stability Using Transcription Inhibitors and Microarrays Reveals Posttranscriptional Control of Ribosome Biogenesis Factors , 2004, Molecular and Cellular Biology.
[108] Melissa S Jurica,et al. Pre-mRNA splicing: awash in a sea of proteins. , 2003, Molecular cell.
[109] T. Shenk,et al. The 64-kilodalton subunit of the CstF polyadenylation factor binds to pre-mRNAs downstream of the cleavage site and influences cleavage site location , 1994, Molecular and cellular biology.
[110] Graziano Pesole,et al. uAUG and uORFs in human and rodent 5'untranslated mRNAs. , 2005, Gene.
[111] M. Hentze,et al. Sex-lethal imparts a sex-specific function to UNR by recruiting it to the msl-2 mRNA 3' UTR: translational repression for dosage compensation. , 2006, Genes & development.
[112] B. Séraphin,et al. Cytoplasmic foci are sites of mRNA decay in human cells , 2004, The Journal of cell biology.
[113] M. Ehrenberg,et al. 7 Translation Termination, the Prion [ PSI + ], and Ribosomal Recycling , 2007 .
[114] F. Gebauer,et al. Drosophila UNR is required for translational repression of male-specific lethal 2 mRNA during regulation of X-chromosome dosage compensation. , 2006, Genes & development.
[115] N. Sonenberg,et al. A role for the eIF4E-binding protein 4E-T in P-body formation and mRNA decay , 2005, The Journal of cell biology.
[116] S. Peltz,et al. The cap-to-tail guide to mRNA turnover , 2001, Nature Reviews Molecular Cell Biology.
[117] P. Sarnow,et al. Preferential Translation of Internal Ribosome Entry Site-containing mRNAs during the Mitotic Cycle in Mammalian Cells* , 2004, Journal of Biological Chemistry.
[118] P. Sarnow,et al. Internal ribosome entry sites in eukaryotic mRNA molecules. , 2001, Genes & development.
[119] M. Moore. From Birth to Death: The Complex Lives of Eukaryotic mRNAs , 2005, Science.
[120] Gregory J. Hannon,et al. MicroRNA-dependent localization of targeted mRNAs to mammalian P-bodies , 2005, Nature Cell Biology.
[121] K. Murthy,et al. The 160-kD subunit of human cleavage-polyadenylation specificity factor coordinates pre-mRNA 3'-end formation. , 1995, Genes & development.
[122] Dierk Niessing,et al. Bicoid associates with the 5'-cap-bound complex of caudal mRNA and represses translation. , 2002, Genes & development.
[123] Dierk Niessing,et al. RNA binding and translational suppression by bicoid , 1996, Nature.
[124] Yi Wen Kong,et al. Polypyrimidine tract binding protein regulates IRES-mediated gene expression during apoptosis. , 2006, Molecular cell.
[125] S. Burley,et al. Uncoupling of Initiation Factor eIF5B/IF2 GTPase and Translational Activities by Mutations that Lower Ribosome Affinity , 2002, Cell.
[126] Jerry Pelletier,et al. Short RNAs repress translation after initiation in mammalian cells. , 2006, Molecular cell.
[127] Jean-Marie Buerstedde,et al. A Mouse Cytoplasmic Exoribonuclease (mXRN1p) with Preference for G4 Tetraplex Substrates , 1997, The Journal of cell biology.
[128] M. Gorospe,et al. Translational Repression by RNA-Binding Protein TIAR , 2006, Molecular and Cellular Biology.
[129] P. Espenshade,et al. Oxygen-dependent, alternative promoter controls translation of tco1+ in fission yeast , 2008, Nucleic acids research.
[130] S. Tenenbaum,et al. Identifying mRNA subsets in messenger ribonucleoprotein complexes by using cDNA arrays. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[131] J. Richter,et al. Opposing polymerase-deadenylase activities regulate cytoplasmic polyadenylation. , 2006, Molecular cell.
[132] M. Person,et al. Ribosomal protein S2 is a substrate for mammalian PRMT3 (protein arginine methyltransferase 3). , 2005, The Biochemical journal.
[133] P. Walter,et al. Ribosome pausing and stacking during translation of a eukaryotic mRNA. , 1988, The EMBO journal.
[134] Takayuki Murata,et al. MicroRNA Inhibition of Translation Initiation in Vitro by Targeting the Cap-Binding Complex eIF4F , 2007, Science.
[135] M. Turcotte,et al. Searching for IRES. , 2006, RNA.
[136] Shobha Vasudevan,et al. Non-stop decay--a new mRNA surveillance pathway. , 2002, BioEssays : news and reviews in molecular, cellular and developmental biology.
[137] M. Hentze,et al. A Dual Inhibitory Mechanism Restricts msl-2 mRNA Translation for Dosage Compensation in Drosophila , 2005, Cell.
[138] Albertha J. M. Walhout,et al. Unraveling transcription regulatory networks by protein-DNA and protein-protein interaction mapping. , 2006, Genome research.
[139] Patrick O. Brown,et al. Global and Specific Translational Regulation in the Genomic Response of Saccharomyces cerevisiae to a Rapid Transfer from a Fermentable to a Nonfermentable Carbon Source , 2001, Molecular and Cellular Biology.
[140] W. Filipowicz,et al. RNAi: The Nuts and Bolts of the RISC Machine , 2005, Cell.
[141] M. Hentze,et al. Molecular mechanisms of translational control , 2004, Nature Reviews Molecular Cell Biology.
[142] D. Bartel. MicroRNAs Genomics, Biogenesis, Mechanism, and Function , 2004, Cell.
[143] J. Mata,et al. A Network of Multiple Regulatory Layers Shapes Gene Expression in Fission Yeast , 2007, Molecular cell.
[144] J. Richter,et al. CPEB: a life in translation. , 2007, Trends in biochemical sciences.
[145] A. Jacobson,et al. Poly(A)-binding proteins: multifunctional scaffolds for the post-transcriptional control of gene expression , 2003, Genome Biology.
[146] Adam M. Gustafson,et al. microRNA-Directed Phasing during Trans-Acting siRNA Biogenesis in Plants , 2005, Cell.
[147] P. Brown,et al. Identification of eukaryotic mRNAs that are translated at reduced cap binding complex eIF4F concentrations using a cDNA microarray. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[148] R. Schneider,et al. Ubiquitin-dependent mechanism regulates rapid turnover of AU-rich cytokine mRNAs , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[149] T. Pestova,et al. Initiation factor eIF5B catalyzes second GTP-dependent step in eukaryotic translation initiation , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[150] E. Marcotte,et al. Absolute protein expression profiling estimates the relative contributions of transcriptional and translational regulation , 2007, Nature Biotechnology.
[151] M. Hentze,et al. A co‐repressor assembly nucleated by Sex‐lethal in the 3′UTR mediates translational control of Drosophila msl‐2 mRNA , 2003, The EMBO journal.
[152] E. Chan,et al. Disruption of GW bodies impairs mammalian RNA interference , 2005, Nature Cell Biology.
[153] B. Séraphin,et al. Human Dcp2: a catalytically active mRNA decapping enzyme located in specific cytoplasmic structures , 2002, The EMBO journal.
[154] Q. Cao,et al. Dissolution of the maskin–eIF4E complex by cytoplasmic polyadenylation and poly(A)‐binding protein controls cyclin B1 mRNA translation and oocyte maturation , 2002, The EMBO journal.
[155] Yuval Dor,et al. Ribosomal protein S6 phosphorylation is a determinant of cell size and glucose homeostasis. , 2005, Genes & development.
[156] A. Hinnebusch,et al. Uncharged tRNA activates GCN2 by displacing the protein kinase moiety from a bipartite tRNA-binding domain. , 2000, Molecular cell.
[157] T. Anthony,et al. Uncharged tRNA and Sensing of Amino Acid Deficiency in Mammalian Piriform Cortex , 2005, Science.
[158] Mark Gerstein,et al. Applications of DNA tiling arrays to experimental genome annotation and regulatory pathway discovery , 2005, Chromosome Research.
[159] P. Anderson,et al. Stress granules: sites of mRNA triage that regulate mRNA stability and translatability. , 2002, Biochemical Society transactions.
[160] T. Godefroy-Colburn,et al. The role of mRNA competition in regulating translation. I. Demonstration of competition in vivo. , 1981, The Journal of biological chemistry.
[161] J. Yates,et al. A role for the P-body component GW182 in microRNA function , 2005, Nature Cell Biology.
[162] C. Llave,et al. Cleavage of Scarecrow-like mRNA Targets Directed by a Class of Arabidopsis miRNA , 2002, Science.
[163] Guiliang Tang,et al. MicroRNA control of PHABULOSA in leaf development: importance of pairing to the microRNA 5′ region , 2004 .
[164] R. Heintzmann,et al. A role for eIF4E and eIF4E-transporter in targeting mRNPs to mammalian processing bodies. , 2005, RNA.
[165] P. Blackshear,et al. Feedback Inhibition of Macrophage Tumor Necrosis Factor-α Production by Tristetraprolin , 1998 .
[166] V. Solovyev,et al. Expression of Msl-2 causes assembly of dosage compensation regulators on the X chromosomes and female lethality in Drosophila , 1995, Cell.
[167] N. Sonenberg,et al. Translational control of gene expression , 2000 .
[168] W. Filipowicz,et al. Inhibition of Translational Initiation by Let-7 MicroRNA in Human Cells , 2005, Science.
[169] J. Dean,et al. Control of the expression of inflammatory response genes. , 2003, Biochemical Society symposium.
[170] A. Gingras,et al. eIF4 initiation factors: effectors of mRNA recruitment to ribosomes and regulators of translation. , 1999, Annual review of biochemistry.
[171] P. Silver,et al. PRMT3 is a ribosomal protein methyltransferase that affects the cellular levels of ribosomal subunits , 2004, The EMBO journal.
[172] E. Izaurralde,et al. SMG7 acts as a molecular link between mRNA surveillance and mRNA decay. , 2004, Molecular cell.
[173] G. Ruvkun,et al. Negative regulatory sequences in the lin-14 3'-untranslated region are necessary to generate a temporal switch during Caenorhabditis elegans development. , 1991, Genes & development.
[174] Daniel Herschlag,et al. Genome-wide identification of mRNAs associated with the translational regulator PUMILIO in Drosophila melanogaster. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[175] G. Dittmar,et al. Cell Cycle–Regulated Modification of the Ribosome by a Variant Multiubiquitin Chain , 2000, Cell.
[176] G. Johannes,et al. Identification of mRNAs that continue to associate with polysomes during hypoxia. , 2007, RNA.
[177] R. Panniers,et al. The catalytic mechanism of guanine nucleotide exchange factor action and competitive inhibition by phosphorylated eukaryotic initiation factor 2. , 1988, The Journal of biological chemistry.
[178] A. Aguilera. Cotranscriptional mRNP assembly: from the DNA to the nuclear pore. , 2005, Current opinion in cell biology.
[179] Jürg Bähler,et al. Post-transcriptional control of gene expression: a genome-wide perspective. , 2005, Trends in biochemical sciences.
[180] Patricia Soteropoulos,et al. Global Analysis of Pub1p Targets Reveals a Coordinate Control of Gene Expression through Modulation of Binding and Stability , 2005, Molecular and Cellular Biology.
[181] R. Aebersold,et al. Gene Expression Analyzed by High-resolution State Array Analysis and Quantitative Proteomics , 2004, Molecular & Cellular Proteomics.
[182] N. Socci,et al. Oncogenic Ras and Akt signaling contribute to glioblastoma formation by differential recruitment of existing mRNAs to polysomes. , 2003, Molecular cell.
[183] J. Valcárcel,et al. Splicing regulation in Drosophila sex determination. , 2003, Progress in molecular and subcellular biology.
[184] Roger E Bumgarner,et al. The Transcriptome and Its Translation during Recovery from Cell Cycle Arrest in Saccharomyces cerevisiae* , 2003, Molecular & Cellular Proteomics.
[185] I. Wool,et al. The phosphorylation of liver ribosomal proteins in vivo. Evidence that only a single small subunit protein (S6) is phosphorylated. , 1974, The Journal of biological chemistry.
[186] Laurent Parry,et al. The GCN2 kinase biases feeding behavior to maintain amino acid homeostasis in omnivores. , 2005, Cell metabolism.
[187] Roy Parker,et al. Decapping and Decay of Messenger RNA Occur in Cytoplasmic Processing Bodies , 2003 .
[188] Randal J. Kaufman,et al. Stress granules and processing bodies are dynamically linked sites of mRNP remodeling , 2005, The Journal of cell biology.
[189] A. Corbett,et al. Process or perish: quality control in mRNA biogenesis , 2005, Nature Structural &Molecular Biology.
[190] H. Blau,et al. Argonaute 2/RISC resides in sites of mammalian mRNA decay known as cytoplasmic bodies , 2005, Nature Cell Biology.
[191] Jing Zhao,et al. Formation of mRNA 3′ Ends in Eukaryotes: Mechanism, Regulation, and Interrelationships with Other Steps in mRNA Synthesis , 1999, Microbiology and Molecular Biology Reviews.
[192] Kevin Struhl,et al. TREX is a conserved complex coupling transcription with messenger RNA export , 2002, Nature.
[193] J. Doudna,et al. Structural and mechanistic insights into hepatitis C viral translation initiation , 2007, Nature Reviews Microbiology.
[194] Angelika Amon,et al. A Genome-Wide Screen Identifies Genes Required for Centromeric Cohesion , 2004, Science.
[195] Nick Proudfoot,et al. Polyadenylation: A tail of two complexes , 2002, Current Biology.
[196] A. GutierrezR,et al. cDNAマイクロアレイ解析によるシロイヌナズナにおける不安定転写産物の同定 迅速な崩壊は接触‐および特異的時計調節遺伝子と関連している , 2002 .
[197] G. M. Wilson,et al. Regulation of AUF1 Expression via Conserved Alternatively Spliced Elements in the 3′ Untranslated Region , 1999, Molecular and Cellular Biology.
[198] Phillip D Zamore,et al. Perspective: machines for RNAi. , 2005, Genes & development.
[199] J. Lykke-Andersen. Identification of a Human Decapping Complex Associated with hUpf Proteins in Nonsense-Mediated Decay , 2002, Molecular and Cellular Biology.
[200] E. Lander,et al. The Mammalian Epigenome , 2007, Cell.
[201] T. Preiss,et al. Widespread use of poly(A) tail length control to accentuate expression of the yeast transcriptome. , 2007, RNA.
[202] Joachim Frank,et al. 3 Structure and Function of the Eukaryotic Ribosome and Elongation Factors , 2007 .
[203] Martin Kupiec,et al. A genome-wide screen for Saccharomyces cerevisiae deletion mutants that affect telomere length. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[204] A. Hinnebusch. Translational regulation of GCN4 and the general amino acid control of yeast. , 2005, Annual review of microbiology.
[205] C. Guthrie,et al. Identification of Lhp1p-associated RNAs by microarray analysis in Saccharomyces cerevisiae reveals association with coding and noncoding RNAs. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[206] M. Schapira,et al. Regulated translation initiation controls stress-induced gene expression in mammalian cells. , 2000, Molecular cell.
[207] C. Norbury,et al. Roles for cytoplasmic polyadenylation in cell cycle regulation , 2002, Journal of cellular biochemistry.
[208] Ligang Wu,et al. MicroRNAs direct rapid deadenylation of mRNA. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[209] P. Silver,et al. Autoregulation of Ribosome Biosynthesis by a Translational Response in Fission Yeast , 2006, Molecular and Cellular Biology.
[210] T. Rana,et al. Translation Repression in Human Cells by MicroRNA-Induced Gene Silencing Requires RCK/p54 , 2006, PLoS biology.
[211] Pamela A Silver,et al. Systems perspectives on mRNA processing , 2007, Cell Research.
[212] E. Winzeler,et al. Genomics, gene expression and DNA arrays , 2000, Nature.
[213] K. Nader,et al. Translational control of hippocampal synaptic plasticity and memory by the eIF2α kinase GCN2 , 2005, Nature.
[214] A. Nakamura,et al. Drosophila cup is an eIF4E binding protein that associates with Bruno and regulates oskar mRNA translation in oogenesis. , 2004, Developmental cell.
[215] Haiwei Song,et al. The enzymes and control of eukaryotic mRNA turnover , 2004, Nature Structural &Molecular Biology.
[216] M. Katze,et al. Selective Translation of Eukaryotic mRNAs: Functional Molecular Analysis of GRSF-1, a Positive Regulator of Influenza Virus Protein Synthesis , 2002, Journal of Virology.
[217] Jonathan S Weissman,et al. Decay of Endoplasmic Reticulum-Localized mRNAs During the Unfolded Protein Response , 2006, Science.
[218] S. Tenenbaum,et al. A phosphorylated cytoplasmic autoantigen, GW182, associates with a unique population of human mRNAs within novel cytoplasmic speckles. , 2002, Molecular biology of the cell.
[219] M. Kozak,et al. Pushing the limits of the scanning mechanism for initiation of translation , 2002, Gene.
[220] M. Gorospe,et al. Posttranscriptional Derepression of GADD45α by Genotoxic Stress , 2006 .
[221] G. Brewer,et al. Competitive binding of AUF1 and TIAR to MYC mRNA controls its translation , 2007, Nature Structural &Molecular Biology.
[222] Richard J Jackson,et al. How Do MicroRNAs Regulate Gene Expression? , 2007, Science's STKE.
[223] P. Brown,et al. Extensive Association of Functionally and Cytotopically Related mRNAs with Puf Family RNA-Binding Proteins in Yeast , 2004, PLoS biology.
[224] M. Gerstein,et al. Genomic analysis of regulatory network dynamics reveals large topological changes , 2004, Nature.
[225] M. Kozak. Initiation of translation in prokaryotes and eukaryotes. , 1999, Gene.
[226] T. Pestova,et al. The roles of individual eukaryotic translation initiation factors in ribosomal scanning and initiation codon selection. , 2002, Genes & development.
[227] Francisco Martinez-Murillo,et al. Nonsense surveillance regulates expression of diverse classes of mammalian transcripts and mutes genomic noise , 2004, Nature Genetics.
[228] R. Rhoads,et al. Mapping of Functional Domains in Eukaryotic Protein Synthesis Initiation Factor 4G (eIF4G) with Picornaviral Proteases , 1995, The Journal of Biological Chemistry.
[229] L. Paillard,et al. AU-rich elements and associated factors: are there unifying principles? , 2006, Nucleic acids research.
[230] A. Hinnebusch,et al. 9 Mechanism of Translation Initiation in the Yeast Saccharomyces cerevisiae , 2007 .
[231] Anton J. Enright,et al. Zebrafish MiR-430 Promotes Deadenylation and Clearance of Maternal mRNAs , 2006, Science.
[232] Roy Parker,et al. Movement of Eukaryotic mRNAs Between Polysomes and Cytoplasmic Processing Bodies , 2005, Science.
[233] Shigeyuki Yokoyama,et al. Let-7 microRNA-mediated mRNA deadenylation and translational repression in a mammalian cell-free system. , 2007, Genes & development.
[234] B. Séraphin,et al. The GW182 protein colocalizes with mRNA degradation associated proteins hDcp1 and hLSm4 in cytoplasmic GW bodies. , 2003, RNA.
[235] P. Silver,et al. Genome-wide identification of functionally distinct subsets of cellular mRNAs associated with two nucleocytoplasmic-shuttling mammalian splicing factors , 2006, Genome Biology.
[236] R. Lührmann,et al. The human LSm1-7 proteins colocalize with the mRNA-degrading enzymes Dcp1/2 and Xrnl in distinct cytoplasmic foci. , 2002, RNA.
[237] Stefano Fumagalli,et al. S6K1−/−/S6K2−/− Mice Exhibit Perinatal Lethality and Rapamycin-Sensitive 5′-Terminal Oligopyrimidine mRNA Translation and Reveal a Mitogen-Activated Protein Kinase-Dependent S6 Kinase Pathway , 2004, Molecular and Cellular Biology.
[238] D. Ron,et al. 13 eIF2α Phosphorylation in Cellular Stress Responses and Disease , 2007 .
[239] Cornelia I Bargmann,et al. Comparing genomic expression patterns across species identifies shared transcriptional profile in aging , 2004, Nature Genetics.
[240] G. Orphanides,et al. A Unified Theory of Gene Expression , 2002, Cell.
[241] N. Sonenberg,et al. Regulation of cap-dependent translation by eIF4E inhibitory proteins , 2005, Nature.
[242] Daniel St Johnston,et al. Moving messages: the intracellular localization of mRNAs , 2005, Nature Reviews Molecular Cell Biology.
[243] Matthias W. Hentze,et al. Drosophila miR2 induces pseudo-polysomes and inhibits translation initiation , 2007, Nature.
[244] John D. Storey,et al. Genome-wide analysis of mRNA translation profiles in Saccharomyces cerevisiae , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[245] G. Brewer,et al. An A + U-rich element RNA-binding factor regulates c-myc mRNA stability in vitro , 1991, Molecular and cellular biology.
[246] M. Kozak. The scanning model for translation: an update , 1989, The Journal of cell biology.